Page last updated: 2024-11-08

diethylnitrosamine and Hepatocellular Carcinoma

diethylnitrosamine has been researched along with Hepatocellular Carcinoma in 659 studies

Diethylnitrosamine: A nitrosamine derivative with alkylating, carcinogenic, and mutagenic properties.
N-nitrosodiethylamine : A nitrosamine that is N-ethylethanamine substituted by a nitroso group at the N-atom.

Research Excerpts

ExcerptRelevanceReference
"The purpose of this study was to investigate the effect of combined therapy of diacerein and gold nanoparticles (AuNP) on diethylnitrosamine (DEN) induced hepatocellular carcinoma (HCC) in a rat model."8.31Attenuation of diethylnitrosamine-induced hepatocellular carcinoma in a rat model by combination therapy of diacerein and gold nanoparticles: a histopathological and immunohistochemical study. ( Baokbah, TAS, 2023)
"The data reveals potential of saroglitazar for chemoprevention of hepatocellular carcinoma in patients with NAFLD/NASH."8.31Saroglitazar suppresses the hepatocellular carcinoma induced by intraperitoneal injection of diethylnitrosamine in C57BL/6 mice fed on choline deficient, l-amino acid- defined, high-fat diet. ( Bhoi, B; Giri, SR; Ingale, K; Jain, MR; Kadam, S; Nyska, A; Patel, H; Ranvir, R; Rath, A; Rathod, R; Sharma, A; Trivedi, C, 2023)
"This study was designed to evaluate the potential protective impact of estrogen and estrogen receptor against diethylnitrosamine (DEN)-induced hepatocellular carcinoma (HCC) in rats."8.31Estrogen Attenuates Diethylnitrosamine-Induced Hepatocellular Carcinoma in Female Rats via Modulation of Estrogen Receptor/FASN/CD36/IL-6 Axis. ( Abdel-Hamid, MS; Abdelhady, R; El-Sayed, EM; Elsadek, BEM; Hassan, MH; Mansour, AM; Salama, SA, 2023)
"These findings demonstrated that ADSC-derived exosomes could efficiently alleviate hepatic fibrosis by suppressing HSCs activation and remodeling glutamine and ammonia metabolism mediated by hepatocellular glutamine synthetase, which might be a novel and promising anti-fibrotic therapeutics for hepatic fibrosis disease."8.12ADSCs-derived exosomes ameliorate hepatic fibrosis by suppressing stellate cell activation and remodeling hepatocellular glutamine synthetase-mediated glutamine and ammonia homeostasis. ( Feng, J; Fu, Q; Guo, J; Ling, B; Ning, K; Wang, J; Wu, B; Xiu, G; Xu, J, 2022)
" The present study investigates the anticancer activity of ligand-L and its mode of action in rat model of diethylnitrosamine (DEN) induced hepatocellular carcinoma."7.96Redox cycling of copper by coumarin-di(2-picolyl)amine hybrid molecule leads to ROS-mediated modulation of redox scavengers, DNA damage and cell death in diethylnitrosamine induced hepatocellular carcinoma. ( Khan, S; Naseem, I; Zafar, A, 2020)
"This study aimed to investigate the potential role of co-treatment with doxorubicin (DOX) and verapamil (VRP) nanoparticles in experimentally induced hepatocellular carcinoma in mice and to investigate the possible mechanisms behind the potential favorable effect of the co-treatment."7.96Effect of co-treatment with doxorubicin and verapamil loaded into chitosan nanoparticles on diethylnitrosamine-induced hepatocellular carcinoma in mice. ( Abo Mansour, HE; Abo-Elmatty, DM; Badawy, NS; El-Batsh, MM; Mehanna, ET; Mesbah, NM, 2020)
" Nimbolide is a tetranotriterpenoid that has been shown to have antioxidant and anti-proliferative properties; however, its anticancer effects and molecular mechanism in hepatocellular carcinoma (HCC) remains obscure."7.96Nimbolide inhibits tumor growth by restoring hepatic tight junction protein expression and reduced inflammation in an experimental hepatocarcinogenesis. ( Ram, AK; Srinivas, BH; Vairappan, B, 2020)
" In the current study, we continued to assess the therapeutic efficaciousness of the newly synthesized gallium nanoparticles (GaNPs) combined with low level of gamma radiation (IR), on the incidence of diethylnitrosamine (DEN)-induced hepatocellular carcinoma (HCC) in rats."7.91Gallium nanoparticles along with low-dose gamma radiation modulate TGF-β/MMP-9 expression in hepatocellular carcinogenesis in rats. ( El-Sonbaty, SM; Mansour, SZ; Moawed, FS, 2019)
"Mito-TEMPO was effective in combating hepatocarcinogenesis."7.91Mito-TEMPO, a mitochondria-targeted antioxidant, prevents N-nitrosodiethylamine-induced hepatocarcinogenesis in mice. ( Bharati, S; Kumar, R; Shetty, S, 2019)
" In this study, the efficacy and toxicity of protocatechuic acid intercalated in zinc aluminum-layered double hydroxide nanoparticles (PCA-ZnAl) against diethylnitrosamine/phenobarbital (DEN/PB)-induced hepatocellular carcinoma (HCC) in BALB/c mice was evaluated."7.91Effect of protocatechuic acid-layered double hydroxide nanoparticles on diethylnitrosamine/phenobarbital-induced hepatocellular carcinoma in mice. ( Barahuie, F; Fakurazi, S; Gani, SA; Hussein, MZ; Kura, AU; Muhammad, SA, 2019)
" Diethylnitrosamine (DEN) is one of the recognized risk factors for hepatocarcinogenesis likely due to CYP2E1-mediated metabolic activation."7.88Higher CYP2E1 Activity Correlates with Hepatocarcinogenesis Induced by Diethylnitrosamine. ( Chang, Z; Fang, Y; Gao, J; Gao, N; Jin, H; Qiao, HL; Wang, CE; Wang, GJ; Wang, J; Wang, Z; Zhang, HX; Zhang, YF; Zhou, J, 2018)
"To test the hypotheses that (i) heavier rats demonstrate improved survival with diminished fibrosis in a diethylnitrosamine (DEN)-induced model of hepatocellular carcinoma (HCC) and (ii) transarterial embolization via femoral artery access decreases procedure times versus carotid access."7.85Relative Initial Weight Is Associated with Improved Survival without Altering Tumor Latency in a Translational Rat Model of Diethylnitrosamine-Induced Hepatocellular Carcinoma and Transarterial Embolization. ( Furth, EE; Gade, TP; Hunt, SJ; Kiefer, RM; Nadolski, GJ; Pickup, S; Pulido, S; Soulen, MC, 2017)
"Rationale of this study was framed to investigate the protective effect and anti-cancer property of nanoparticles based on chitosan isolated from squid, Sepioteuthis lessoniana, on hepatic cells in N-Nitrosodiethylamine-induced hepatocellular carcinoma in rats."7.85Chitosan nanoparticles from marine squid protect liver cells against N-diethylnitrosoamine-induced hepatocellular carcinoma. ( Shanmugam, A; Shanmugam, V; Subhapradha, N, 2017)
"This study aimed to evaluate the antitumor activity of platinum nanoparticles compared with cis-platin both in vitro and in vivo in the treatment of hepatocellular carcinoma induced in rats."7.85Evaluation of the antitumor activity of platinum nanoparticles in the treatment of hepatocellular carcinoma induced in rats. ( El-Sonbaty, S; Kandil, E; Mahmoud, M; Mansour, S; Medhat, A, 2017)
"The purpose of the present study was to evaluate the effects of cordycepin (CA) on N-nitrosodiethylamine (NDEA)-induced hepatocellular carcinomas (HCC) and explore its potential mechanisms."7.85Anti-hepatocarcinoma effect of cordycepin against NDEA-induced hepatocellular carcinomas via the PI3K/Akt/mTOR and Nrf2/HO-1/NF-κB pathway in mice. ( Chen, B; Li, D; Lian, S; Lin, X; Wei, H; Yang, T; Zeng, Y, 2017)
" Melatonin shows beneficial effects in cell and animal models of hepatocellular carcinoma, but it is unknown if they are associated with the modulation of the SphK/S1P system, along with different downstream signaling pathways modified in cancer."7.85Melatonin prevents deregulation of the sphingosine kinase/sphingosine 1-phosphate signaling pathway in a mouse model of diethylnitrosamine-induced hepatocellular carcinoma. ( Crespo, I; de Urbina, JO; González-Fernández, B; González-Gallego, J; San-Miguel, B; Sánchez, DI; Tuñón, MJ, 2017)
" In the present study, the effects of metformin on the development and recurrence of hepatocellular carcinoma (HCC) were investigated using the diethylnitrosamine (DEN)‑induced rat model of HCC."7.83Metformin inhibits early stage diethylnitrosamine‑induced hepatocarcinogenesis in rats. ( Chang, M; Choi, HJ; Jang, JJ; Jang, S; Jo, W; Lee, HJ; Park, HK; Ryu, JE; Son, WC; Yu, ES, 2016)
" The aim of this study was to evaluate the anti-tumor effect of Celastrol against diethylnitrosamine (DEN)-induced hepatocellular carcinoma (HCC) in rats and furthermore, to explore the underlying mechanism."7.83Protective effects of Celastrol on diethylnitrosamine-induced hepatocellular carcinoma in rats and its mechanisms. ( Chang, W; He, W; Li, PP; Lu, JT; Song, SS; Wei, W; Yuan, PF, 2016)
" To further confirm our hypothesis in vivo, we induced hepatocellular carcinoma (HCC) in rats by diethylnitrosamine (DEN)."7.81Targeting increased copper levels in diethylnitrosamine induced hepatocellular carcinoma cells in rats by epigallocatechin-3-gallate. ( Ahmad, A; Farhan, M; Hadi, SM; Naseem, I; Rizvi, A, 2015)
" The present study was envisaged to investigate the possible synergistic effect of combined treatment of curcumin with piperine in suppression of diethylnitrosamine (DENA)-induced hepatocellular carcinoma (HCC) in rats, owing to permeability enhancing effect of latter."7.81Synergistic effect of curcumin and piperine in suppression of DENA-induced hepatocellular carcinoma in rats. ( Padwad, YS; Patial, V; Pratap, K; S, M; Sharma, S; Singh, D, 2015)
" The present experimental study was designed to outline the roles of these players and to investigate the tumor suppressive effects of curcumin with or without mesenchymal stem cells (MSCs) in hepatocellular carcinoma (HCC)."7.81Altered Cell to Cell Communication, Autophagy and Mitochondrial Dysfunction in a Model of Hepatocellular Carcinoma: Potential Protective Effects of Curcumin and Stem Cell Therapy. ( Abdelmaqsoud, OM; Khaleel, EF; Tork, OM, 2015)
" The aim of this study was to investigate molecular mechanisms for the chemopreventive effects of folic acid and tributyrin alone or in combination on rat hepatocarcinogenesis."7.80Transcriptomic responses provide a new mechanistic basis for the chemopreventive effects of folic acid and tributyrin in rat liver carcinogenesis. ( Beland, FA; Campos, A; Carrilho, J; de Conti, A; Furtado, KS; Fuscoe, JC; Guariento, AH; Han, T; Moreno, FS; Pogribny, IP; Purgatto, E; Ross, SA; Shinohara, EM; Tryndyak, V, 2014)
"We investigated the possible therapeutic effect of irreversible proteasome inhibitor, carfilzomib against hepatocellular carcinoma induced chemically by chronic administration of diethylnitrosoamines (DENA)."7.80Possible role of selective, irreversible, proteasome inhibitor (carfilzomib) in the treatment of rat hepatocellular carcinoma. ( Al-Hosaini, K; Al-Rikabi, AC; Aljoufi, MA; Mansour, MA; Nagi, MN, 2014)
"The purpose of the present study was to evaluate the preventive effects of hydrazinocurcumin (HZC) on diethylnitrosamine (DEN)-induced hepatocarcinogenesis in a male Sprague Dawley (SD) rat model."7.80Preventive effect of hydrazinocurcumin on carcinogenesis of diethylnitrosamine-induced hepatocarcinoma in male SD rats. ( Geng, CZ; Liu, YP; Peng, L; Wang, SJ; Wang, X; Yang, HC; Zhao, JA, 2014)
"The possible molecular mechanisms of Nano-selenium (nano-se) in attenuating hepatocellular carcinoma (HCC) was investigated in this study."7.80Molecular mechanisms of nano-selenium in mitigating hepatocellular carcinoma induced by N-nitrosodiethylamine (NDEA) in rats. ( Ahmed, HH; Hamza, AH; Khalil, WK, 2014)
" We recently find that the loss of toll-like receptor 2 (TLR2) activities promotes the diethylnitrosamine (DEN) induced hepatocellular carcinogenesis and tumor progression, which associates with an abundant accumulation of reactive oxygen species (ROS) and endoplasmic reticulum (ER) stress."7.79Antioxidant N-acetylcysteine attenuates hepatocarcinogenesis by inhibiting ROS/ER stress in TLR2 deficient mouse. ( Hu, ZW; Hua, F; Lin, H; Liu, XB; Yu, JJ, 2013)
"Placental growth factor (PlGF) inhibition produced promising results in reducing tumor burden in a diethylnitrosamine (DEN)-induced mouse model for hepatocellular carcinoma (HCC)."7.79Serum protein N-glycan alterations of diethylnitrosamine-induced hepatocellular carcinoma mice and their evolution after inhibition of the placental growth factor. ( Blomme, B; Colle, I; Geerts, A; Heindryckx, F; Stassen, JM; Van Vlierberghe, H, 2013)
" DENA (diethylnitrosamine), a hepatocarcinogen, is commonly used in an experimental mouse model to induce liver cancer that closely mimics a subclass of human hepatocellular carcinoma (HCC)."7.76Alteration of N-glycome in diethylnitrosamine-induced hepatocellular carcinoma mice: a non-invasive monitoring tool for liver cancer. ( Chen, CC; Contreras, R; Dewaele, S; Fan, YD; Libert, C; Liu, XE; Van Huysse, J; Vanhooren, V; Wang, L; Zhuang, H, 2010)
" In our continuous search to discover bioactive compounds from natural products, we isolated (5R, 10R)-4R, 8R-dihydroxy-2S, 3R:15, 16-diepoxycleroda-13(16), 17, 12S:18,1S-dilactone (ECD), a diterpenoid from Tinospora cordifolia and studied its chemopreventive potential in diethylnitrosamine (DEN) induced hepatocellular carcinoma (HCC) rats."7.75Chemopreventive potential of Epoxy clerodane diterpene from Tinospora cordifolia against diethylnitrosamine-induced hepatocellular carcinoma. ( Agastian, P; Baskar, AA; Dhanasekaran, M; Duraipandiyan, V; Ignacimuthu, S, 2009)
"Modified Diethylnitrosamine (DEN)-induced primary hepatocellular carcinoma rat model was established."7.75[The expression of B-cell translocation gene 2 in diethylnitrosamine-induced primary hepatocellular carcinoma rat model.]. ( Chen, C; Jin, F; Li, Q; Li, ZP; Luo, XZ; Shan, JL; Wang, D; Wang, G; Xu, W; Yang, ZX; Zhang, ZM, 2009)
" In the present study, we investigated the antiproliferative effect of gallic acid during diethylnitrosamine (DEN)-induced hepatocellular carcinoma (HCC) in male wistar albino rats."7.74Antiproliferative potential of gallic acid against diethylnitrosamine-induced rat hepatocellular carcinoma. ( Anandakumar, P; Devaki, T; Jagan, S; Kamaraj, S; Ramakrishnan, G, 2008)
" We induced hepatocellular carcinomas (HCCs) in rats with N-nitrosodiethylamine (DEN) and a choline-deficient l-amino acid-defined (CDAA) diet."7.74Different mutation patterns of mitochondrial DNA displacement-loop in hepatocellular carcinomas induced by N-nitrosodiethylamine and a choline-deficient l-amino acid-defined diet in rats. ( Honoki, K; Mori, C; Nishikawa, T; Onishi, M; Sokuza, Y; Tsujiuchi, T; Uwataki, K, 2007)
"Cimetidine is known to have an anti-tumor effect on certain types of malignancies, though on hepatocellular carcinomas (HCCs), its effect remains unclear."7.74Anti-tumor effects of cimetidine on hepatocellular carcinomas in diethylnitrosamine-treated rats. ( Adachi, K; Amano, Y; Furuta, K; Ishihara, S; Ishine, J; Kinoshita, Y; Miyake, T; Okamoto, E; Sato, S, 2008)
" Since this receptor is also expressed on the cells of well differentiated human hepatocellular carcinomas (HCCs), we studied whether conjugation of doxorubicin (DOXO) with lactosaminated human albumin (L-HSA) increases the drug efficacy on HCCs induced in rats by diethylnitrosamine (DENA)."7.73Doxorubicin coupled to lactosaminated albumin inhibits the growth of hepatocellular carcinomas induced in rats by diethylnitrosamine. ( Bolondi, L; Busi, C; Chieco, P; Di Stefano, G; Fiume, L; Kratz, F; Lanza, M; Mattioli, A, 2005)
" However, successful gene transfer has yet to be shown for hepatocellular carcinoma (HCC); therefore, we investigated the feasibility and efficacy of hydrodynamic injection via the tail vein and hepatic artery in a diethylnitrosamine (DEN)-induced HCC model in rats."7.73High volume hydrodynamic injection of plasmid DNA via the hepatic artery results in a high level of gene expression in rat hepatocellular carcinoma induced by diethylnitrosamine. ( Hatano, E; Ikai, I; Koizumi, N; Nitta, T; Shimahara, Y; Tada, M; Taura, K, 2006)
" In this study we report that gavage administration of 200 mg/kg or 600 mg/kg CCM effectively suppressed diethylnitrosamine (DEN)-induced liver inflammation and hyperplasia in rats, as evidenced by histopathological examination."7.70Inhibition by curcumin of diethylnitrosamine-induced hepatic hyperplasia, inflammation, cellular gene products and cell-cycle-related proteins in rats. ( Cheng, AL; Chuang, SE; Kuo, ML; Lin, JK, 2000)
"In rats with diethylnitrosamine (DENA)-induced hepatocellular carcinoma (HCC), we studied in vivo gene transfer efficiency using intraportal injections of recombinant adenovirus carrying the lacZ reporter gene (AdCMVlacZ) and the therapeutic efficacy of adenovirus-mediated transfer of the thymidine kinase gene of the herpes simplex virus (HSV-tk) followed by ganciclovir (GCV) administration."7.69Gene transfer and therapy with adenoviral vector in rats with diethylnitrosamine-induced hepatocellular carcinoma. ( Bilbao, R; Bruña, O; Idoate, M; Prieto, J; Qian, C; Sangro, B; Vázquez, J, 1997)
"The effects of treatments with diethylnitrosamine (DENA) and hepatitis B virus (HBV) on macaque monkeys were investigated by virus serology and by light and electron microscopy."7.65Experimental carcinoma of liver in macaque monkeys exposed to diethylnitrosamine and hepatitis B virus. ( Cabral, GA; Gyorkey, F; Gyorkey, P; Hollinger, FB; Melnick, JL; Mirkovic, R, 1977)
"Hepatocellular carcinoma is the second most cause of death among the various cancers worldwide."5.91Chemopreventive and Therapeutic Efficacy of Enhalus acoroides against Diethylnitrosamine Induced Hepatocellular Carcinoma in Wistar Albino Rats. ( Amudha, P; Jayalakshmi, M; Poojitha, BN; Vidya, R, 2023)
"This study aimed to analyze the biochemical, histological, and gene expression alterations produced in a hepatocarcinogenesis model induced by the chronic administration of diethylnitrosamine (DEN) and 2-acetylaminofluorene (2-AAF) in Wistar rats."5.91Chronic Administration of Diethylnitrosamine and 2-Acetylaminofluorene Induces Hepatocellular Carcinoma in Wistar Rats. ( Campos-Valdez, M; Domínguez-Rosales, JA; Godínez-Rubí, JM; Martínez-López, E; Rodríguez-Reyes, SC; Sánchez-Meza, J; Sánchez-Orozco, LV; Zúñiga-González, GM, 2023)
"Nonalcoholic fatty liver disease (NAFLD) is one of the major causes of hepatocellular carcinoma (HCC)."5.72Cholic acid supplementation accelerates the progression of nonalcoholic fatty liver disease to the procarcinogenic state in mice fed a high-fat and high-cholesterol diet. ( Chun, HJ; Kwon, YH; Shim, YJ, 2022)
"ADI can inhibit a lot of CYP450 enzyme, so it may reduce the dosage of chemotherapeutic drugs to reach the required plasma concentration of chemotherapeutic drugs, which is of great significance for the combination of anti-tumor chemotherapeutic drugs and is worthy of further in-depth study and clinical attention."5.72Aidi injection altered the activity of CYP2D4, CYP1A2, CYP2C19, CYP3A2, CYP2E1 and CYP2C11 in normal and diethylnitrosamine-induced hepatocellular carcinoma in rats. ( He, Y; Huang, Y; Jin, Y; Li, Y; Liu, W; Lu, Y; Pan, J; Wang, Y; Zheng, L, 2022)
"Prunetin (PRU) is an O-methylated flavonoid that is present in various natural plants and a primary significant compound found in isoflavone."5.72Involvement of NF-κB/PI3K/AKT signaling pathway in the protective effect of prunetin against a diethylnitrosamine induced hepatocellular carcinogenesis in rats. ( Chen, H; Li, G; Qi, L; Tian, G, 2022)
"Boron has great potential to reduce the effects of oxidative stress, which may help it inhibit the progression of HCC."5.72Boron attenuated diethylnitrosamine induced hepatocellular carcinoma in C3H/HeN mice via alteration of oxidative stress and apoptotic pathway. ( Chen, J; Huang, H; Wang, J; Wei, Y; Wu, L; Yi, JK; Yin, X, 2022)
"Hepatocellular carcinoma is a well-known internal malignancy with increased worldwide mortality."5.62Farnesol alleviates diethyl nitrosamine induced inflammation and protects experimental rat hepatocellular carcinoma. ( Balaraman, G; Krishnan, P; Mari, A; Salam, S; Sirajduddin, I; Subramaniam, N; Sundaram, J; Thiruvengadam, D, 2021)
" The study aimed to investigate the pharmacokinetic mechanism of herb-drug interactions between ADI and DOX in a rat model of HCC."5.62Pharmacokinetic herb-drug interactions between Aidi injection and doxorubicin in rats with diethylnitrosamine-induced hepatocellular carcinoma. ( Cao, C; Chen, S; Huang, J; Li, Y; Liu, C; Liu, T; Lu, Y; Pan, J; Sun, J; Wang, Y; Zhang, S; Zhu, X, 2021)
"Alogliptin is an anti-diabetic that may have effective anticancer properties against many types of malignancies."5.62Attenuation of diethyl nitrosamine-induced hepatocellular carcinoma by taxifolin and/or alogliptin: The interplay between toll-like receptor 4, transforming growth factor beta-1, and apoptosis. ( Abd Elmaaboud, MA; Arab, HH; Kabel, AM, 2021)
"Liver cancer was induced in mice with hepatocyte-specific disruption of Myc and control mice by administration of diethylnitrosamine."5.62Myelocytomatosis-Protein Arginine N-Methyltransferase 5 Axis Defines the Tumorigenesis and Immune Response in Hepatocellular Carcinoma. ( Cai, J; Chen, L; Gao, Y; Gonzalez, FJ; Guo, X; Jiang, J; Krausz, KW; Liu, W; Luo, Y; Qu, A; Sun, L; Takahashi, S; Tang, W; Wang, Y; Xie, C; Yang, S; Yang, Y, 2021)
" However, the bioavailability of ABZ is very poor."5.62Albendazole-loaded cubosomes interrupt the ERK1/2-HIF-1α-p300/CREB axis in mice intoxicated with diethylnitrosamine: A new paradigm in drug repurposing for the inhibition of hepatocellular carcinoma progression. ( Amin, NA; Batiha, GE; El-Ahwany, E; El-Rous, MA; Elagamy, HI; Elewa, YHA; Elsergany, RN; Girgis, S; Gobba, NA; Hafez, AM; Kaddah, MMY; Kamal, I; Khodir, AE; Mahmoud, MH; Mourad, AAE; Nasr, M; Saad, AS; Saber, S; Shata, A, 2021)
"ET in the prevention of liver cancer is poorly understood."5.56Endurance training but not high-intensity interval training reduces liver carcinogenesis in mice with hepatocellular carcinogen diethylnitrosamine. ( Cao, L; Ding, S; Ji, B; Li, L; Qi, Z; Zhang, X, 2020)
" Clinically achievable dosing of EGCG was well-tolerated in diethylnitrosamine-injured rats and was associated with improved serum liver markers including alanine transaminase, aspartate transaminase, and total bilirubin, and reduced HCC tumor formation."5.56Epigallocatechin Gallate Induces Hepatic Stellate Cell Senescence and Attenuates Development of Hepatocellular Carcinoma. ( Erstad, DJ; Fuchs, BC; Fujii, T; Hirschfield, H; Hoshida, Y; Kim, RS; Lanuti, M; Lauwers, GY; Sojoodi, M; Tanabe, KK; Wei, L; Yamada, S, 2020)
"The Diethylnitrosamine (DEN) model has an age-related effect."5.56A Modified Protocol of Diethylnitrosamine Administration in Mice to Model Hepatocellular Carcinoma. ( Jung, Y; Lee, JI; Lee, WK; Memon, A; Pyao, Y, 2020)
"Treatment of DEN-induced hepatocellular carcinoma Wistar rats with the extract caused significant (p < 0."5.56Annona senegalensis extract demonstrates anticancer properties in N-diethylnitrosamine-induced hepatocellular carcinoma in male Wistar rats. ( Adebayo, AH; Adelani, IB; Adesina, GO; Edokwe, CB; Metibemu, DS; Oseha, OE; Yakubu, OF, 2020)
"Sorafenib (SO) is a multi-kinase inhibitor that targets upstream signals in the MAPK pathway."5.51Mebendazole augments sensitivity to sorafenib by targeting MAPK and BCL-2 signalling in n-nitrosodiethylamine-induced murine hepatocellular carcinoma. ( Ghanim, AMH; Saber, S; Younis, NS, 2019)
"Echinacoside (ECH) is a phenylethanoid glycoside extracted from a Chinese herbal medicine, Cistanches salsa."5.51Anticancer effects of echinacoside in hepatocellular carcinoma mouse model and HepG2 cells. ( Ni, J; Song, Y; Wang, G; Xia, W; Ye, Y; Zhuang, J, 2019)
"Pioglitazone treatment started at the first signs of fibrosis in both models."5.51Pioglitazone Reduces Hepatocellular Carcinoma Development in Two Rodent Models of Cirrhosis. ( Arora, G; Baumert, TF; Erstad, DJ; Fuchs, BC; Ghoshal, S; Hoshida, Y; Lanuti, M; Li, S; Masia, R; Sojoodi, M; Tanabe, KK, 2019)
"Hepatocellular carcinoma is the most frequent kind of primary liver cancer and occurs mostly in patients with chronic liver disease and cirrhosis."5.51Mangiferin Attenuated Diethynitrosamine-Induced Hepatocellular Carcinoma in Sprague-Dawley Rats via Alteration of Oxidative Stress and Apoptotic Pathway. ( Cui, G; Shang, X; Wang, N; Yang, G; Zhao, H; Zhao, L, 2019)
" Thus, we hypothesized that chronic administration of different DEN treatments identifies the best-fit dose to induce the HCC and/or to determine whether small DEN doses act synergistically with other known hepatotoxins to induce HCC in mice."5.51Chronic administration of diethylnitrosamine to induce hepatocarcinogenesis and to evaluate its synergistic effect with other hepatotoxins in mice. ( Alarcón-Sánchez, BR; Aparicio-Bautista, DI; Arellanes-Robledo, J; Baltiérrez-Hoyos, R; Castro-Gil, MP; Fuentes-Hernández, S; Guerrero-Escalera, D; Idelfonso-García, OG; Lakshman, MR; López-González, ML; Montes-Aparicio, AV; Pérez-Carreón, JI; Pérez-Hernández, JL; Reyes-Gordillo, K; Rosas-Madrigal, S; Sierra-Santoyo, A; Vásquez-Garzón, VR; Villa-Treviño, S, 2019)
"Non-alcoholic fatty liver disease (NAFLD), the hepatic manifestation of obesity, is an emerging risk factor for hepatocellular carcinoma (HCC)."5.48Eicosapentaenoic acid attenuates obesity-related hepatocellular carcinogenesis. ( Inoue-Yamauchi, A; Itagaki, H; Oda, H, 2018)
"The global burden of hepatocellular carcinoma is increasing; actually, it is estimated as 750,000 new cases annually."5.46Gallic acid against hepatocellular carcinoma: An integrated scheme of the potential mechanisms of action from in vivo study. ( Aglan, HA; Ahmed, HH; El-Toumy, SA; Mahmoud, NS, 2017)
"Rats from all groups were assessed for liver cancer progression or inhibition by evaluating histological, biochemical, antioxidant enzyme status, cytokines and gene expression profiles."5.46Anti-cancer effects of Ajwa dates (Phoenix dactylifera L.) in diethylnitrosamine induced hepatocellular carcinoma in Wistar rats. ( Abuzenadah, A; Al-Qahtani, M; Barbour, E; Chaudhary, A; Kalamegam, G; Khan, F; Khan, TJ; Kumosani, T; Pushparaj, PN, 2017)
"Several animal models of nonalcoholic steatohepatitis have been developed to facilitate its study; however, few fully recapitulate all its clinical features, which include insulin resistance, inflammation, fibrosis, and carcinogenesis."5.43Development of a novel mouse model of hepatocellular carcinoma with nonalcoholic steatohepatitis using a high-fat, choline-deficient diet and intraperitoneal injection of diethylnitrosamine. ( Abe, Y; Aiura, K; Hibi, T; Itano, O; Kishida, N; Kitagawa, Y; Kitago, M; Masugi, Y; Matsuda, S; Sakamoto, M; Shinoda, M; Yagi, H, 2016)
"Caudatin is a potential antitumor agent isolated from the traditional Chinese medicine "baishouwu", which was the root tuber of Cynanchum auriculatum Royle ex Wight."5.42Pharmacokinetics and tissue distribution study of caudatin in normal and diethylnitrosamine-induced hepatocellular carcinoma model rats. ( Ding, Y; Peng, Y, 2015)
"At present, the treatment of hepatocellular carcinoma (HCC) is an international problem."5.42Doxorubicin and curcumin co-delivery by lipid nanoparticles for enhanced treatment of diethylnitrosamine-induced hepatocellular carcinoma in mice. ( Chen, Q; Li, Y; Liu, W; Tang, H; Yang, X; Zhao, X, 2015)
"The treatment with astemizole prevented diethylnitrosamine (DEN)-induced rat HCC development in vivo (followed by studying γ-glutamyl transpeptidase (GGT) activity)."5.42Astemizole-based anticancer therapy for hepatocellular carcinoma (HCC), and Eag1 channels as potential early-stage markers of HCC. ( Acuña-Macías, I; Camacho, J; Caro-Sánchez, CH; Chiliquinga, AJ; de Guadalupe Chávez-López, M; Díaz-Chávez, J; Gariglio, P; Hernández-Gallegos, E; Herrera, LA; Pérez-Carreón, JI; Zuñiga-García, V, 2015)
"Fgl1 expression is decreased in hepatocellular carcinoma (HCC) and its loss correlates with a poorly differentiated phenotype."5.42Targeted disruption of fibrinogen like protein-1 accelerates hepatocellular carcinoma development. ( Bronson, RT; Cohen, DE; Demchev, V; Desai, A; Hornick, JL; Nayeb-Hashemi, H; Ukomadu, C, 2015)
"Early diagnosis of hepatocellular carcinoma (HCC) remains challenging to date."5.42Metabolomics Identifies Biomarker Pattern for Early Diagnosis of Hepatocellular Carcinoma: from Diethylnitrosamine Treated Rats to Patients. ( Hu, C; Huang, X; Lin, X; Niu, J; Tan, Y; Wang, H; Wang, X; Yin, P; Zeng, J; Zhou, L, 2015)
"Melatonin was given in drinking water at 1 mg/kg/d, beginning 5 or 12 weeks after the start of DEN administration."5.42Melatonin Activates Endoplasmic Reticulum Stress and Apoptosis in Rats with Diethylnitrosamine-Induced Hepatocarcinogenesis. ( Cerski, CT; García-Palomo, A; González-Gallego, J; Marroni, NP; Mauriz, JL; Moreira, AJ; Ordoñez, R; Picada, JN, 2015)
"Treatment with leflunomide, perindopril or curcumin alone abrogated the DEN-induced increased MVD as well as the elevated expression of VEGF, while only curcumin inhibited HIF-1α hepatic expression."5.40Targeting different angiogenic pathways with combination of curcumin, leflunomide and perindopril inhibits diethylnitrosamine-induced hepatocellular carcinoma in mice. ( Hamed, O; Kazem, A; Nasr, M; Selima, E, 2014)
"Interestingly, HFD, which induced hyperlipidemia and hepatic steatosis, attenuated DEN-related malnutrition and fibrosis progression in HFD + DEN group during 10-14 weeks."5.40High-saturate-fat diet delays initiation of diethylnitrosamine-induced hepatocellular carcinoma. ( Ding, WJ; Duan, XY; Fan, JG; Pan, Q; Qiao, L; Yan, SY, 2014)
"However, the change of 5 hmC level in hepatocellular carcinoma (HCC) and association with clinical outcome were not well defined."5.39Decrease of 5-hydroxymethylcytosine is associated with progression of hepatocellular carcinoma through downregulation of TET1. ( Bian, XW; Bie, P; Chen, X; Cui, Y; Liu, C; Liu, L; Qian, C; Shan, J; Shen, J; Wu, L; Xia, F; Xu, Y; Yang, Z, 2013)
"The findings suggest that RGP prevents hepatocellular carcinoma by suppressing the marked increase in the levels of serum marker enzymes, and suppresses the free radical by scavenging hydroxyl radicals."5.39Anticancer potential of rhamnocitrin 4'-β-D-galactopyranoside against N-diethylnitrosamine-induced hepatocellular carcinoma in rats. ( Ahmad, K; Ahmad, P; Al-Harbi, NO; Alam, MJ; Imam, F; Iqbal, M; Khusroo, MJ; Rahman, RU; Saleem, S; Shaharyar, MA, 2013)
"Hepatocellular carcinoma is one of the most common cancers and lethal diseases in the world."5.38Myrtenal, a natural monoterpene, down-regulates TNF-α expression and suppresses carcinogen-induced hepatocellular carcinoma in rats. ( Babu, LH; Balasubramanian, MP; Perumal, S, 2012)
" Simultaneously, hepatocarcinoma were induced in groups II-V by diethylnitrosamine (DEN) solution (100 mg/L) at the dosage of 10 mg/kg body weight every day as drinking water for 16 weeks, then sterilized water for a further two weeks."5.35Effect of selenium-enriched malt on hypoglycemia and regulatory hormones in diethylnitrosamine-induced hepatocarcinoma SD rats. ( Liu, JG; Liu, YJ; Wang, XL; Zhao, HJ, 2009)
"Ursolic acid is a natural triterpenoid widely found in food, medicinal herbs, apple peel and other products it has been extensively studied for its anticancer and antioxidant properties."5.35Ursolic acid attenuates oxidative stress-mediated hepatocellular carcinoma induction by diethylnitrosamine in male Wistar rats. ( Gayathri, R; Gunassekaran, GR; Priya, DK; Sakthisekaran, D, 2009)
"Incidences of lung metastasis in the 40 ppm group steadily increased up to 67% by week 36 while that in the 80 ppm increased sharply up to 86% by week 24."5.33Modification of an in vivo lung metastasis model of hepatocellular carcinoma by low dose N-nitrosomorpholine and diethylnitrosamine. ( Cho, YM; Futakuchi, M; Imai, N; Ogawa, K; Shirai, T; Takeshita, F; Tamano, S; Yoshino, H, 2005)
"The question whether hepatocellular carcinoma (HCC) arises from dedifferentiation of mature hepatocytes or from proliferation of liver stem cells is still debated."5.31Demonstration of direct lineage between hepatocytes and hepatocellular carcinoma in diethylnitrosamine-treated rats. ( Bralet, MP; Ferry, N; Pichard, V, 2002)
"Primary hepatocellular carcinoma (HCC) is probably one of the most common fatal forms of liver cancer."5.30Hepatocellular carcinoma cell lines from diethylnitrosamine phenobarbital-treated rats. Characterization and sensitivity to endothall, a protein serine/threonine phosphatase-2A inhibitor. ( Adam, R; Anjo, A; Blazsek, I; Legras, S; Marion, S; Misset, JL; Reynes, M; Thièry, JP, 1999)
" To this end, chemical carcinogenesis protocols based on the injection of genotoxic compounds such as diethylnitrosamine (DEN) are widely used to model liver tumorigenesis in rodents."5.12Diethylnitrosamine-induced liver tumorigenesis in mice. ( Hasselblatt, P; Schulien, I, 2021)
" Six rats each were given tap water containing diethylnitrosamine (DEN) at 100 ppm for 8 or 14 weeks; Adenoma group and Hepatocellular carcinoma (HCC) group, respectively."4.31Safety and Feasibility of Contrast-Enhanced Computed Tomography with a Nanoparticle Contrast Agent for Evaluation of Diethylnitrosamine-Induced Liver Tumors in a Rat Model. ( Jogo, A; Kageyama, K; Kakehashi, A; Miki, Y; Murai, K; Nota, T; Ogawa, S; Sohgawa, E; Yamamoto, A; Yonezawa, H, 2023)
"The purpose of this study was to investigate the effect of combined therapy of diacerein and gold nanoparticles (AuNP) on diethylnitrosamine (DEN) induced hepatocellular carcinoma (HCC) in a rat model."4.31Attenuation of diethylnitrosamine-induced hepatocellular carcinoma in a rat model by combination therapy of diacerein and gold nanoparticles: a histopathological and immunohistochemical study. ( Baokbah, TAS, 2023)
"The data reveals potential of saroglitazar for chemoprevention of hepatocellular carcinoma in patients with NAFLD/NASH."4.31Saroglitazar suppresses the hepatocellular carcinoma induced by intraperitoneal injection of diethylnitrosamine in C57BL/6 mice fed on choline deficient, l-amino acid- defined, high-fat diet. ( Bhoi, B; Giri, SR; Ingale, K; Jain, MR; Kadam, S; Nyska, A; Patel, H; Ranvir, R; Rath, A; Rathod, R; Sharma, A; Trivedi, C, 2023)
"This study was designed to evaluate the potential protective impact of estrogen and estrogen receptor against diethylnitrosamine (DEN)-induced hepatocellular carcinoma (HCC) in rats."4.31Estrogen Attenuates Diethylnitrosamine-Induced Hepatocellular Carcinoma in Female Rats via Modulation of Estrogen Receptor/FASN/CD36/IL-6 Axis. ( Abdel-Hamid, MS; Abdelhady, R; El-Sayed, EM; Elsadek, BEM; Hassan, MH; Mansour, AM; Salama, SA, 2023)
" O-GlcNAc transferase-KO mice exacerbated diethylnitrosamine-induced HCC development with increased inflammation, fibrosis, and YAP signaling."4.31The essential role of O-GlcNAcylation in hepatic differentiation. ( Apte, U; Hanover, JA; Kotulkar, M; Paine-Cabrera, D; Robarts, DR; Slawson, C; Venneman, KK; Zachara, NE, 2023)
" Further we emphasize to study the role of CPT against hepatocellular carcinoma (HCC) induced by N-diethylnitrosamine (DEN) in male swiss albino mice in vivo."4.12Potential anticancer effects of cyclo(-Pro-Tyr) against N-diethyl nitrosamine induced hepatocellular carcinoma in mouse through PI3K/AKT signaling. ( Arumugam, MK; Karanam, G, 2022)
"25% salt in drinking water improved body weight reduction associated with sodium and water retention in hepatocellular carcinoma rats, which was suppressed by treatment with spironolactone, a mineralocorticoid receptor antagonist."4.12Hepatocellular carcinoma induces body mass loss in parallel with osmolyte and water retention in rats. ( Kidoguchi, S; Kitada, K; Kittikulsuth, W; Kobara, H; Masaki, T; Nakajima, K; Nakano, D; Nishiyama, A; Ohsaki, H; Takahashi, K; Titze, J; Yokoo, T, 2022)
"Our results show that the expression of mRNA of IQGAP1, TRAIL decoy receptors, NF-κB, and IL-8 genes was elevated in hepatocellular carcinoma, as compared to normal liver tissue, while their expression was further up-regulated by increasing the dose of diethylnitrosamine."4.12New Approach about the Signaling Crosstalk between IQGAPs/ NF- κB/IL-8 and PDCD5/p53/TRAIL Pathways that Modulate Malignant Transformation in Hepatocellular Carcinoma. ( Abdelhafez, MA; Darwish, AM; Mahrous, KF; Zoheir, KMA, 2022)
"Swiss Albino (BALB/c) mice of around 10-12 weeks old were exposed to a known hepatocarcinogen-diethylnitrosamine at a dose of 20 mg/kg body weight at weekly intervals for a period of 4, 8, 12, & 16 weeks."4.12Modulation of EphA7 and pEphA7 Protein Expression: Potential Biomarkers for Early Detection of Hepatocellular Carcinoma. ( Kma, L; Priya, S, 2022)
"These findings demonstrated that ADSC-derived exosomes could efficiently alleviate hepatic fibrosis by suppressing HSCs activation and remodeling glutamine and ammonia metabolism mediated by hepatocellular glutamine synthetase, which might be a novel and promising anti-fibrotic therapeutics for hepatic fibrosis disease."4.12ADSCs-derived exosomes ameliorate hepatic fibrosis by suppressing stellate cell activation and remodeling hepatocellular glutamine synthetase-mediated glutamine and ammonia homeostasis. ( Feng, J; Fu, Q; Guo, J; Ling, B; Ning, K; Wang, J; Wu, B; Xiu, G; Xu, J, 2022)
"Hepatocellular carcinoma was induced in 40 rats with diethylnitrosamine."4.12Therapeutic Role of Bone Marrow-Derived Mesenchymal Stem Cells in Controlling Prognosis of Hepatocellular Carcinoma in a Murine Model. ( Abd El Fattah El Sayed, H; Atta, S; Elzayat, E; Hussein, T; Kamel, M; Mahmood, D; Mansour, W; Saber, S, 2022)
" Take advantage of the combinatory treatment with a single dose of diethylnitrosamine (DEN) and chronic feeding with high-fat diet (HFD), we demonstrated that hepatic depdc5 deletion did not aggravate DEN&HFD induced liver tumorigenesis, probably due to its protective effects on diet-induced liver steatosis."4.02Persistent mTORC1 activation via Depdc5 deletion results in spontaneous hepatocellular carcinoma but does not exacerbate carcinogen- and high-fat diet-induced hepatic carcinogenesis in mice. ( Huang, R; Li, Z; Ma, H; Ma, J; Wang, J; Wang, Q; Xiong, X; Xu, L; Yang, C, 2021)
"Recently, our group showed that Romidepsin, a histone deacetylase inhibitor (HDACi), suppressed diethylnitrosamine (DEN)-induced hepatocellular carcinoma (HCC) in mice."4.02Romidepsin hepatocellular carcinoma suppression in mice is associated with deregulated gene expression of bone morphogenetic protein and Notch signaling pathway components. ( Afaloniati, H; Angelopoulou, K; Gargavanis, A; Giakoustidis, A; Giakoustidis, D; Poutahidis, T, 2021)
" Here, hyperpolyploidization of hepatocytes around the centrilobular (CL) region is demonstrated to be closely linked with the development of HCC cells after diethylnitrosamine treatment."4.02Hyperpolyploidization of hepatocyte initiates preneoplastic lesion formation in the liver. ( Chao, HW; Chen, H; Chen, HW; Doi, M; Fustin, JM; Hou, HS; Huang, YS; King, PC; Lai, HH; Lee, YL; Lin, H; Lin, SH; Young, PY, 2021)
" In pre-clinical models, including diethylnitrosamine- (DEN-) induced hepatocellular carcinoma (HCC), anti-androgen therapies delay hepatocarcinogenesis."4.02Inhibition of androgen/AR signaling inhibits diethylnitrosamine (DEN) induced tumour initiation and remodels liver immune cell networks. ( Campbell, MJ; Clinton, SK; Coss, CC; Getaneh, S; Helms, TH; Kulp, SK; LeMoine, DM; Lucas, F; Mullins, RD; Phelps, MA; Schmidt, N; Thomas-Ahner, JM; Xie, Z, 2021)
" nigra extract (MNE) on diethylnitrosamine (DEN)-induced hepatocellular carcinoma (HCC)."4.02Morus nigra L. extract prolongs survival of rats with hepatocellular carcinoma. ( Ghorbani, A; Hasanpour, M; Hooshmand, S; Iranshahi, M; Mahdinezhad, MR; Mirzavi, F; Soukhtanloo, M; Taraz Jamshidi, S, 2021)
" Here, we investigated the effects of maternal diets differing in protein source on diethylnitrosamine (DEN)-induced hepatocarcinogenesis in adult rat offspring."3.96Maternal Consumption of a Low-Isoflavone Soy Protein Isolate Diet Accelerates Chemically Induced Hepatic Carcinogenesis in Male Rat Offspring. ( Choi, J; Kwon, YH; Won, SB, 2020)
" The present study investigates the anticancer activity of ligand-L and its mode of action in rat model of diethylnitrosamine (DEN) induced hepatocellular carcinoma."3.96Redox cycling of copper by coumarin-di(2-picolyl)amine hybrid molecule leads to ROS-mediated modulation of redox scavengers, DNA damage and cell death in diethylnitrosamine induced hepatocellular carcinoma. ( Khan, S; Naseem, I; Zafar, A, 2020)
"This study aimed to investigate the potential role of co-treatment with doxorubicin (DOX) and verapamil (VRP) nanoparticles in experimentally induced hepatocellular carcinoma in mice and to investigate the possible mechanisms behind the potential favorable effect of the co-treatment."3.96Effect of co-treatment with doxorubicin and verapamil loaded into chitosan nanoparticles on diethylnitrosamine-induced hepatocellular carcinoma in mice. ( Abo Mansour, HE; Abo-Elmatty, DM; Badawy, NS; El-Batsh, MM; Mehanna, ET; Mesbah, NM, 2020)
" Nimbolide is a tetranotriterpenoid that has been shown to have antioxidant and anti-proliferative properties; however, its anticancer effects and molecular mechanism in hepatocellular carcinoma (HCC) remains obscure."3.96Nimbolide inhibits tumor growth by restoring hepatic tight junction protein expression and reduced inflammation in an experimental hepatocarcinogenesis. ( Ram, AK; Srinivas, BH; Vairappan, B, 2020)
" In the second set of experiments, hypertrophy of the adipocytes was suppressed, and the concentration of adiponectin and leptin in the adipose tissue decreased by MCT."3.91Effects of Medium-chain Triglycerides Administration in Chemically-induced Carcinogenesis in Mice. ( Akazawa, Y; Fujii, H; Fukushima, H; Hagio, K; Ichikawa, D; Kono, H; Maruyama, S; Nakata, Y; Wakana, H, 2019)
" We observed that FUN14 domain-containing 1 (FUNDC1), a previously characterized mitophagy receptor, accumulates in most human hepatocellular carcinomas (HCCs), and we thus explored the role of FUNDC1-mediated mitophagy in HCC initiation and progression in a mouse model in which HCC is induced by the chemical carcinogen, diethylnitrosamine (DEN)."3.91FUN14 Domain-Containing 1-Mediated Mitophagy Suppresses Hepatocarcinogenesis by Inhibition of Inflammasome Activation in Mice. ( Chen, Q; Du, L; Fan, Y; Huang, X; Jin, H; Li, W; Li, Y; Liu, L; Siraj, S; Wang, J; Wang, X; Yang, X, 2019)
" In the current study, we continued to assess the therapeutic efficaciousness of the newly synthesized gallium nanoparticles (GaNPs) combined with low level of gamma radiation (IR), on the incidence of diethylnitrosamine (DEN)-induced hepatocellular carcinoma (HCC) in rats."3.91Gallium nanoparticles along with low-dose gamma radiation modulate TGF-β/MMP-9 expression in hepatocellular carcinogenesis in rats. ( El-Sonbaty, SM; Mansour, SZ; Moawed, FS, 2019)
"Mito-TEMPO was effective in combating hepatocarcinogenesis."3.91Mito-TEMPO, a mitochondria-targeted antioxidant, prevents N-nitrosodiethylamine-induced hepatocarcinogenesis in mice. ( Bharati, S; Kumar, R; Shetty, S, 2019)
" In this study, the efficacy and toxicity of protocatechuic acid intercalated in zinc aluminum-layered double hydroxide nanoparticles (PCA-ZnAl) against diethylnitrosamine/phenobarbital (DEN/PB)-induced hepatocellular carcinoma (HCC) in BALB/c mice was evaluated."3.91Effect of protocatechuic acid-layered double hydroxide nanoparticles on diethylnitrosamine/phenobarbital-induced hepatocellular carcinoma in mice. ( Barahuie, F; Fakurazi, S; Gani, SA; Hussein, MZ; Kura, AU; Muhammad, SA, 2019)
" Diethylnitrosamine (DEN) is one of the recognized risk factors for hepatocarcinogenesis likely due to CYP2E1-mediated metabolic activation."3.88Higher CYP2E1 Activity Correlates with Hepatocarcinogenesis Induced by Diethylnitrosamine. ( Chang, Z; Fang, Y; Gao, J; Gao, N; Jin, H; Qiao, HL; Wang, CE; Wang, GJ; Wang, J; Wang, Z; Zhang, HX; Zhang, YF; Zhou, J, 2018)
" We studied mice with bile-duct ligation, orthotopic cholangiocarcinomas, cholestasis-induced cholangiocarcinoma, diethylnitrosamine-induced liver tumors, and xenograft tumors."3.88Mechanisms of MAFG Dysregulation in Cholestatic Liver Injury and Development of Liver Cancer. ( Annamalai, A; Fan, W; Li, TWH; Liu, T; Liu, Z; Lu, SC; Maldonado, SS; Mato, JM; Noureddin, M; Seki, E; Shen, H; Steggerda, J; Tu, J; Wang, J; Xiong, T; Yang, H; Yang, J, 2018)
"Hepatocellular carcinoma (HCC) was induced in male Wistar rats by the administration of diethylnitrosamine (DEN) during 16 weeks."3.88Resistive Part of Impedance as a Possible Indicator of Hepatocellular Carcinoma. ( Camacho, J; Chávez-López, MG; Elías-Viñas, D; Salazar-Anguiano, J; Zúñiga-García, V, 2018)
"encapsulated GA-NC (gallic acid nanocomposite) in normal and hepatocellular carcinoma (HCC)-induced rats."3.88Improving Anti-Cancer Potentiality and Bioavailability of Gallic Acid by Designing Polymeric Nanocomposite Formulation ( Abd-Rabou, AA; Ahmed, HH; Galal, AF; Mehaya, FM; Shalby, AB, 2018)
"To test the hypotheses that (i) heavier rats demonstrate improved survival with diminished fibrosis in a diethylnitrosamine (DEN)-induced model of hepatocellular carcinoma (HCC) and (ii) transarterial embolization via femoral artery access decreases procedure times versus carotid access."3.85Relative Initial Weight Is Associated with Improved Survival without Altering Tumor Latency in a Translational Rat Model of Diethylnitrosamine-Induced Hepatocellular Carcinoma and Transarterial Embolization. ( Furth, EE; Gade, TP; Hunt, SJ; Kiefer, RM; Nadolski, GJ; Pickup, S; Pulido, S; Soulen, MC, 2017)
"Rationale of this study was framed to investigate the protective effect and anti-cancer property of nanoparticles based on chitosan isolated from squid, Sepioteuthis lessoniana, on hepatic cells in N-Nitrosodiethylamine-induced hepatocellular carcinoma in rats."3.85Chitosan nanoparticles from marine squid protect liver cells against N-diethylnitrosoamine-induced hepatocellular carcinoma. ( Shanmugam, A; Shanmugam, V; Subhapradha, N, 2017)
" Here, we investigated the roles of insulin receptor substrate (Irs) 1 and Irs2, both of which are the major molecules to be responsible for transducing insulin/IGF signaling in the liver, in the development of HCC by inducing chemical carcinogenesis using diethylnitrosamine (DEN) in mice."3.85Role of insulin receptor substrates in the progression of hepatocellular carcinoma. ( Aihara, M; Hayashi, T; Iwamoto, M; Kadowaki, T; Kubota, N; Kubota, T; Nishihara, H; Obata, A; Sakurai, Y; Takamoto, I, 2017)
"This study aimed to evaluate the antitumor activity of platinum nanoparticles compared with cis-platin both in vitro and in vivo in the treatment of hepatocellular carcinoma induced in rats."3.85Evaluation of the antitumor activity of platinum nanoparticles in the treatment of hepatocellular carcinoma induced in rats. ( El-Sonbaty, S; Kandil, E; Mahmoud, M; Mansour, S; Medhat, A, 2017)
" Hepatocellular Carcinoma (HCC) was induced in the liver of male Sprague Dawley (SD) rats by treating with diethylnitrosamine (DEN)."3.85In vitro, In silico and In vivo Antitumor Activity of Crude Methanolic Extract of Tetilla dactyloidea (Carter, 1869) on DEN Induced HCC in a Rat Model. ( Antony Joseph, SR; Krishnan, GS; Rajagopal, V; Savarimuthu, I; Sebastian, D; Selvaraj, KRN; Thobias, AF, 2017)
"The purpose of the present study was to evaluate the effects of cordycepin (CA) on N-nitrosodiethylamine (NDEA)-induced hepatocellular carcinomas (HCC) and explore its potential mechanisms."3.85Anti-hepatocarcinoma effect of cordycepin against NDEA-induced hepatocellular carcinomas via the PI3K/Akt/mTOR and Nrf2/HO-1/NF-κB pathway in mice. ( Chen, B; Li, D; Lian, S; Lin, X; Wei, H; Yang, T; Zeng, Y, 2017)
" Melatonin shows beneficial effects in cell and animal models of hepatocellular carcinoma, but it is unknown if they are associated with the modulation of the SphK/S1P system, along with different downstream signaling pathways modified in cancer."3.85Melatonin prevents deregulation of the sphingosine kinase/sphingosine 1-phosphate signaling pathway in a mouse model of diethylnitrosamine-induced hepatocellular carcinoma. ( Crespo, I; de Urbina, JO; González-Fernández, B; González-Gallego, J; San-Miguel, B; Sánchez, DI; Tuñón, MJ, 2017)
" In the present study, the effects of metformin on the development and recurrence of hepatocellular carcinoma (HCC) were investigated using the diethylnitrosamine (DEN)‑induced rat model of HCC."3.83Metformin inhibits early stage diethylnitrosamine‑induced hepatocarcinogenesis in rats. ( Chang, M; Choi, HJ; Jang, JJ; Jang, S; Jo, W; Lee, HJ; Park, HK; Ryu, JE; Son, WC; Yu, ES, 2016)
" Using the diethylnitrosamine-induced hepatocarcinogenesis model, 2-Formyl-8-hydroxy-quinolinium chloride showed strong antiangiogenic activity."3.83Antiangiogenic activity of 2-formyl-8-hydroxy-quinolinium chloride. ( Bian, ZX; Chan, KW; Chan, RY; Cheng, CH; Cheng, GY; Chui, CH; Gambari, R; Hau, DK; Kok, SH; Lam, KH; Lau, FY; Lee, KK; Tang, JC; Tong, SW; Wong, RS; Wong, WY, 2016)
" The aim of this study was to evaluate the anti-tumor effect of Celastrol against diethylnitrosamine (DEN)-induced hepatocellular carcinoma (HCC) in rats and furthermore, to explore the underlying mechanism."3.83Protective effects of Celastrol on diethylnitrosamine-induced hepatocellular carcinoma in rats and its mechanisms. ( Chang, W; He, W; Li, PP; Lu, JT; Song, SS; Wei, W; Yuan, PF, 2016)
"The purpose of this study was to reduce the time to tumor onset in a diethylnitrosamine (DEN)-induced hepatocellular carcinoma (HCC) swine model via partial liver embolization (PLE) and to characterize the model for use in translational research."3.83Validation of a Preclinical Model of Diethylnitrosamine-Induced Hepatic Neoplasia in Yucatan Miniature Pigs. ( Amin, HM; Avritscher, R; Cressman, E; Eskandari, G; Kaseb, AO; Konnath George, S; Mitchell, J; Morris, JS; Rashid, A; Tinkey, PT; Uthamanthil, R; Van Pelt, C; Xiao, L, 2016)
" The target of the current study was to examine the immunomodulatory effect of DEC, Setaria equina ES or a combination of them on rat hepatocellular carcinoma (HCC) induced by diethylnitrosamine (DEN)."3.81Immunomodulatory effect of diethylcarbamazine citrate plus filarial excretory-secretory product on rat hepatocarcinogenesis. ( Abdel-Latif, M; El-Fayoumi, H; El-Mallah, AM; El-Shahawi, G; Sakran, T, 2015)
"In this study, we explored whether treatment with FGF-21 could prevent diethylnitrosamine (DEN) induced hepatocarcinogenesis in mice."3.81Long-Term Administration of Fibroblast Growth Factor 21 Prevents Chemically-Induced Hepatocarcinogenesis in Mice. ( Li, D; Liu, M; Liu, Z; Rasoul, LM; Ren, G; Wang, W; Wu, Q; Xu, P; Ye, X; Yuan, Q; Zhang, Y, 2015)
" To further confirm our hypothesis in vivo, we induced hepatocellular carcinoma (HCC) in rats by diethylnitrosamine (DEN)."3.81Targeting increased copper levels in diethylnitrosamine induced hepatocellular carcinoma cells in rats by epigallocatechin-3-gallate. ( Ahmad, A; Farhan, M; Hadi, SM; Naseem, I; Rizvi, A, 2015)
" Maid levels were also high in hepatic preneoplastic foci induced by treatment of zebrafish with diethylnitrosamine (DEN), but low in hepatocellular carcinomas (HCC), mixed tumors, and cholangiocarcinomas developing in these animals."3.81Evidence for a Role of the Transcriptional Regulator Maid in Tumorigenesis and Aging. ( Fujisawa, K; Furutani-Seiki, M; Matsumoto, T; Nishina, H; Sakaida, I; Takami, T; Terai, S; Yamamoto, N, 2015)
" The present study was envisaged to investigate the possible synergistic effect of combined treatment of curcumin with piperine in suppression of diethylnitrosamine (DENA)-induced hepatocellular carcinoma (HCC) in rats, owing to permeability enhancing effect of latter."3.81Synergistic effect of curcumin and piperine in suppression of DENA-induced hepatocellular carcinoma in rats. ( Padwad, YS; Patial, V; Pratap, K; S, M; Sharma, S; Singh, D, 2015)
" The present experimental study was designed to outline the roles of these players and to investigate the tumor suppressive effects of curcumin with or without mesenchymal stem cells (MSCs) in hepatocellular carcinoma (HCC)."3.81Altered Cell to Cell Communication, Autophagy and Mitochondrial Dysfunction in a Model of Hepatocellular Carcinoma: Potential Protective Effects of Curcumin and Stem Cell Therapy. ( Abdelmaqsoud, OM; Khaleel, EF; Tork, OM, 2015)
" The aim of this study was to investigate molecular mechanisms for the chemopreventive effects of folic acid and tributyrin alone or in combination on rat hepatocarcinogenesis."3.80Transcriptomic responses provide a new mechanistic basis for the chemopreventive effects of folic acid and tributyrin in rat liver carcinogenesis. ( Beland, FA; Campos, A; Carrilho, J; de Conti, A; Furtado, KS; Fuscoe, JC; Guariento, AH; Han, T; Moreno, FS; Pogribny, IP; Purgatto, E; Ross, SA; Shinohara, EM; Tryndyak, V, 2014)
" In this study, we characterized cell signaling events evoked by decorin deficiency in two experimental models of hepatocarcinogenesis using thioacetamide or diethyl nitrosamine as carcinogens."3.80Decorin deficiency promotes hepatic carcinogenesis. ( Baghy, K; Fullár, A; Horváth, Z; Iozzo, RV; Kiss, K; Kovalszky, I; Schaff, Z, 2014)
"We investigated the possible therapeutic effect of irreversible proteasome inhibitor, carfilzomib against hepatocellular carcinoma induced chemically by chronic administration of diethylnitrosoamines (DENA)."3.80Possible role of selective, irreversible, proteasome inhibitor (carfilzomib) in the treatment of rat hepatocellular carcinoma. ( Al-Hosaini, K; Al-Rikabi, AC; Aljoufi, MA; Mansour, MA; Nagi, MN, 2014)
"The purpose of the present study was to evaluate the preventive effects of hydrazinocurcumin (HZC) on diethylnitrosamine (DEN)-induced hepatocarcinogenesis in a male Sprague Dawley (SD) rat model."3.80Preventive effect of hydrazinocurcumin on carcinogenesis of diethylnitrosamine-induced hepatocarcinoma in male SD rats. ( Geng, CZ; Liu, YP; Peng, L; Wang, SJ; Wang, X; Yang, HC; Zhao, JA, 2014)
"The possible molecular mechanisms of Nano-selenium (nano-se) in attenuating hepatocellular carcinoma (HCC) was investigated in this study."3.80Molecular mechanisms of nano-selenium in mitigating hepatocellular carcinoma induced by N-nitrosodiethylamine (NDEA) in rats. ( Ahmed, HH; Hamza, AH; Khalil, WK, 2014)
" The chemically-induced mouse model of diethylnitrosamine (DEN) provides useful insight into liver carcinogenesis, namely HCC."3.80The N-nitrosodiethylamine mouse model: sketching a timeline of evolution of chemically-induced hepatic lesions. ( Colaço, A; Da Costa, RM; Lopes, C; Oliveira, PA; Paula-Santos, N; Rocha, AF, 2014)
" In this study, we found that diethylnitrosamine initiation with CCl4 and ethanol promotion could induce a short-term, two-stage liver carcinogenesis model in male BALB/c mice, the process of hepatocarcinogenesis including liver damage, liver necrosis/cell death, liver inflammation, liver proliferation, liver hyperplasia, liver steatosis, and liver cirrhosis and hepatocellular nodules, which mimicked the usual sequence of events observed in human HCC."3.79Two-stage model of chemically induced hepatocellular carcinoma in mouse. ( Huang, SX; Kuang, ZP; Li, YD; Luo, M; Luo, XL; Wu, JN; Xie, YA; Yang, F, 2013)
" We recently find that the loss of toll-like receptor 2 (TLR2) activities promotes the diethylnitrosamine (DEN) induced hepatocellular carcinogenesis and tumor progression, which associates with an abundant accumulation of reactive oxygen species (ROS) and endoplasmic reticulum (ER) stress."3.79Antioxidant N-acetylcysteine attenuates hepatocarcinogenesis by inhibiting ROS/ER stress in TLR2 deficient mouse. ( Hu, ZW; Hua, F; Lin, H; Liu, XB; Yu, JJ, 2013)
" To explore the role of CHOP in hepatocarcinogenesis, we induced hepatocellular carcinoma (HCC) in wild type (wt) and CHOP knockout (KO) mice using the carcinogen N-diethylnitrosamine (DEN)."3.79CCAAT/enhancer-binding protein homologous (CHOP) protein promotes carcinogenesis in the DEN-induced hepatocellular carcinoma model. ( Chung, RT; Mueller, T; Nahmias, A; Scaiewicz, V; Shibolet, O; Tirosh, B, 2013)
"Placental growth factor (PlGF) inhibition produced promising results in reducing tumor burden in a diethylnitrosamine (DEN)-induced mouse model for hepatocellular carcinoma (HCC)."3.79Serum protein N-glycan alterations of diethylnitrosamine-induced hepatocellular carcinoma mice and their evolution after inhibition of the placental growth factor. ( Blomme, B; Colle, I; Geerts, A; Heindryckx, F; Stassen, JM; Van Vlierberghe, H, 2013)
" The aim of this study was to investigate the inhibitory effect of a glycoprotein (38 kDa) isolated from Styrax japonica Siebold et al Zuccarini (SJSZ) on metastasis of hepatocellular carcinoma (HCC) in diethylnitrosamine (DEN)-treated imprinting control region (ICR) mice."3.78Preventive effect of phytoglycoprotein (38 kDa) on expression of alpha-fetoprotein and matrix metalloproteinase-9 in diethylnitrosamine-treated ICR mice. ( Lee, J; Lim, KT, 2012)
"Human hepatocellular carcinoma cells in culture, as well as nude mice transplanted with hepatocellular carcinoma cells and rats given with N-diethylnitrosamine were treated with acyclic retinoid."3.77Dual induction of caspase 3- and transglutaminase-dependent apoptosis by acyclic retinoid in hepatocellular carcinoma cells. ( Fukaya, Y; Ishibashi, N; Kojima, S; Moriwaki, H; Okuno, M; Sano, T; Tatsukawa, H; Watanabe, M, 2011)
"Diethylnitrosamine (DEN) is a hepatic procarcinogen which is frequently used as an inducer of hepatocellular carcinoma (HCC) in mice."3.77Evolution of genomic instability in diethylnitrosamine-induced hepatocarcinogenesis in mice. ( Aleksic, K; Auer, M; Fischer, M; Geigl, JB; Lackner, C; Otte, M; Schwarz, M; Speicher, MR; Trajanoski, Z; Ulz, P, 2011)
" Furthermore, Shp2 ablation dramatically enhanced diethylnitrosamine (DEN)-induced hepatocellular carcinoma (HCC) development, which was abolished by concurrent deletion of Shp2 and Stat3 in hepatocytes."3.77Ptpn11/Shp2 acts as a tumor suppressor in hepatocellular carcinogenesis. ( Bailly-Maitre, B; Bard-Chapeau, EA; Ding, J; Fang, DD; Feng, GS; Han, T; Li, S; Poli, V; Princen, F; Varki, NM; Wang, H; Zhang, SS; Zhu, HH, 2011)
"Sorafenib is an FDA-approved agent for treatment of human hepatocellular carcinoma (HCC), but tumor shrinkage is minor."3.77c-Met-Akt pathway-mediated enhancement of inhibitory c-Raf phosphorylation is involved in vitamin K1 and sorafenib synergy on HCC growth inhibition. ( Carr, BI; Cavallini, A; D'Alessandro, R; Refolo, MG; Wang, M; Wang, Z, 2011)
") against diethylnitrosamine (DEN) induced hepatocellular carcinoma in rats."3.77The protective effects of fish oil and artichoke on hepatocellular carcinoma in rats. ( Abdel-Hamid, AH; Ammar, NM; Farrag, AR; Ghanem, KZ; Kholeif, TE; Metwally, NS, 2011)
"From our findings we conclude that bacoside A is effective to prevent DEN-induced hepatocellular carcinoma by quenching lipid peroxidation and enhancing antioxidant status through free radical scavenging mechanism and having potential of protecting endogenous enzymatic and non-enzymatic antioxidant activity."3.76Chemopreventive effect of bacoside A on N-nitrosodiethylamine-induced hepatocarcinogenesis in rats. ( Geetha, A; Janani, P; Parthasarathy, C; Ravisankar, B; Sivakumari, K, 2010)
" DENA (diethylnitrosamine), a hepatocarcinogen, is commonly used in an experimental mouse model to induce liver cancer that closely mimics a subclass of human hepatocellular carcinoma (HCC)."3.76Alteration of N-glycome in diethylnitrosamine-induced hepatocellular carcinoma mice: a non-invasive monitoring tool for liver cancer. ( Chen, CC; Contreras, R; Dewaele, S; Fan, YD; Libert, C; Liu, XE; Van Huysse, J; Vanhooren, V; Wang, L; Zhuang, H, 2010)
" In our continuous search to discover bioactive compounds from natural products, we isolated (5R, 10R)-4R, 8R-dihydroxy-2S, 3R:15, 16-diepoxycleroda-13(16), 17, 12S:18,1S-dilactone (ECD), a diterpenoid from Tinospora cordifolia and studied its chemopreventive potential in diethylnitrosamine (DEN) induced hepatocellular carcinoma (HCC) rats."3.75Chemopreventive potential of Epoxy clerodane diterpene from Tinospora cordifolia against diethylnitrosamine-induced hepatocellular carcinoma. ( Agastian, P; Baskar, AA; Dhanasekaran, M; Duraipandiyan, V; Ignacimuthu, S, 2009)
"Gadolinium-enhanced multi-phase dynamic imaging has improved the accuracy of the diagnosis of hypervascular hepatocellular carcinoma (HCC), but using gadolinium-enhanced dynamic imaging alone is problematic in evaluating hypovascular HCC."3.75Detection and characterization of hepatocellular carcinoma in rats with liver cirrhosis: diagnostic value of combined use of MR positive and negative contrast agents. ( Bian, J; Guo, DM; Liu, SF; Qiu, TS; Wang, CZ, 2009)
"Modified Diethylnitrosamine (DEN)-induced primary hepatocellular carcinoma rat model was established."3.75[The expression of B-cell translocation gene 2 in diethylnitrosamine-induced primary hepatocellular carcinoma rat model.]. ( Chen, C; Jin, F; Li, Q; Li, ZP; Luo, XZ; Shan, JL; Wang, D; Wang, G; Xu, W; Yang, ZX; Zhang, ZM, 2009)
"Experiments were designed to examine the effect of N-Nitrosodiethylamine (NDEA) as cancer-inducer compound and to confirm the preventive effect of the flavonoid quercetin on hepatocellular carcinoma in rats."3.75Preventive effect of the flavonoid, quercetin, on hepatic cancer in rats via oxidant/antioxidant activity: molecular and histological evidences. ( Elmaghraby, TK; Hafez, EE; Ibrahim, SS; Seufi, AM, 2009)
" In the present study, we investigated the antiproliferative effect of gallic acid during diethylnitrosamine (DEN)-induced hepatocellular carcinoma (HCC) in male wistar albino rats."3.74Antiproliferative potential of gallic acid against diethylnitrosamine-induced rat hepatocellular carcinoma. ( Anandakumar, P; Devaki, T; Jagan, S; Kamaraj, S; Ramakrishnan, G, 2008)
" We induced hepatocellular carcinomas (HCCs) in rats with N-nitrosodiethylamine (DEN) and a choline-deficient l-amino acid-defined (CDAA) diet."3.74Different mutation patterns of mitochondrial DNA displacement-loop in hepatocellular carcinomas induced by N-nitrosodiethylamine and a choline-deficient l-amino acid-defined diet in rats. ( Honoki, K; Mori, C; Nishikawa, T; Onishi, M; Sokuza, Y; Tsujiuchi, T; Uwataki, K, 2007)
"Cimetidine is known to have an anti-tumor effect on certain types of malignancies, though on hepatocellular carcinomas (HCCs), its effect remains unclear."3.74Anti-tumor effects of cimetidine on hepatocellular carcinomas in diethylnitrosamine-treated rats. ( Adachi, K; Amano, Y; Furuta, K; Ishihara, S; Ishine, J; Kinoshita, Y; Miyake, T; Okamoto, E; Sato, S, 2008)
" Growth of hepatocellular carcinoma (HCC), developed by a single injection of diethylnitrosamine (DEN), was the same in both the TIS21(+/+) and TIS21(-/-) mice until 6 months, whereas it was significantly higher in the TIS21(-/-) mice at 9 months."3.74TIS21 negatively regulates hepatocarcinogenesis by disruption of cyclin B1-Forkhead box M1 regulation loop. ( Kang, SY; Kim, BW; Kim, HC; Kim, JY; Lim, IK; Oh, SP; Park, TJ; Song, KY; Wang, HJ, 2008)
"Taken together, these findings identify a mechanism of ABT-100 function and show the efficacy of ABT-100 as a chemopreventive agent of hepatocellular carcinoma."3.73Farnesyltransferase inhibitor, ABT-100, is a potent liver cancer chemopreventive agent. ( Carloni, V; Pantaleo, P; Vizzutti, F, 2005)
" Since this receptor is also expressed on the cells of well differentiated human hepatocellular carcinomas (HCCs), we studied whether conjugation of doxorubicin (DOXO) with lactosaminated human albumin (L-HSA) increases the drug efficacy on HCCs induced in rats by diethylnitrosamine (DENA)."3.73Doxorubicin coupled to lactosaminated albumin inhibits the growth of hepatocellular carcinomas induced in rats by diethylnitrosamine. ( Bolondi, L; Busi, C; Chieco, P; Di Stefano, G; Fiume, L; Kratz, F; Lanza, M; Mattioli, A, 2005)
" However, successful gene transfer has yet to be shown for hepatocellular carcinoma (HCC); therefore, we investigated the feasibility and efficacy of hydrodynamic injection via the tail vein and hepatic artery in a diethylnitrosamine (DEN)-induced HCC model in rats."3.73High volume hydrodynamic injection of plasmid DNA via the hepatic artery results in a high level of gene expression in rat hepatocellular carcinoma induced by diethylnitrosamine. ( Hatano, E; Ikai, I; Koizumi, N; Nitta, T; Shimahara, Y; Tada, M; Taura, K, 2006)
"Hepatocellular carcinoma (HCC) was induced by diethylnitrosamine in 70 treated rats with 20 normal rats used as controls."3.73In vivo 1H MR spectroscopy in the evaluation of the serial development of hepatocarcinogenesis in an experimental rat model. ( Li, X; Xie, JX; Xu, H; Yang, ZH, 2006)
"To elucidate involvement of the transforming growth factor-beta (TGF-beta) signaling pathway in endogenous and exogenous liver carcinogenesis, we investigated mutations of TGF-beta receptor type II (TGF-betaRII), Smad2 and Smad4 genes, and expression of TGF-betaRII in hepatocellular carcinomas (HCCs) induced by a choline-deficient L-amino acid-defined (CDAA) diet and by N-nitrosodiethylamine (DEN)."3.71Alterations of the transforming growth factor-beta signaling pathway in hepatocellular carcinomas induced endogenously and exogenously in rats. ( Konishi, Y; Murata, N; Sasaki, Y; Tsujiuchi, T; Tsutsumi, M, 2001)
"We previously found by chance that N-nitrosomorpholine (NMOR) given after a multi-carcinogenic treatment induces liver carcinomas with 56% lung metastasis, and it was confirmed that hepatocellular carcinoma (HCC) with 100% lung metastasis was produced by 24-week treatment with NMOR and additional treatment with diethylnitrosamine (DEN)."3.70Establishment of an in vivo highly metastatic rat hepatocellular carcinoma model. ( Futakuchi, M; Hirose, M; Kato, K; Ogawa, K; Ogiso, T; Sano, M; Shirai, T, 1999)
" In this study we report that gavage administration of 200 mg/kg or 600 mg/kg CCM effectively suppressed diethylnitrosamine (DEN)-induced liver inflammation and hyperplasia in rats, as evidenced by histopathological examination."3.70Inhibition by curcumin of diethylnitrosamine-induced hepatic hyperplasia, inflammation, cellular gene products and cell-cycle-related proteins in rats. ( Cheng, AL; Chuang, SE; Kuo, ML; Lin, JK, 2000)
"A CK immunohistochemical study was carried out on histologic sections from hepatocellular carcinomas (HCCs) and preneoplastic lesions from 118 monkeys chronically dosed with diethylnitrosamine (DEN), using mAbs to CK 8, CK 18, CK 7, and CK 19."3.69Cytokeratin patterns of liver carcinomas induced by diethylnitrosamine in monkeys. ( Bocsi, J; Lapis, K; Sarosi, I; Thorgeirsson, UP, 1995)
"To determine whether a constitutive p53 deficiency would enhance the rate of development of chemically induced hepatocellular carcinoma, we treated groups of wild-type, p53-heterozygous (+/-), and null (-/-) male mice with a single dose of diethylnitrosamine at 12 d of age."3.69Hepatocarcinogenesis in p53-deficient mice. ( Kemp, CJ, 1995)
" Metallothionein (MT), an inducible metal-binding protein associated with tolerance to many metal including Cd, was not detected immunohistochemically in mouse liver tumors, even those undergoing Cd-induced necrosis, whereas the surrounding normal liver cells expressed high levels of MT after Cd exposure."3.69Down-regulation of metallothionein expression in human and murine hepatocellular tumors: association with the tumor-necrotizing and antineoplastic effects of cadmium in mice. ( Cherian, MG; Diwan, BA; Goyer, RA; Moussa, M; Rehm, S; Waalkes, MP; Ward, JM, 1996)
"In rats with diethylnitrosamine (DENA)-induced hepatocellular carcinoma (HCC), we studied in vivo gene transfer efficiency using intraportal injections of recombinant adenovirus carrying the lacZ reporter gene (AdCMVlacZ) and the therapeutic efficacy of adenovirus-mediated transfer of the thymidine kinase gene of the herpes simplex virus (HSV-tk) followed by ganciclovir (GCV) administration."3.69Gene transfer and therapy with adenoviral vector in rats with diethylnitrosamine-induced hepatocellular carcinoma. ( Bilbao, R; Bruña, O; Idoate, M; Prieto, J; Qian, C; Sangro, B; Vázquez, J, 1997)
"Formation and repair of O6-medG and N7-medG (O6- and N7-methyldeoxyguanosine) in glutathione S-transferase-P form (GST-P)-positive liver cell foci, nodules, primary hepatocellular carcinoma (HCC) and transplanted hepatocellular carcinoma (TRP) induced by N-ethyl-N-hydroxyethylnitrosamine (EHEN) were immunohistochemically assessed following a single exposure to dimethylnitrosamine (DMN)."3.68Decreased dimethylnitrosamine-induced O6- and N7-methyldeoxyguanosine levels correlate with development and progression of lesions in rat hepatocarcinogenesis. ( Asamoto, M; Iwase, T; Kato, T; Matsumoto, K; Montesano, R; Nagao, S; Ozaki, K; Tsuda, H; Wild, CP, 1993)
"The ability of diethylnitrosamine (DENA) to initiate and phenobarbital to promote altered-hepatocyte foci and hepatocellular carcinomas in C3H and C3B6F1 (C3H x C57BL/6) mice was compared to the extent of cell proliferation."3.68Comparison in C3H and C3B6F1 mice of the sensitivity to diethylnitrosamine-initiation and phenobarbital-promotion to the extent of cell proliferation. ( Pereira, MA, 1993)
"Exposure of female hepatitis B virus transgenic mice of lineage 50-4, which display liver injury secondary to overexpression of the gene for the large envelope polypeptide of hepatitis B virus, to the hepatocarcinogens aflatoxin and diethylnitrosamine produced more rapid and extensive evidence of nodule formation and oval cell proliferation, as well as the development of adenomas and primary hepatocellular carcinomas, than was seen in transgenic mice not exposed to carcinogens."3.68Synergy between hepatitis B virus expression and chemical hepatocarcinogens in transgenic mice. ( Chisari, FV; Dunsford, HA; Hunt, JM; Sell, S, 1991)
"Cell nuclear DNA ploidy patterns were examined using cytofluorometry in hepatocellular carcinomas (HCC) induced by diethylnitrosamine (DEN) in rat and human HCC."3.67[Biological activity of hepatocellular carcinoma by analysing nuclear DNA ploidy patterns and using anti BrdU monoclonal antibody]. ( Jung-Rou, T, 1989)
" The animal models were Sewall Wright strain 13 guinea pigs with 3-methyl-cholanthrene (MCA)-induced fibrosarcomas and strain 2 guinea pigs with diethylnitrosamine (DEN)-induced hepatocarcinomas."3.66Guinea pig cell-mediated tumor immunity: the chromium release assay detects both cytolysis and serum blocking for syngeneic chemically-induced tumors. ( Blazkovec, AA; Miller, FR, 1979)
"2% N-ethyl-N-hydroxyethylnitrosamine (EHEN) for 2 weeks induced hepatocellular carcinoma in 3 and renal tubular cell tumors in 7 of 9 Wistar rats."3.66Histopathological studies on renal tubular cell tumors in rats treated with N-ethyl-N-hydroxyethylnitrosamine. ( Hiasa, Y; Iwata, C; Ohshima, M; Tanikake, T, 1979)
"05% in the diet) for 6 months following a single dose of diethylnitrosamine (5 to 10 mg/kg) given within 24 hours after partial hepatectomy resulted in a marked increase in the number of enzyme-altered foci in the liver as well as in the production of hepatocellular carcinomas."3.65The natural history of neoplasia. Newer insights into an old problem. ( Pitot, HC, 1977)
"Administration of 40 ppm diethylnitrosamine (DENA) in the drinking water for 10 weeks to male Fischer rats led to hepatocellular carcinoma in 100 percent with metastasis to the lung in 40 percent, of the animals living for the full experimental period of 20 weeks."3.65Modification of diethylnitrosamine liver carcinogenesis with phenobarbital but not with immunosuppression. ( Madison, RM; Viguera, C; Ward, JM; Weisburger, EK; Weisburger, JH, 1975)
"The characteristic clostridial growth which is testable, after systemic administration of tetanus spores, as a positive tumour tetanus - correlation, was manifested by a highly selective tetanus lethality of rats with progressive hepatomas following induction with dimethylaminoazobenzene and diethylnitrosamine, respectively, as well as with methylcholanthren-induced fibrosarcomas of the rat."3.65[The tumor-tetanus assay--experimental studies on the biological differentiation between carcinogenesis and organ regeneration of the rat (author's transl)]. ( Fabricius, EA; Schneeweiss, U, 1975)
"Liver neoplasms were induced in medakas (Oryzias latipes) by the addition of diethylnitrosamine (DENA) to their aquarium water at levels of 15-135 ppm for 8 weeks."3.65Histologic and electron microscopy observations on diethylnitrosamine-induced hepatomas in small aquarium fish (Oryzias latipes). ( Ishikawa, T; Shimamine, T; Takayama, S, 1975)
"The frequency of metastases of malignant diethylnitrosamine-induced hepatomas and haemangioendotheliomas of the liver of female Sprague-Dawley rats (29%) was not influenced by application of acetyl-salicylic acid or phenprocoumon."3.65[Studies on the influence of anticoagulants on metastase formation of autochthonic hepatomas in the rat (author's transl)]. ( Schmähl, D, 1975)
"The effects of treatments with diethylnitrosamine (DENA) and hepatitis B virus (HBV) on macaque monkeys were investigated by virus serology and by light and electron microscopy."3.65Experimental carcinoma of liver in macaque monkeys exposed to diethylnitrosamine and hepatitis B virus. ( Cabral, GA; Gyorkey, F; Gyorkey, P; Hollinger, FB; Melnick, JL; Mirkovic, R, 1977)
"In fact, liver cancer often develops in the context of chronic liver injury."2.53Liver carcinogenesis: from naughty chemicals to soothing fat and the surprising role of NRF2. ( Dhar, D; Karin, M, 2016)
"Hepatocellular carcinoma is the second most cause of death among the various cancers worldwide."1.91Chemopreventive and Therapeutic Efficacy of Enhalus acoroides against Diethylnitrosamine Induced Hepatocellular Carcinoma in Wistar Albino Rats. ( Amudha, P; Jayalakshmi, M; Poojitha, BN; Vidya, R, 2023)
"This study aimed to analyze the biochemical, histological, and gene expression alterations produced in a hepatocarcinogenesis model induced by the chronic administration of diethylnitrosamine (DEN) and 2-acetylaminofluorene (2-AAF) in Wistar rats."1.91Chronic Administration of Diethylnitrosamine and 2-Acetylaminofluorene Induces Hepatocellular Carcinoma in Wistar Rats. ( Campos-Valdez, M; Domínguez-Rosales, JA; Godínez-Rubí, JM; Martínez-López, E; Rodríguez-Reyes, SC; Sánchez-Meza, J; Sánchez-Orozco, LV; Zúñiga-González, GM, 2023)
" However, its therapeutic activity is limited by poor bioavailability and unpredictable distribution."1.91Lactosylated Chitosan Nanoparticles Potentiate the Anticancer Effects of Telmisartan In Vitro and in a ( El-Gizawy, SA; Essa, EA; Kira, AY; Nasr, M; Saber, S, 2023)
"Nonalcoholic fatty liver disease (NAFLD) is one of the major causes of hepatocellular carcinoma (HCC)."1.72Cholic acid supplementation accelerates the progression of nonalcoholic fatty liver disease to the procarcinogenic state in mice fed a high-fat and high-cholesterol diet. ( Chun, HJ; Kwon, YH; Shim, YJ, 2022)
"In the present study, hepatocellular cancer (HCC) induced by diethylnitrosamine (DEN) in rats and then treated with the new chromene derivative and the parameters TNF-α, VEGF, p53, Cyt C, MMP-9, Bcl2, and Bax were measured."1.72In vivo Study of a Newly Synthesized Chromen-4-one Derivative as an Antitumor Agent against HCC. ( El-Mezayen, HA; Mahdy, EME; Mansour, SZ; Mohamed, SA; Nabeel, AI, 2022)
"Alcohol is a well-known risk factor for hepatocellular carcinoma."1.72Loss of Hepatic Transcription Factor EB Attenuates Alcohol-Associated Liver Carcinogenesis. ( Ballabio, A; Chao, X; Ding, WX; Hlobik, M; Ni, HM; Wang, S, 2022)
"ADI can inhibit a lot of CYP450 enzyme, so it may reduce the dosage of chemotherapeutic drugs to reach the required plasma concentration of chemotherapeutic drugs, which is of great significance for the combination of anti-tumor chemotherapeutic drugs and is worthy of further in-depth study and clinical attention."1.72Aidi injection altered the activity of CYP2D4, CYP1A2, CYP2C19, CYP3A2, CYP2E1 and CYP2C11 in normal and diethylnitrosamine-induced hepatocellular carcinoma in rats. ( He, Y; Huang, Y; Jin, Y; Li, Y; Liu, W; Lu, Y; Pan, J; Wang, Y; Zheng, L, 2022)
"Prunetin (PRU) is an O-methylated flavonoid that is present in various natural plants and a primary significant compound found in isoflavone."1.72Involvement of NF-κB/PI3K/AKT signaling pathway in the protective effect of prunetin against a diethylnitrosamine induced hepatocellular carcinogenesis in rats. ( Chen, H; Li, G; Qi, L; Tian, G, 2022)
"The arbutin treatment effectively improved body weight and reduced liver weight in animals with DEN-provoked liver cancer."1.72Anticancer Effect of Arbutin on Diethylnitrosamine-Induced Liver Carcinoma in Rats via the GRP and GADD Pathway. ( Chen, X; Dong, P; Huang, Z; Liu, H; Zeng, X, 2022)
"Boron has great potential to reduce the effects of oxidative stress, which may help it inhibit the progression of HCC."1.72Boron attenuated diethylnitrosamine induced hepatocellular carcinoma in C3H/HeN mice via alteration of oxidative stress and apoptotic pathway. ( Chen, J; Huang, H; Wang, J; Wei, Y; Wu, L; Yi, JK; Yin, X, 2022)
"BALB/c mice model of hepatocarcinogenesis was established using N-nitrosodiethylamine as a carcinogen (200 mg/kg b."1.72MitoQ demonstrates connexin- and p53-mediated cancer chemoprevention in N-nitrosodiethylamine-induced hepatocarcinogenesis rodent model. ( Bharati, S; De, S; Qsee, HS; Tambe, PK, 2022)
"Diethylnitrosamine-induced hepatocellular carcinomas were then investigated in lean and diet-induced obese miR-22-deficient mice."1.72MiR-22 Deficiency Fosters Hepatocellular Carcinoma Development in Fatty Liver. ( Ay, AS; Correia de Sousa, M; Delangre, E; Dolicka, D; Foti, M; Fournier, M; Gjorgjieva, M; Maeder, C; Sempoux, C; Sobolewski, C, 2022)
"Hepatocellular carcinoma is a well-known internal malignancy with increased worldwide mortality."1.62Farnesol alleviates diethyl nitrosamine induced inflammation and protects experimental rat hepatocellular carcinoma. ( Balaraman, G; Krishnan, P; Mari, A; Salam, S; Sirajduddin, I; Subramaniam, N; Sundaram, J; Thiruvengadam, D, 2021)
" The study aimed to investigate the pharmacokinetic mechanism of herb-drug interactions between ADI and DOX in a rat model of HCC."1.62Pharmacokinetic herb-drug interactions between Aidi injection and doxorubicin in rats with diethylnitrosamine-induced hepatocellular carcinoma. ( Cao, C; Chen, S; Huang, J; Li, Y; Liu, C; Liu, T; Lu, Y; Pan, J; Sun, J; Wang, Y; Zhang, S; Zhu, X, 2021)
" As a competitor of SHBG-androgen binding, EE2 could bind with SHBG and increase the bioavailability of androgen."1.62Dietary Intake of 17α-Ethinylestradiol Promotes HCC Progression in Humanized Male Mice Expressing Sex Hormone-Binding Globulin. ( Heo, JH; Hong, EJ; Jeong, SH; Jo, SL; Ko, JW; Kwun, HJ; Lee, SR, 2021)
"TREM-2 plays a protective role in hepatocarcinogenesis via different pleiotropic effects, suggesting that TREM-2 agonism should be investigated as it might beneficially impact HCC pathogenesis in a multifactorial manner."1.62TREM-2 defends the liver against hepatocellular carcinoma through multifactorial protective mechanisms. ( Agirre-Lizaso, A; Andersen, JB; Aspichueta, P; Azkargorta, M; Banales, JM; Bujanda, L; Elortza, F; Esparza-Baquer, A; Hijona, E; Jimenez-Agüero, R; Knapp, S; La Casta, A; Labiano, I; Landa, A; Mann, DA; Munoz-Garrido, P; O'Rourke, CJ; Oakley, F; Perugorria, MJ; Riaño, I; Rodrigues, PM; Schabbauer, G; Sharif, O; Vogel, A; Zaki, MYW; Zhuravleva, E, 2021)
"The role of TTP in nonalcoholic steatohepatitis and HCC development was further examined through in vivo/vitro approaches using liver-specific TTP knockout mice and a panel of hepatic cancer cells."1.62Tristetraprolin Promotes Hepatic Inflammation and Tumor Initiation but Restrains Cancer Progression to Malignancy. ( Bejuy, O; Berthou, F; Blackshear, PJ; Colin, DJ; Correia de Sousa, M; De Vito, C; Dolicka, D; Foti, M; Fournier, M; Gjorgjieva, M; Maeder, C; Rubbia-Brandt, L; Sobolewski, C, 2021)
"Most hepatocellular carcinoma cases are diagnosed at late stages of the disease, which makes it the second cause of cancer mortality worldwide."1.62Spirulina inhibits hepatocellular carcinoma through activating p53 and apoptosis and suppressing oxidative stress and angiogenesis. ( Fares, NH; Mahmoud, AA; Mahmoud, YI; Shehata, AMM, 2021)
"Phenobarbital treated mice showed damped corticosterone levels and a less stable 24 hours activity rhythm as well as an increase in activity during the light phase, reminiscent of sleep disruption."1.62Relationship between locomotor activity rhythm and corticosterone levels during HCC development, progression, and treatment in a mouse model. ( Ali, AAH; Hassan, SA; Jänicke, RU; Korf, HW; Pfeffer, M; Sohn, D; von Gall, C; Yassine, M, 2021)
"Hepatocellular carcinoma in nonalcoholic steatohepatitis is caused by the complex factors of inflammation, fibrosis and microbiomes."1.62Microbiome, fibrosis and tumor networks in a non-alcoholic steatohepatitis model of a choline-deficient high-fat diet using diethylnitrosamine. ( Fujishiro, M; Honda, T; Ishigami, M; Ishizu, Y; Ito, T; Kato, A; Kawashima, H; Kuzuya, T; Ma, L; Nakamura, M; Tsuji, NM; Yamamoto, K; Yokoyama, S, 2021)
"In in vitro and in vivo hepatocellular carcinoma mouse models it can significantly suppress primary tumor growth, prevent distant metastasis/cell migration, reduce angiogenesis, and normalize the immunosuppressive tumor microenvironment by reducing tumor-associated macrophages (TAMs) infiltration, reprogramming TAMs toward an immunostimulatory phenotype and promoting cytotoxic T cell infiltration into tumor."1.62A highly selective and potent CXCR4 antagonist for hepatocellular carcinoma treatment. ( Chang, CC; Chen, Y; Chou, MC; Dinh, TK; Huang, JK; Huang, KW; Jan, JJ; Ke, YY; Lee, CJ; Shia, KS; Shiue, TY; Song, JS; Sung, YC; Ta, YN; Wu, CH; Yeh, KC; Yeh, TK, 2021)
" Because the administration of 2-acetylaminofluorene (2AAF) followed by a partial hepatectomy, selectively induces the HPC proliferation, we investigated the effects of chronic 2AAF administration on the HCC development caused by the chronic administration of the carcinogen diethylnitrosamine (DEN) for 16 weeks in the rat."1.62Enrichment of progenitor cells by 2-acetylaminofluorene accelerates liver carcinogenesis induced by diethylnitrosamine in vivo. ( Arellanes-Robledo, J; Castro-Gil, MP; Del-Pozo-Jauner, L; Gabiño-López, NB; López-Torres, CD; Pérez-Carreón, JI; Quintanar-Jurado, V; Sánchez-Rodríguez, R; Torres-Mena, JE; Villa-Treviño, S, 2021)
"Alogliptin is an anti-diabetic that may have effective anticancer properties against many types of malignancies."1.62Attenuation of diethyl nitrosamine-induced hepatocellular carcinoma by taxifolin and/or alogliptin: The interplay between toll-like receptor 4, transforming growth factor beta-1, and apoptosis. ( Abd Elmaaboud, MA; Arab, HH; Kabel, AM, 2021)
"Liver cancer was induced in mice with hepatocyte-specific disruption of Myc and control mice by administration of diethylnitrosamine."1.62Myelocytomatosis-Protein Arginine N-Methyltransferase 5 Axis Defines the Tumorigenesis and Immune Response in Hepatocellular Carcinoma. ( Cai, J; Chen, L; Gao, Y; Gonzalez, FJ; Guo, X; Jiang, J; Krausz, KW; Liu, W; Luo, Y; Qu, A; Sun, L; Takahashi, S; Tang, W; Wang, Y; Xie, C; Yang, S; Yang, Y, 2021)
" However, the bioavailability of ABZ is very poor."1.62Albendazole-loaded cubosomes interrupt the ERK1/2-HIF-1α-p300/CREB axis in mice intoxicated with diethylnitrosamine: A new paradigm in drug repurposing for the inhibition of hepatocellular carcinoma progression. ( Amin, NA; Batiha, GE; El-Ahwany, E; El-Rous, MA; Elagamy, HI; Elewa, YHA; Elsergany, RN; Girgis, S; Gobba, NA; Hafez, AM; Kaddah, MMY; Kamal, I; Khodir, AE; Mahmoud, MH; Mourad, AAE; Nasr, M; Saad, AS; Saber, S; Shata, A, 2021)
"We compared gene expression profiles of Morris Hepatoma (MH3924a) and DEN (diethylnitrosamine)-induced HCC models to those of liver tissues from normal and rapidly regenerating liver models, and performed gain- and loss-of-function studies of the identified gene targets for their roles in cancer cell proliferation in vitro and in vivo."1.56Metabolic pathway analyses identify proline biosynthesis pathway as a promoter of liver tumorigenesis. ( Chow, P; Denil, S; Ding, Z; Ericksen, RE; Escande-Beillard, N; Gruenewald, S; Haegebarth, A; Han, W; Lee, QY; Loh, A; Reversade, B; Steckel, M; Toh, HC; Wai Ho, TS, 2020)
"All mice administered oral DEN developed liver fibrosis, liver cirrhosis and hepatocellular carcinoma (HCC)."1.56Survival of endogenous hepatic stem/progenitor cells in liver tissues during liver cirrhosis. ( Bai, L; Chen, Q; Jiang, S; Lai, J; Yang, W; You, X; Zhang, H, 2020)
"ET in the prevention of liver cancer is poorly understood."1.56Endurance training but not high-intensity interval training reduces liver carcinogenesis in mice with hepatocellular carcinogen diethylnitrosamine. ( Cao, L; Ding, S; Ji, B; Li, L; Qi, Z; Zhang, X, 2020)
" Clinically achievable dosing of EGCG was well-tolerated in diethylnitrosamine-injured rats and was associated with improved serum liver markers including alanine transaminase, aspartate transaminase, and total bilirubin, and reduced HCC tumor formation."1.56Epigallocatechin Gallate Induces Hepatic Stellate Cell Senescence and Attenuates Development of Hepatocellular Carcinoma. ( Erstad, DJ; Fuchs, BC; Fujii, T; Hirschfield, H; Hoshida, Y; Kim, RS; Lanuti, M; Lauwers, GY; Sojoodi, M; Tanabe, KK; Wei, L; Yamada, S, 2020)
"And Wrh-f2 developed stable pulmonary metastasis."1.56Establishment of rat liver cancer cell lines with different metastatic potential. ( Feng, X; Hou, J; Liu, SF; Song, L; Zhang, HL; Zhang, JG; Zheng, L, 2020)
"Follow-up screening was performed in hepatocellular carcinoma with a focused CRISPR library targeting imaging-related genes."1.56Functional Genetic Screening Enables Theranostic Molecular Imaging in Cancer. ( Ackerman, D; Gade, TPF; Johnson, O; Mercadante, M; Perkons, NR; Pilla, G; Profka, E, 2020)
"Diethylnitrosamine (DEN) was used to induce HCC in a high-fat diet (HFD)-induced multigenerational obesity model."1.56Multigenerational maternal obesity increases the incidence of HCC in offspring via miR-27a-3p. ( Geng, M; Huang, K; Liu, S; Liu, Y; Petersen, RB; Sun, Y; Wang, Q; Wei, Y; Yue, J; Zhang, Y; Zheng, L, 2020)
"Diethylnitrosamine was widely employed as a carcinogenic agent to stimulate the cancer in animal models."1.56Vicenin-2 Treatment Attenuated the Diethylnitrosamine-Induced Liver Carcinoma and Oxidative Stress through Increased Apoptotic Protein Expression in Experimental Rats. ( Bolla, SR; Chen, Y; Gong, G; Li, Y; Veeraraghavan, VP; Xu, C; Zhang, C; Zhang, M, 2020)
"The Diethylnitrosamine (DEN) model has an age-related effect."1.56A Modified Protocol of Diethylnitrosamine Administration in Mice to Model Hepatocellular Carcinoma. ( Jung, Y; Lee, JI; Lee, WK; Memon, A; Pyao, Y, 2020)
"The present study used human hepatoma cell lines and rats with diethylnitrosamine (DEN)‑induced HCC as models to investigate the association between the effect of EGCG on liver cancer and regulation of the p21waf1/Cip1/CDC25A axis."1.56Epigallocatechin gallate induces chemopreventive effects on rats with diethylnitrosamine‑induced liver cancer via inhibition of cell division cycle 25A. ( An, H; Cai, Z; Cao, J; Chen, N; Li, K; Li, Y; Luo, A; Peng, Y; Tang, Y; Tao, H, 2020)
"Treatment of DEN-induced hepatocellular carcinoma Wistar rats with the extract caused significant (p < 0."1.56Annona senegalensis extract demonstrates anticancer properties in N-diethylnitrosamine-induced hepatocellular carcinoma in male Wistar rats. ( Adebayo, AH; Adelani, IB; Adesina, GO; Edokwe, CB; Metibemu, DS; Oseha, OE; Yakubu, OF, 2020)
"GSTZ1 deficiency significantly promoted hepatoma cell proliferation and aerobic glycolysis in HCC cells."1.51GSTZ1 deficiency promotes hepatocellular carcinoma proliferation via activation of the KEAP1/NRF2 pathway. ( Chen, C; Lei, C; Li, J; Liang, L; Tang, N; Wang, K; Wang, Q; Xia, J; Yang, F; Yang, Y, 2019)
"Sorafenib (SO) is a multi-kinase inhibitor that targets upstream signals in the MAPK pathway."1.51Mebendazole augments sensitivity to sorafenib by targeting MAPK and BCL-2 signalling in n-nitrosodiethylamine-induced murine hepatocellular carcinoma. ( Ghanim, AMH; Saber, S; Younis, NS, 2019)
"Echinacoside (ECH) is a phenylethanoid glycoside extracted from a Chinese herbal medicine, Cistanches salsa."1.51Anticancer effects of echinacoside in hepatocellular carcinoma mouse model and HepG2 cells. ( Ni, J; Song, Y; Wang, G; Xia, W; Ye, Y; Zhuang, J, 2019)
"Identification of events leading to hepatocellular carcinoma (HCC) progression is essential for understanding its pathophysiology."1.51Elevated Expression of A-Raf and FA2H in Hepatocellular Carcinoma is Associated with Lipid Metabolism Dysregulation and Cancer Progression. ( Jain, SK; Ranjpour, M; Wajid, S, 2019)
"Pioglitazone treatment started at the first signs of fibrosis in both models."1.51Pioglitazone Reduces Hepatocellular Carcinoma Development in Two Rodent Models of Cirrhosis. ( Arora, G; Baumert, TF; Erstad, DJ; Fuchs, BC; Ghoshal, S; Hoshida, Y; Lanuti, M; Li, S; Masia, R; Sojoodi, M; Tanabe, KK, 2019)
" Due to poor solubility and low bioavailability SYL lacks satisfactory therapeutic value thus designing a suitable and effective delivery system of SYL can led to improved therapeutic potential."1.51Dextrose modified bilosomes for peroral delivery: improved therapeutic potential and stability of silymarin in diethylnitrosamine-induced hepatic carcinoma in rats. ( Dwivedi, M; Parashar, P; Rana, P; Saraf, SA, 2019)
"Hepatitis and hepatocellular carcinoma are serious human diseases."1.51Extracts of Qizhu decoction inhibit hepatitis and hepatocellular carcinoma in vitro and in C57BL/6 mice by suppressing NF-κB signaling. ( Fang, NY; Shen, JJ; Wan, LF; Wang, YH; Xue, BY; Yuan, X; Zhao, W, 2019)
"Hepatocellular carcinoma is the most frequent kind of primary liver cancer and occurs mostly in patients with chronic liver disease and cirrhosis."1.51Mangiferin Attenuated Diethynitrosamine-Induced Hepatocellular Carcinoma in Sprague-Dawley Rats via Alteration of Oxidative Stress and Apoptotic Pathway. ( Cui, G; Shang, X; Wang, N; Yang, G; Zhao, H; Zhao, L, 2019)
" Thus, we hypothesized that chronic administration of different DEN treatments identifies the best-fit dose to induce the HCC and/or to determine whether small DEN doses act synergistically with other known hepatotoxins to induce HCC in mice."1.51Chronic administration of diethylnitrosamine to induce hepatocarcinogenesis and to evaluate its synergistic effect with other hepatotoxins in mice. ( Alarcón-Sánchez, BR; Aparicio-Bautista, DI; Arellanes-Robledo, J; Baltiérrez-Hoyos, R; Castro-Gil, MP; Fuentes-Hernández, S; Guerrero-Escalera, D; Idelfonso-García, OG; Lakshman, MR; López-González, ML; Montes-Aparicio, AV; Pérez-Carreón, JI; Pérez-Hernández, JL; Reyes-Gordillo, K; Rosas-Madrigal, S; Sierra-Santoyo, A; Vásquez-Garzón, VR; Villa-Treviño, S, 2019)
"In the NAFLD pigs, hepatic histology of nonalcoholic steatohepatitis (NASH) was observed at 36 weeks, and HCC developed at 60 weeks."1.51Elevated levels of circulating ITIH4 are associated with hepatocellular carcinoma with nonalcoholic fatty liver disease: from pig model to human study. ( Aizawa, N; Hatano, E; Iguchi, K; Iijima, H; Ikegawa, M; Kawaguchi, H; Nakamura, N; Nishiguchi, S; Ohtsu, I; Okuda, Y; Sakurai, T; Sato, M; Seo, S; Taura, K; Tomono, T; Uemoto, S; Wada, S, 2019)
"Non-alcoholic fatty liver disease (NAFLD), the hepatic manifestation of obesity, is an emerging risk factor for hepatocellular carcinoma (HCC)."1.48Eicosapentaenoic acid attenuates obesity-related hepatocellular carcinogenesis. ( Inoue-Yamauchi, A; Itagaki, H; Oda, H, 2018)
"Hepatocellular carcinoma is a typical hypervascular tumor that relies on angiogenesis."1.48In vivo attenuation of angiogenesis in hepatocellular carcinoma by Nigella sativa ( Fathy, M; Nikaido, T, 2018)
"Obesity is associated with both endoplasmic reticulum (ER) stress and chronic metabolic inflammation."1.48Dual role for inositol-requiring enzyme 1α in promoting the development of hepatocellular carcinoma during diet-induced obesity in mice. ( Cai, J; Chen, T; Dai, J; Fang, J; Feng, Y; Liu, J; Liu, Y; Lv, S; Rui, L; Shan, B; Wang, Y; Wu, Y; Xia, Z; Xie, D; Zheng, L, 2018)
"The most common form of liver cancer is hepatocellular carcinoma (HCC)."1.48WWOX controls hepatic HIF1α to suppress hepatocyte proliferation and neoplasia. ( Abu-Remaileh, M; Aqeilan, RI; Khalaileh, A; Pikarsky, E, 2018)
"In a nutritional model of hepatocarcinogenesis, the protein Nrf2 is frequently mutated/activated at early steps of the tumorigenic process."1.48Genetic inactivation of Nrf2 prevents clonal expansion of initiated cells in a nutritional model of rat hepatocarcinogenesis. ( Columbano, A; Orrù, C; Perra, A; Szydlowska, M; Taguchi, K; Yamamoto, M; Zavattari, P, 2018)
"Hepatocellular carcinoma is a common primary malignancy of hepatocytes that has caused many fatalities globally."1.48Inhibitory effects of mushroom extracts on progression of carcinogenesis in mice. ( Omwandho, C; Wasonga, C, 2018)
"In addition, type 1 diabetes mellitus (T1DM) is also characterized by a proinflammatory state and by requiring insulin exogenous treatment."1.48Diethylnitrosamine Increases Proliferation in Early Stages of Hepatic Carcinogenesis in Insulin-Treated Type 1 Diabetic Mice. ( Álvarez, ML; Arboatti, AS; Carnovale, CE; Francés, DEA; Lambertucci, F; Monti, J; Pisani, G; Ronco, MT; Sedlmeier, MG, 2018)
"Diethylnitrosamine was used to induce liver cancer in a rat model."1.48Correlation between HSD17B4 expression in rat liver cancer tissues and inflammation or proliferation. ( Lin, Z; Pan, LC; Xiao, HY; Yin, WJ, 2018)
"In the rat hepatocarcinogenesis model, unexpectedly, CYP2E1 activity was found to decrease from hepatofibrosis to hepatocarcinogenesis."1.48From hepatofibrosis to hepatocarcinogenesis: Higher cytochrome P450 2E1 activity is a potential risk factor. ( Gao, J; Gao, N; Jin, H; Li, J; Qiao, HL; Wang, GJ; Wang, Z; Wen, Q; Zhang, HX; Zhang, YF; Zhou, J, 2018)
"The urgent unmet need for hepatocellular carcinoma (HCC) therapies is addressed here by characterising a novel mouse model of HCC in the context of ongoing liver damage and overnutrition."1.48Multiple liver insults synergize to accelerate experimental hepatocellular carcinoma. ( Chen, J; Gorrell, MD; Henderson, JM; Kench, JG; McCaughan, GW; Polak, N; Roediger, B; Weninger, W; Zhang, HE, 2018)
"Chronic inflammation is a known hallmark of cancer and is central to the onset and progression of hepatocellular carcinoma (HCC)."1.48Astrocyte Elevated Gene-1 Regulates Macrophage Activation in Hepatocellular Carcinogenesis. ( Dozmorov, M; Fisher, PB; Ghosh, S; Jariwala, N; Lai, Z; Mendoza, RG; Mukhopadhyay, ND; Robertson, CL; Sarkar, D; Subler, MA; Windle, JJ, 2018)
"At present, the treatment of hepatocellular carcinoma (HCC) remains to be a problem globally."1.48The Ethanol Supernatant Extracts of Liushenwan Could Alleviate Nanodiethylnitrosamine-Induced Liver Cancer in Mice. ( Chen, XZ; Li, XJ; Li, YS; Shang, HC; Tang, HB; Tian, GH; Zhang, WK, 2018)
"Both incidence and death rate due to liver cancer have increased in the United States."1.48Dietary Tomato Powder Inhibits High-Fat Diet-Promoted Hepatocellular Carcinoma with Alteration of Gut Microbiota in Mice Lacking Carotenoid Cleavage Enzymes. ( Aizawa, K; Fu, M; Hiroyuki, S; Hu, KQ; Li, CC; Liu, C; Takahashi, S; Wang, XD; Wu, G; Xia, H; Zhao, L, 2018)
"In the DEN-treated mice, AICAR treatment reduced tumorigenesis, IL-6 signaling, and STAT3 activation."1.48The Adenosine Monophosphate (AMP) Analog, 5-Aminoimidazole-4-Carboxamide Ribonucleotide (AICAR) Inhibits Hepatosteatosis and Liver Tumorigenesis in a High-Fat Diet Murine Model Treated with Diethylnitrosamine (DEN). ( Gao, J; Jiang, G; Xiong, D; Xiong, R; Yin, T; Yin, Z; Zhang, S; Zhang, X; Zhao, W, 2018)
"Human hepatocellular carcinomas (HCCs), which arise on a background of chronic liver damage and inflammation, express c-Fos, a component of the AP-1 transcription factor."1.46Liver carcinogenesis by FOS-dependent inflammation and cholesterol dysregulation. ( Bakiri, L; Campos-Olivas, R; Dienes, HP; Graña, O; Guío-Carrión, A; Hamacher, R; Hasenfuss, SC; Martinez, L; Thomsen, MK; Wagner, EF, 2017)
"Determining the origin of liver cancer stem cells is important for treating hepatocellular carcinoma."1.46Tg737 regulates epithelial-mesenchymal transition and cancer stem cell properties via a negative feedback circuit between Snail and HNF4α during liver stem cell malignant transformation. ( Bian, Z; Chen, C; Dai, B; Huang, Q; Liu, W; Pu, M; Qu, X; Shen, L; Tang, H; Tao, K; Zhao, G, 2017)
"The global burden of hepatocellular carcinoma is increasing; actually, it is estimated as 750,000 new cases annually."1.46Gallic acid against hepatocellular carcinoma: An integrated scheme of the potential mechanisms of action from in vivo study. ( Aglan, HA; Ahmed, HH; El-Toumy, SA; Mahmoud, NS, 2017)
"Non-alcoholic fatty liver disease (NAFLD) encompasses a broad spectrum of conditions, ranging from non-progressive bland steatosis to hepatocarcinoma."1.46Hepatocyte specific TIMP3 expression prevents diet dependent fatty liver disease and hepatocellular carcinoma. ( Bischetti, S; Casagrande, V; Federici, M; Mauriello, A; Mavilio, M; Menghini, R, 2017)
"Hepatocellular carcinoma was induced with 20 mg diethylnitrosamine/kg BW."1.46Gamma-irradiated β-glucan modulates signaling molecular targets of hepatocellular carcinoma in rats. ( Elsonbaty, SM; Moawed, FS; Zahran, WE, 2017)
"Rats from all groups were assessed for liver cancer progression or inhibition by evaluating histological, biochemical, antioxidant enzyme status, cytokines and gene expression profiles."1.46Anti-cancer effects of Ajwa dates (Phoenix dactylifera L.) in diethylnitrosamine induced hepatocellular carcinoma in Wistar rats. ( Abuzenadah, A; Al-Qahtani, M; Barbour, E; Chaudhary, A; Kalamegam, G; Khan, F; Khan, TJ; Kumosani, T; Pushparaj, PN, 2017)
"Treatment with crocin-coated MNPs was associated with regression of precancerous lesions, significant upregulation of apoptotic cells and downregulation of Bcl-2 labeling and markers of cell proliferation, inflammation, oxidative stress and angiogenesis."1.46Development of a therapeutic model of precancerous liver using crocin-coated magnetite nanoparticles. ( Amin, A; El-Kharrag, R; Greish, Y; Hisaindee, S; Karam, SM, 2017)
"The high recurrence/metastasis of HCC is the main cause of death for HCC patients after liver resection."1.46miR-203 inhibits augmented proliferation and metastasis of hepatocellular carcinoma residual in the promoted regenerating liver. ( Chen, XB; Feng, L; Tang, JW; Xu, LL; Xu, MQ; Yi, PS; Zhang, M; Zheng, XB, 2017)
"Blocking lipogenesis in cultured liver cancer cells is sufficient to decrease cell viability; however, it is not known whether blocking lipogenesis in vivo can prevent liver tumorigenesis."1.46Inhibition of hepatic lipogenesis enhances liver tumorigenesis by increasing antioxidant defence and promoting cell survival. ( Breen, DS; Byrne, FL; Caldwell, SH; Chow, JD; Cooney, GJ; Hargett, SR; Hoehn, KL; James, DE; Lackner, C; Lahiri, S; Nelson, ME; Olzomer, EM; Slack-Davis, JK; Turner, N; Wu, LE, 2017)
"While gender differences in hepatocellular carcinoma (HCC) are profound, the mechanism is unclear."1.43Testosterone regulation of cyclin E kinase: A key factor in determining gender differences in hepatocarcinogenesis. ( Barn, VA; Blackburn, AC; Board, P; Farrell, GC; Pok, S; Teoh, NC; Wong, HJ, 2016)
"Hepatocellular carcinoma is increasingly important in the United States as the incidence rate rose over the last 30 years."1.43DNA Alkylating Agent Protects Against Spontaneous Hepatocellular Carcinoma Regardless of O6-Methylguanine-DNA Methyltransferase Status. ( Drinkwater, NR; Hanes, MA; Herbert, DC; Herzig, MC; Hildreth, K; McMahan, CA; Reddick, RL; Reddick, T; Street, K; Walter, CA; Zavadil, JA, 2016)
"Without treatment, NAFLD may progress to hepatocellular carcinoma (HCC), a cancer with a high mortality rate."1.43Dietary Broccoli Lessens Development of Fatty Liver and Liver Cancer in Mice Given Diethylnitrosamine and Fed a Western or Control Diet. ( Chen, YJ; Jeffery, EH; Wallig, MA, 2016)
"Bid participates in hepatic carcinogenesis but the mechanism is not fully understood."1.43Gene Expression Analysis Indicates Divergent Mechanisms in DEN-Induced Carcinogenesis in Wild Type and Bid-Deficient Livers. ( Chen, X; Dong, Z; Khambu, B; Luo, J; Michalopoulos, GK; Wu, S; Yan, S; Yin, XM; Yu, C, 2016)
"Several animal models of nonalcoholic steatohepatitis have been developed to facilitate its study; however, few fully recapitulate all its clinical features, which include insulin resistance, inflammation, fibrosis, and carcinogenesis."1.43Development of a novel mouse model of hepatocellular carcinoma with nonalcoholic steatohepatitis using a high-fat, choline-deficient diet and intraperitoneal injection of diethylnitrosamine. ( Abe, Y; Aiura, K; Hibi, T; Itano, O; Kishida, N; Kitagawa, Y; Kitago, M; Masugi, Y; Matsuda, S; Sakamoto, M; Shinoda, M; Yagi, H, 2016)
"The development of hepatocellular carcinoma (HCC) is a common consequence of advanced liver fibrosis but the interactions between fibrogenesis and carcinogenesis are still poorly understood."1.43TLR4 Deficiency Protects against Hepatic Fibrosis and Diethylnitrosamine-Induced Pre-Carcinogenic Liver Injury in Fibrotic Liver. ( Bohner, A; Dapito, DH; Lammert, F; Schwabe, RF; Weber, SN, 2016)
"Dieckol (DEK) is a naturally occuring phlorotannins found in marine brown algae Ecklonia cava which is attributed with various pharmacological properties."1.43Protective effects of dieckol on N-nitrosodiethylamine induced hepatocarcinogenesis in rats. ( Duraikannu, A; Fredrick, WS; Kodisundaram, P; Ravichandran, S; Sadeeshkumar, V; Sivaperumal, R, 2016)
"Diethylnitrosamine (DEN) was used to induce pre-carcinoma and early HCC nodules in the experimental group."1.43Detection and differentiation of early hepatocellular carcinoma from cirrhosis using CT perfusion in a rat liver model. ( Feng, GL; Jiang, HJ; Li, DQ; Li, JP; Wan, Y; Wang, HB; Zhao, DL, 2016)
"The impact of gp96 status on hepatic carcinogenesis in response to diethyl-nitrosoamine (DENA) was probed."1.42Endoplasmic reticulum heat shock protein gp96 maintains liver homeostasis and promotes hepatocellular carcinogenesis. ( Chiosis, G; Clarke, CJ; Cowart, LA; Drake, RR; Hannun, YA; Jones, E; Li, Z; Liu, B; Ogretmen, B; Rachidi, S; Sun, S; Wu, BX, 2015)
"After DEN-induced hepatocellular carcinoma (HCC) in rats showed increased phosphorylation of JNK1/2, p38, and ERK1/2, we next antagonized TGF-β1-induced phosphorylation of JNK1/2, p38, ERK1/2, Smad2/3 signaling in HepG2 cells using SP600125, SB203580, and PD98059, respectively."1.42MAPK inhibitors differently modulate TGF-β/Smad signaling in HepG2 cells. ( Boye, A; He, S; Jiang, Y; Kan, H; Wu, C; Yang, X; Yang, Y, 2015)
"Chronic liver inflammation is a crucial event in the development and growth of hepatocellular carcinoma (HCC)."1.42Lack of gp130 expression in hepatocytes attenuates tumor progression in the DEN model. ( Al Masaoudi, M; Cubero, FJ; Gassler, N; Hatting, M; Liedtke, C; Nevzorova, YA; Peng, J; Sellge, G; Spannbauer, M; Trautwein, C, 2015)
"Caudatin is a potential antitumor agent isolated from the traditional Chinese medicine "baishouwu", which was the root tuber of Cynanchum auriculatum Royle ex Wight."1.42Pharmacokinetics and tissue distribution study of caudatin in normal and diethylnitrosamine-induced hepatocellular carcinoma model rats. ( Ding, Y; Peng, Y, 2015)
"At present, the treatment of hepatocellular carcinoma (HCC) is an international problem."1.42Doxorubicin and curcumin co-delivery by lipid nanoparticles for enhanced treatment of diethylnitrosamine-induced hepatocellular carcinoma in mice. ( Chen, Q; Li, Y; Liu, W; Tang, H; Yang, X; Zhao, X, 2015)
"The treatment with astemizole prevented diethylnitrosamine (DEN)-induced rat HCC development in vivo (followed by studying γ-glutamyl transpeptidase (GGT) activity)."1.42Astemizole-based anticancer therapy for hepatocellular carcinoma (HCC), and Eag1 channels as potential early-stage markers of HCC. ( Acuña-Macías, I; Camacho, J; Caro-Sánchez, CH; Chiliquinga, AJ; de Guadalupe Chávez-López, M; Díaz-Chávez, J; Gariglio, P; Hernández-Gallegos, E; Herrera, LA; Pérez-Carreón, JI; Zuñiga-García, V, 2015)
"Experimentally induced hepatocellular carcinoma is considered one of the representative laboratory models for studying this process."1.42Dynamic metabolic change is indicative of inflammation-induced transformation of hepatic cells. ( Cai, JC; Cathopoulis, T; Han, R; Li, X; Liu, F; Liu, GY; Lu, K; Luo, G; Peng, B; Shi, SL; Yang, L, 2015)
"Fgl1 expression is decreased in hepatocellular carcinoma (HCC) and its loss correlates with a poorly differentiated phenotype."1.42Targeted disruption of fibrinogen like protein-1 accelerates hepatocellular carcinoma development. ( Bronson, RT; Cohen, DE; Demchev, V; Desai, A; Hornick, JL; Nayeb-Hashemi, H; Ukomadu, C, 2015)
"Liver cirrhosis is a predominant risk factor for hepatocellular carcinoma (HCC)."1.42Evaluation of 2-[18F]-fluoro-2-deoxy-D-glucose positron emission tomography/computed tomography in rat models with hepatocellular carcinoma with liver cirrhosis. ( Chung, YA; Ham, HJ; Jang, KS; Jung, YJ; Lee, J; Lee, JH; Maeng, LS; Park, MS; Park, SI, 2015)
"We found that loss of MnSOD in hepatoma cells contributed to their conversion toward a more malignant phenotype, affecting all cellular properties generally associated with metabolic transformation and tumorigenesis."1.42Mitochondrial Dysfunction Due to Lack of Manganese Superoxide Dismutase Promotes Hepatocarcinogenesis. ( Dombrowski, F; Görlach, A; Jakupovic, M; Kietzmann, T; Konzack, A; Kubaichuk, K; Miinalainen, I; Sormunen, R, 2015)
"Early diagnosis of hepatocellular carcinoma (HCC) remains challenging to date."1.42Metabolomics Identifies Biomarker Pattern for Early Diagnosis of Hepatocellular Carcinoma: from Diethylnitrosamine Treated Rats to Patients. ( Hu, C; Huang, X; Lin, X; Niu, J; Tan, Y; Wang, H; Wang, X; Yin, P; Zeng, J; Zhou, L, 2015)
"Melatonin was given in drinking water at 1 mg/kg/d, beginning 5 or 12 weeks after the start of DEN administration."1.42Melatonin Activates Endoplasmic Reticulum Stress and Apoptosis in Rats with Diethylnitrosamine-Induced Hepatocarcinogenesis. ( Cerski, CT; García-Palomo, A; González-Gallego, J; Marroni, NP; Mauriz, JL; Moreira, AJ; Ordoñez, R; Picada, JN, 2015)
"Alcoholic liver disease, chronic hepatitis B and chronic hepatitis C are the most common underlying liver diseases."1.40Protein phosphatase 2A promotes hepatocellular carcinogenesis in the diethylnitrosamine mouse model through inhibition of p53. ( Calabrese, D; Dietsche, T; Dill, MT; Duong, FH; Heim, MH; Ketterer, S; Makowska, Z; Matter, MS; Terracciano, L, 2014)
"A mouse model of fibrosis-associated liver cancer that was designed to emulate cirrhotic liver, a prevailing disease state observed in most humans with HCC, was used."1.40Genetic and epigenetic changes in fibrosis-associated hepatocarcinogenesis in mice. ( Beland, FA; Chappell, G; Hoenerhoff, M; Hong, HH; Kutanzi, K; Pogribny, IP; Rusyn, I; Tryndyak, V; Uehara, T, 2014)
"Treatment with leflunomide, perindopril or curcumin alone abrogated the DEN-induced increased MVD as well as the elevated expression of VEGF, while only curcumin inhibited HIF-1α hepatic expression."1.40Targeting different angiogenic pathways with combination of curcumin, leflunomide and perindopril inhibits diethylnitrosamine-induced hepatocellular carcinoma in mice. ( Hamed, O; Kazem, A; Nasr, M; Selima, E, 2014)
"Human hepatocellular carcinoma (HCC) develops most often as a complication of fibrosis or cirrhosis."1.40The DEN and CCl4 -Induced Mouse Model of Fibrosis and Inflammation-Associated Hepatocellular Carcinoma. ( Pogribny, IP; Rusyn, I; Uehara, T, 2014)
"Interestingly, HFD, which induced hyperlipidemia and hepatic steatosis, attenuated DEN-related malnutrition and fibrosis progression in HFD + DEN group during 10-14 weeks."1.40High-saturate-fat diet delays initiation of diethylnitrosamine-induced hepatocellular carcinoma. ( Ding, WJ; Duan, XY; Fan, JG; Pan, Q; Qiao, L; Yan, SY, 2014)
"Molecular mechanisms responsible for hepatocellular carcinoma (HCC) remain largely unknown."1.40Inhibition of de novo NAD(+) synthesis by oncogenic URI causes liver tumorigenesis through DNA damage. ( Bakiri, L; Djouder, N; Gomes, AL; Graña, O; Pisano, DG; Rodriguez-Justo, M; Ruppen, I; Sheshappanavar, V; Tummala, KS; Wagner, EF; Ximénez-Embún, P; Yilmaz, M, 2014)
"The ability to treat hepatocellular carcinoma was measured by comparing biochemical serum markers such as serum alanine aminotransferase, serum aspartate aminotransferase, serum alkaline phosphatase, and the specific marker for hepatocellular carcinoma, alpha fetoprotein."1.39Anticancer effect of ursolic acid stearoyl glucoside in chemically induced hepatocellular carcinoma. ( Afzal, M; Ahmad, A; Al-Abbasi, FA; Anwar, F; Kazmi, I; Narooka, AR; Singh, R, 2013)
"However, the change of 5 hmC level in hepatocellular carcinoma (HCC) and association with clinical outcome were not well defined."1.39Decrease of 5-hydroxymethylcytosine is associated with progression of hepatocellular carcinoma through downregulation of TET1. ( Bian, XW; Bie, P; Chen, X; Cui, Y; Liu, C; Liu, L; Qian, C; Shan, J; Shen, J; Wu, L; Xia, F; Xu, Y; Yang, Z, 2013)
"In human hepatocellular carcinoma tumors, high levels of CXCR4 always correlated with activation of the TGF-β pathway, a less differentiated phenotype, and a cirrhotic background."1.39Overactivation of the TGF-β pathway confers a mesenchymal-like phenotype and CXCR4-dependent migratory properties to liver tumor cells. ( Bertran, E; Caja, L; Crosas-Molist, E; Egea, G; Fabregat, I; Lastra, R; Lopez-Luque, J; Navarro, E; Ramos, E; Sancho, P; Serrano, T, 2013)
"Real-time analyses of hepatocellular carcinoma were performed in living mice to assess the applicability of probe electrospray ionization-mass spectrometry (PESI-MS) in medical diagnosis."1.39Real-time diagnosis of chemically induced hepatocellular carcinoma using a novel mass spectrometry-based technique. ( Chen, LC; Fujii, H; Hara, M; Hiraoka, K; Mandal, MK; Takeda, S; Tanabe, K; Yoshimura, K, 2013)
"Treatment options for hepatocellular carcinoma using chemotherapeutics at intermediate and advanced stages of disease are limited as patients most rapidly escape from therapy and succumb to disease progression."1.39Novel inhibitors of cyclin-dependent kinases combat hepatocellular carcinoma without inducing chemoresistance. ( Berger, W; Grubinger, M; Gucky, T; Haider, C; Jorda, R; Kryštof, V; Miklos, W; Mikulits, W; Řezníčková, E; Rotheneder, H; Strnad, M; Weiss, TS; Zatloukal, M, 2013)
"Phenobarbital (PB) is a cytochrome P450 (CYP) 2B inducer, and piperonyl butoxide (PBO) is a CYP1A/2B inducer."1.39Suppressive effect of liver tumor-promoting activities in rats subjected to combined administration of phenobarbital and piperonyl butoxide. ( Akane, H; Itahashi, M; Mitsumori, K; Morita, R; Nakane, F; Shibutani, M; Shiraki, A; Suzuki, K; Yafune, A, 2013)
"The findings suggest that RGP prevents hepatocellular carcinoma by suppressing the marked increase in the levels of serum marker enzymes, and suppresses the free radical by scavenging hydroxyl radicals."1.39Anticancer potential of rhamnocitrin 4'-β-D-galactopyranoside against N-diethylnitrosamine-induced hepatocellular carcinoma in rats. ( Ahmad, K; Ahmad, P; Al-Harbi, NO; Alam, MJ; Imam, F; Iqbal, M; Khusroo, MJ; Rahman, RU; Saleem, S; Shaharyar, MA, 2013)
"Group-II animals were kept untreated as hepatocellular carcinoma control."1.39Anti cancerous efficacy of Ayurvedic milk extract of Semecarpus anacardium nuts on hepatocellular carcinoma in Wistar rats. ( Jhala, M; Joseph, JP; Kumar, P; Raval, SK; Sadariya, KA, 2013)
"Liver cancer, predominantly hepatocellular carcinoma (HCC), represents a complex and fatal malignancy driven primarily by oxidative stress and inflammation."1.39Pomegranate phytoconstituents blunt the inflammatory cascade in a chemically induced rodent model of hepatocellular carcinogenesis. ( Bhatia, D; Bishayee, A; Darvesh, AS; Meszaros, JG; Ohanyan, V; Thoppil, RJ, 2013)
"Diethylnitrosamine (DEN) is a well known carcinogenic substance, which induces hepatic carcinoma."1.38Anticarcinogenic activity of nanoencapsulated quercetin in combating diethylnitrosamine-induced hepatocarcinoma in rats. ( Das, N; Ghosh, A; Ghosh, D; Mandal, AK; Sarkar, S; Thakur Choudhury, S, 2012)
"Hepatocellular carcinoma is becoming one of the most prominent types of cancer in the world."1.38Activity of tumor necrosis factor-α blocked by phytoglycoprotein (38 kDa) at initiation stage in N-nitrosodiethylamine-induced ICR mice. ( Lee, J; Lim, KT, 2012)
"Hepatocellular carcinoma was induced in animals of groups II and III with 0."1.38Ameliorative effect of methanol extract of Rubia cordifolia in N-nitrosodiethylamine-induced hepatocellular carcinoma. ( Devaraj, SN; Shilpa, PN; Venkatabalasubramanian, S, 2012)
"This experiment was designed to compare the effect of two selenium sources at the dosage of therapeutic level on hepatocarcinogenesis and angiogenic cytokines in DEN-induced hepatocarcinoma rats to further approach their possible anticancer's mechanism."1.38Effect of two selenium sources on hepatocarcinogenesis and several angiogenic cytokines in diethylnitrosamine-induced hepatocarcinoma rats. ( Liu, JG; Liu, YJ; Liu, YW; Wang, XL; Zhao, HJ, 2012)
"Decreased KLF6 expression in human hepatocellular carcinoma (HCC) correlates with increased mortality, but the contribution of increased SV1 is unknown."1.38Enhanced hepatocarcinogenesis in mouse models and human hepatocellular carcinoma by coordinate KLF6 depletion and increased messenger RNA splicing. ( Cohen-Naftaly, M; Friedman, SL; Hannivoort, R; Kocabayoglu, P; Lee, YA; M Llovet, J; Narla, G; Thung, SN; Vetter, D; Villanueva, A, 2012)
"Patients with liver cirrhosis and HCC had significantly increased serum endotoxin levels."1.38Profound impact of gut homeostasis on chemically-induced pro-tumorigenic inflammation and hepatocarcinogenesis in rats. ( Chen, HY; Dai, RY; He, YQ; Li, YQ; Li, Z; Lin, Y; Liu, Q; Qiu, BJ; Shan, L; Tan, YX; Tang, L; Wang, C; Wang, HY; Wu, FQ; Wu, H; Yan, HX; Yang, W; Yu, LX; Zhai, B; Zhang, HL; Zheng, LY, 2012)
"Liver tumor, especially hepatocellular carcinoma (HCC), is closely associated with chronic inflammation."1.38Deletion of IFNγ enhances hepatocarcinogenesis in FXR knockout mice. ( Gan, Y; He, C; Huang, W; Lou, G; Meng, Z; Ness, CV; Wang, X; Wu, J; Xu, R; Yu, H; Zhang, Y; Zhou, H, 2012)
"Hepatocellular carcinoma is one of the most common cancers and lethal diseases in the world."1.38Myrtenal, a natural monoterpene, down-regulates TNF-α expression and suppresses carcinogen-induced hepatocellular carcinoma in rats. ( Babu, LH; Balasubramanian, MP; Perumal, S, 2012)
"The levels of liver cancer markers, including α-fetoprotein and carcinoembryonic antigen, were substantially increased by NDEA treatment."1.38Chemopreventive evaluation of Tephrosia purpurea against N-nitrosodiethylamine-induced hepatocarcinogenesis in Wistar rats. ( Fareed, S; Hussain, T; Rao, CV; Siddiqui, HH; Vijayakumar, M, 2012)
"Hepatocellular carcinoma was induced by single intraperitoneal injection of N-nitrosodiethylamine (NDEA) in normal saline at a dose of 200 mg/kg body weight followed by weekly subcutaneous injections of CCl(4)(3 mL/kg/week) for 6 weeks, as the promoter of carcinogenic effect."1.38Evaluation of chemopreventive effect of Fumaria indica against N-nitrosodiethylamine and CCl4-induced hepatocellular carcinoma in Wistar rats. ( Fareed, S; Hussain, T; Rao, CV; Siddiqui, HH; Vijayakumar, M, 2012)
"A genetic basis of hepatocellular carcinoma (HCC) has been well-established and major signaling pathways, such as p53, Wnt-signaling, transforming growth factor-β (TGF-β) and Ras pathways, have been identified to be essential to HCC development."1.37Liver specific overexpression of platelet-derived growth factor-B accelerates liver cancer development in chemically induced liver carcinogenesis. ( Galle, PR; Hansen, T; Kanzler, S; Longerich, T; Maass, T; Mann, A; Schirmacher, P; Strand, D; Teufel, A; Thieringer, FR, 2011)
" At day 0, the fertilized eggs of the dosed groups were injected with 1 (LD) or 4 (HD) mg/egg (about 12."1.37Production of liver preneoplasia and gallbladder agenesis in turkey fetuses administered diethylnitrosamine. ( Brunnemann, KD; Enzmann, HG; Iatropoulos, MJ; Smart, DJ; Williams, GM, 2011)
" These results provide a rationale for long-term MET dosing in future clinical trials of HCC treatment."1.37Suppression of hepatic tumor growth and metastasis by metronomic therapy in a rat model of hepatocellular carcinoma. ( Bae, SH; Choi, JY; Jang, JW; Jung, CK; Kwon, JH; Park, ST; Yoon, SK; You, CR, 2011)
"Inactivation of KLF6 is common in hepatocellular carcinoma (HCC) associated with hepatitis C virus (HCV) infection, thereby abrogating its normal antiproliferative activity in liver cells."1.37Carcinogen-induced hepatic tumors in KLF6+/- mice recapitulate aggressive human hepatocellular carcinoma associated with p53 pathway deregulation. ( Friedman, SL; Hannivoort, R; Hoshida, Y; Lee, UE; Llovet, JM; Narla, G; Oren, M; Tarocchi, M; Vetter, D; Villanueva, A, 2011)
"A small animal imaging system for hepatocellular carcinoma (HCC)-specific reporter gene expression will enable monitoring of carcinogenesis or therapeutic intervention in vivo."1.37Non-invasive monitoring of hepatocellular carcinoma in transgenic mouse with bioluminescent imaging. ( Cheon, GJ; Kang, JH; Kim, KI; Kim, KM; Lee, TS; Lee, YJ; Lim, SM; Nahm, SS; Park, JH; Park, YS, 2011)
"Phosphorylated STAT3 was found in human hepatocellular carcinoma tissue samples and was expressed in tumor cells and also in monocytes."1.37STAT3 activation in monocytes accelerates liver cancer progression. ( Li, J; Meng, XL; Wu, WY; Wu, ZS; Zhang, CL, 2011)
"p53 Mutations are very common in human hepatocellular carcinoma, and induction of hepatic p53 expression causes lysis of implanted hepatoblastoma cells in a chimeric mouse."1.36Induction of p53 renders ATM-deficient mice refractory to hepatocarcinogenesis. ( Dan, YY; Farrell, G; Fausto, N; Gu, Y; Hou, J; Mitchell, C; Pyakurel, P; Swisshelm, K; Teoh, N, 2010)
"Also, hepatoma cells use PDGFRalpha/PIK3CA signaling as an escape mechanism following beta-catenin suppression, and their sequential suppression profoundly impedes tumor proliferation."1.36Conditional beta-catenin loss in mice promotes chemical hepatocarcinogenesis: role of oxidative stress and platelet-derived growth factor receptor alpha/phosphoinositide 3-kinase signaling. ( Kim, Y; Klaunig, JE; Misse, A; Monga, SP; Singh, S; Tan, X; Zeng, G; Zhang, XF, 2010)
"Chromosomal instability is a characteristic feature of hepatocellular carcinoma (HCC) but its origin and role in liver carcinogenesis are undefined."1.35Defective DNA strand break repair causes chromosomal instability and accelerates liver carcinogenesis in mice. ( Dan, YY; Fausto, N; Gu, Y; Haque, J; Lehman, S; Swisshelm, K; Teoh, NC; Wright, JH, 2008)
" Simultaneously, hepatocarcinoma were induced in groups II-V by diethylnitrosamine (DEN) solution (100 mg/L) at the dosage of 10 mg/kg body weight every day as drinking water for 16 weeks, then sterilized water for a further two weeks."1.35Effect of selenium-enriched malt on hypoglycemia and regulatory hormones in diethylnitrosamine-induced hepatocarcinoma SD rats. ( Liu, JG; Liu, YJ; Wang, XL; Zhao, HJ, 2009)
"Ursolic acid is a natural triterpenoid widely found in food, medicinal herbs, apple peel and other products it has been extensively studied for its anticancer and antioxidant properties."1.35Ursolic acid attenuates oxidative stress-mediated hepatocellular carcinoma induction by diethylnitrosamine in male Wistar rats. ( Gayathri, R; Gunassekaran, GR; Priya, DK; Sakthisekaran, D, 2009)
"Cotreatment with morin prevented the elevation of marker enzymes induced by N-nitrosodiethylamine."1.35Attenuation of N-nitrosodiethylamine-induced hepatocellular carcinogenesis by a novel flavonol-Morin. ( Niranjali Devaraj, S; Praveen Kumar, VR; Shilpa, PN; Sivaramakrishnan, V, 2008)
"NDEA-induced rats showed severe hyperlipidemia along with upregulated expression of COX-2 as revealed by western blotting and immunohistochemistry."1.35Silymarin downregulates COX-2 expression and attenuates hyperlipidemia during NDEA-induced rat hepatocellular carcinoma. ( Anandakumar, P; Augustine, TA; Devaki, T; Elinos-Báez, CM; Jagan, S; Kamaraj, S; Ramakrishnan, G, 2008)
"Pioglitazone treatment was initiated the day after the first diethylnitrosamine injection."1.34The PPARgamma agonist pioglitazone inhibits early neoplastic occurrence in the rat liver. ( Borbath, I; Horsmans, Y; Leclercq, I; Moulin, P; Sempoux, C, 2007)
"The number of hepatocellular carcinomas (HCCs) was significantly increased in Tg compared with non-Tg rats."1.34Both early and late stages of hepatocarcinogenesis are enhanced in Cx32 dominant negative mutant transgenic rats with disrupted gap junctional intercellular communication. ( Asamoto, M; Futakuchi, M; Hokaiwado, N; Ogawa, K; Shirai, T; Takahashi, S, 2007)
"Hepatocellular adenomas and hepatocellular carcinomas also show a very low density of beta1-ARs, extensive areas completely devoid of beta1-ARs being mingled with areas showing a weak immunostaining."1.33Decreased density of beta1-adrenergic receptors in preneoplastic and neoplastic liver lesions of F344 rats. ( Cardani, R; Zavanella, T, 2005)
"In murine and human hepatoma cells, IRS-2 protein induction associated with increased IRS-2 mRNA levels."1.33Overexpression of insulin receptor substrate-2 in human and murine hepatocellular carcinoma. ( Beurel, E; Boissan, M; Desbois-Mouthon, C; Housset, C; Lacombe, ML; Lécluse, Y; Rey, C; Wendum, D, 2005)
"Incidences of lung metastasis in the 40 ppm group steadily increased up to 67% by week 36 while that in the 80 ppm increased sharply up to 86% by week 24."1.33Modification of an in vivo lung metastasis model of hepatocellular carcinoma by low dose N-nitrosomorpholine and diethylnitrosamine. ( Cho, YM; Futakuchi, M; Imai, N; Ogawa, K; Shirai, T; Takeshita, F; Tamano, S; Yoshino, H, 2005)
"Value of spin states ratio in hepatoma was shown to be greater then in liver."1.33[Ratio of low- and high-spin cytochrome P-450 in liver microsomes of N-nitrosodiethylamine-induced hepatomas]. ( Mel'nykov, OR; Momot, VIa; P'iatchanina, TV; Sydoryk, IeP, 2005)
"As tumors progressed to hepatocellular carcinomas, the additional Tg FoxM1B protein had no effect on cell proliferation, and there was no increase in tumor burden compared to wild-type animals."1.32Sustained hepatic expression of FoxM1B in transgenic mice has minimal effects on hepatocellular carcinoma development but increases cell proliferation rates in preneoplastic and early neoplastic lesions. ( Adami, GR; Costa, RH; Kalinin, SA; Kalinina, OA; Mikaelian, I; Panda, S; Polack, EW, 2003)
"The question whether hepatocellular carcinoma (HCC) arises from dedifferentiation of mature hepatocytes or from proliferation of liver stem cells is still debated."1.31Demonstration of direct lineage between hepatocytes and hepatocellular carcinoma in diethylnitrosamine-treated rats. ( Bralet, MP; Ferry, N; Pichard, V, 2002)
"Diethylnitrosamine-treated TT mice developed both preneoplastic and neoplastic lesions in the liver."1.31Enhancement of chemical hepatocarcinogenesis by the HIV-1 tat gene. ( Altavilla, G; Barbanti-Brodano, G; Caputo, A; Corallini, A; Lanfredi, M; Piola, C, 2000)
"For better understanding of cancer metastasis, we have established an in vivo model for induction of highly metastatic hepatocellular carcinomas (HCC) in male F344 rats."1.31Establishment of rat hepatocellular carcinoma cell lines with differing metastatic potential in nude mice. ( Asamoto, M; Futakuchi, M; Imaida, K; Nakanishi, H; Ogawa, K; Shirai, T; Takeshita, F; Tatematsu, M, 2001)
"The average numbers of liver neoplasms in groups 2 and 3 were significantly smaller than in group 1 (P < 0."1.31Chemopreventive effects of scordinin on diethylnitrosamine and phenobarbital-induced hepatocarcinogenesis in male F344 rats. ( Mori, H; Okamoto, K; Rahman, KM; Sugie, S; Ushida, J; Watanabe, T, 2001)
"The incidence of hepatocellular carcinoma (HCC) is more prevalent in males than in females."1.31Preventive effect of FK143, a 5alpha-reductase inhibitor, on chemical hepatocarcinogenesis in rats. ( Dhar, DK; El-Assal, ON; Maruyama, S; Nagasue, N; Okita, K; Satoh, K; Yamanoi, A, 2001)
"In gene therapy for hepatocellular carcinoma (HCC), gene transfer is efficient for small tumors, but not for large tumors."1.31Efficient and cancer-selective gene transfer to hepatocellular carcinoma in a rat using adenovirus vector with iodized oil esters. ( Eto, Y; Futagawa, Y; Ohashi, T; Okamoto, T; Shiba, H, 2001)
"Hepatocellular carcinomas were induced with the decreased Bcl-x protein expression."1.31Decreased expression of Bcl-x protein during hepatocarcinogenesis induced exogenously and endogenously in rats. ( Ashida, H; Danno Gi, G; Hashizume, K; Hatanaka, Y; Kamihara, Y; Kinoshita, N; Konishi, Y; Mutai, M; Nakae, D; Ohta, S; Tani, Y, 2001)
"Diethylnitrosamine (DEN) was administered at the age of 8 weeks."1.30Chronic liver injury promotes hepatocarcinogenesis of the LEC rat. ( Enomoto, K; Hattori, A; Mori, M; Sawada, N; Sawaki, M; Sugawara, N; Tsuzuki, N, 1998)
"In contrast, five hepatoma cell lines (Fao, Faza, H5, HTC and RHC1) showed either a decrease or an absence of OCT1 expression compared to normal hepatocytes; these hepatoma cells also displayed lower intracellular accumulation of tetraethylammonium (TEA), a well-known substrate for OCT1."1.30Differential expression of the polyspecific drug transporter OCT1 in rat hepatocarcinoma cells. ( Fardel, O; Guillouzo, A; Lecureur, V, 1998)
"The average score of liver cirrhosis associated with HCV was 1."1.30Aberrant expression of double-stranded RNA-dependent protein kinase in hepatocytes of chronic hepatitis and differentiated hepatocellular carcinoma. ( Hino, S; Kamahora, T; Kawasaki, H; Miyata, H; Shimada, A; Shiota, G; Shiraki, K; Terada, T, 1998)
"Trichloroethylene (TCE) was found as a contaminant in the well supplying water to an aquatic testing laboratory."1.30Environmental complex mixture toxicity assessment. ( Boncavage-Hennessey, EM; Brennan, LM; Gardner, HS; Rosencrance, AB; Toussaint, MW; Wolfe, MJ, 1998)
"Primary hepatocellular carcinoma (HCC) is probably one of the most common fatal forms of liver cancer."1.30Hepatocellular carcinoma cell lines from diethylnitrosamine phenobarbital-treated rats. Characterization and sensitivity to endothall, a protein serine/threonine phosphatase-2A inhibitor. ( Adam, R; Anjo, A; Blazsek, I; Legras, S; Marion, S; Misset, JL; Reynes, M; Thièry, JP, 1999)
"Histologically, the tumors were hepatocellular carcinomas (HCCs) of trabecular, (pseudo)glandular and solid types with or without cholangiocellular involvement."1.30Immunohistochemical localization of inducible nitric oxide synthase and 3-nitrotyrosine in rat liver tumors induced by N-nitrosodiethylamine. ( Ahn, B; Han, BS; Kim, DJ; Ohshima, H, 1999)
"These results show that rat hepatoma cells can display elevated levels of functional P-glycoprotein without any prior cytotoxic drug selection and suggest that these cells represent a useful model for analyzing P-glycoprotein regulation in intrinsically clinical drug-resistant cancers."1.29Constitutive expression of functional P-glycoprotein in rat hepatoma cells. ( Fardel, O; Glaise, D; Guillouzo, A; Lecureur, V; Loyer, P, 1994)
"HAM-6 was also slightly reactive to rat hepatocellular carcinoma, but not to normal or fetal rat liver, other normal rat organs, human hepatocellular carcinoma, or human liver cirrhosis."1.29Immunohistochemical characterization of a monoclonal antibody to hyperplastic nodules induced in rat liver by chemical carcinogens. ( Kurokawa, F, 1994)
"These results suggested that LEC rat hepatocellular carcinoma could be naturally initiated after the onset of hepatitis by carcinogens contaminating food and the environment, probably due to the reduction of DNA repair activity, after which initiated hepatocytes selectively proliferate in response to growth stimuli endogenously produced as a result of continuous loss of hepatocytes (chronic hepatitis), because of a decrease in growth activity of non-initiated hepatocytes."1.29High sensitivity of LEC rats with chronic hepatitis to hepatocarcinogenesis: decreases in unscheduled and replicative DNA synthesis of the hepatocytes. ( Enomoto, K; Kamimura, Y; Mori, M; Sakamoto, H; Sawada, N, 1993)
"The gangliosides of human hepatoma biopsies, human hepatoma cell lines, and diethylnitrosamine-induced rat hepatomas were examined."1.28Enhanced expression of ganglioside GD3 in human and rat hepatocellular carcinoma cells and NIH 3T3 cells transfected with human tumor DNAs. ( Fuhrer, JP; Gao, NH; Gu, JR; Gu, TG; Lee, W; Murphy, MJ; Xia, LA; Ye, JN, 1990)
"Histological characterization of hepatocellular carcinoma, hemangiopericytic sarcoma, and cholangiocarcinoma and the development of the neoplasms in host fish is presented."1.27Transplantable chemically-induced liver tumors in the viviparous fish Poeciliopsis. ( Schultz, ME; Schultz, RJ, 1985)
"Diethylnitrosamine (NDEA) was administered subcutaneously to non-icteric and icteric Gunn rats."1.27The influence of metabolic liver defects on diethylnitrosamine (NDEA)-carcinogenesis in Gunn rats. ( Althoff, J; Fehst, HJ; Mohr, U, 1985)
"Transplantable hepatomas varied in their fibronectin staining from fibronectin-negative hepatomas to ones with fibronectin staining within or around every tumor cell."1.26Expression of fibronectin and laminin in the rat liver after partial hepatectomy, during carcinogenesis, and in transplantable hepatocellular carcinomas. ( Ruoslahti, E; Sell, S, 1982)
"Methionine was contained in both the amino acid and the lipotrope supplement and probably was responsible for reducing hepatocarcinoma incidence."1.26Reduction of N-nitrosodiethylamine carcinogenesis in rats by lipotrope or amino acid supplementation of a marginally deficient diet. ( Rogers, AE, 1977)
" Chronic administration of diethylnitrosamine slightly increased the hepatic methylcobalamin concentration, but this was not statistically significant."1.26Altered cobalamin distribution in rat hepatomas and in the livers of rats treated with diethylnitrosamine. ( Linnell, JC; Matthews, DM; Morris, HP; Poirier, LA; Quadros, EV, 1977)
"induced tumors of liver (hepatocellular cancers and adenomas), and of hematopoietic system (hemocytoblastosis)."1.26The induction of tumors in Rana temporaria with nitrosamines. ( Khudoley, VV, 1977)
" The highest activity was obtained with antisera (Cx-1) produced by repeated intravenous injections of living L-10 cells at high cell dosage, whereas intramuscular injections of living or glutaraldehyde-treated L-10 cells at similar frequency and cell dosage were less effective for the production of cytotoxic antibodies against L-10 cells."1.26Susceptibility to and escape from complement-mediated lysis of guinea-pig hepatoma line-10. ( Abe, S; Berczi, I; Sehon, AH, 1977)
"The pulmonary metastases were first detected in mice dying between 51 and 60 weeks of age (5%)."1.26Morphology and metastatic nature of induced hepatic nodular lesions in C57BL x C3H F1 mice. ( Mihailovich, N; Rao, KV; Vesselinovitch, SD, 1978)

Research

Studies (659)

TimeframeStudies, this research(%)All Research%
pre-199064 (9.71)18.7374
1990's39 (5.92)18.2507
2000's106 (16.08)29.6817
2010's338 (51.29)24.3611
2020's112 (17.00)2.80

Authors

AuthorsStudies
Balaraman, G2
Sundaram, J2
Mari, A2
Krishnan, P2
Salam, S2
Subramaniam, N3
Sirajduddin, I1
Thiruvengadam, D3
Lu, Y5
Pan, J4
Zhu, X1
Zhang, S6
Liu, C10
Sun, J3
Li, Y13
Chen, S4
Huang, J2
Cao, C2
Wang, Y12
Liu, T3
Mamdouh, AM1
Khodeer, DM1
Tantawy, MA1
Moustafa, YM1
Xu, L2
Yang, C4
Wang, J12
Li, Z6
Huang, R1
Ma, H1
Ma, J1
Wang, Q5
Xiong, X1
Chun, HJ1
Shim, YJ1
Kwon, YH2
Fu, H1
Liu, X4
Jin, L1
Lang, J1
Hu, Z1
Mao, W1
Cheng, C1
Shou, Q1
Badr, AM1
El-Ahwany, E5
Goda, L1
Nagy, F1
Helal, N1
El Deeb, S1
Haberl, EM3
Pohl, R3
Rein-Fischboeck, L3
Höring, M2
Krautbauer, S3
Liebisch, G3
Buechler, C3
Sakai, H1
Yamada, Y3
Kubota, M1
Imai, K1
Shirakami, Y2
Tomita, H1
Hara, A2
Shimizu, M2
Nabeel, AI1
Mansour, SZ2
Mahdy, EME1
El-Mezayen, HA3
Mohamed, SA1
Ghufran, H1
Azam, M1
Mehmood, A1
Butt, H1
Riazuddin, S1
Chao, X1
Wang, S4
Hlobik, M1
Ballabio, A1
Ni, HM1
Ding, WX1
Karanam, G1
Arumugam, MK1
Li, X9
Yu, H3
Gong, Y2
Wu, P2
Feng, Q1
Vidya, R2
Kalaivani, K1
Amudha, P2
Márquez-Quiroga, LV1
Arellanes-Robledo, J4
Vásquez-Garzón, VR2
Villa-Treviño, S5
Muriel, P1
Lee, SR2
Jeong, SH1
Heo, JH1
Jo, SL1
Ko, JW1
Kwun, HJ1
Hong, EJ2
Li, S4
Sun, H1
Jiang, Y3
Pan, K1
Su, Y1
Bu, N1
Kidoguchi, S1
Kitada, K1
Nakajima, K1
Nakano, D1
Ohsaki, H1
Kittikulsuth, W1
Kobara, H1
Masaki, T1
Yokoo, T1
Takahashi, K1
Titze, J1
Nishiyama, A1
Srimathi Devi, J1
Haripriya, D1
Arul, S1
Saravanan, KM1
Bupesh, G1
Feng, QS1
He, Y1
Jin, Y1
Zheng, L5
Huang, Y2
Liu, W7
Wang, KX1
Du, GH1
Qin, XM1
Gao, L2
Zoheir, KMA1
Abdelhafez, MA1
Darwish, AM1
Mahrous, KF1
Guerrero-Escalera, D2
Alarcón-Sánchez, BR2
Cruz-Rangel, A1
Del Pozo-Yauner, L1
Chagoya de Sánchez, V1
Resendis-Antonio, O1
Torres-Mena, JE2
Pérez-Carreón, JI4
Jayalakshmi, M1
Poojitha, BN1
Abdel-Hamid, NM3
Abass, SA1
Eldomany, RA1
Abdel-Kareem, MA1
Zakaria, S1
Li, G3
Qi, L2
Chen, H3
Tian, G1
Zeng, X1
Liu, H4
Huang, Z1
Dong, P1
Chen, X5
Ibrahim, S1
Fahim, SA1
Tadros, SA1
Badary, OA1
Nota, T1
Kageyama, K1
Yamamoto, A1
Kakehashi, A4
Yonezawa, H1
Jogo, A1
Sohgawa, E1
Murai, K3
Ogawa, S1
Miki, Y1
Owis, AI1
Sherif, NH1
Hassan, AA1
El-Naggar, EB1
El-Khashab, IH1
El-Ghaly, ES1
Wei, Y3
Yi, JK1
Chen, J5
Huang, H1
Wu, L2
Yin, X1
Shen, H3
Li, Q4
Yu, Y3
Priya, S1
Kma, L1
Qsee, HS1
Tambe, PK1
De, S1
Bharati, S2
Gjorgjieva, M2
Ay, AS1
Correia de Sousa, M2
Delangre, E1
Dolicka, D2
Sobolewski, C2
Maeder, C2
Fournier, M2
Sempoux, C3
Foti, M3
Seo, EB1
Jang, HJ1
Kwon, SH1
Kwon, YJ1
Kim, SK1
Lee, SH1
Jeong, AJ1
Shin, HM1
Kim, YN1
Ma, S1
Kim, H1
Lee, YH2
Suh, PG1
Ye, SK1
Wu, B2
Feng, J1
Guo, J1
Xiu, G1
Xu, J4
Ning, K1
Ling, B1
Fu, Q1
Baokbah, TAS1
Andrade, A3
Poth, T3
Brobeil, A3
Merle, U3
Chamulitrat, W3
Salama, OA3
Moawed, FS5
Moustafa, EM3
Kandil, EI3
Cabrera-Galván, JJ3
Araujo, E3
de Mirecki-Garrido, M3
Pérez-Rodríguez, D3
Guerra, B3
Aranda-Tavío, H3
Guerra-Rodríguez, M3
Brito-Casillas, Y3
Melián, C3
Martínez-Martín, MS3
Fernández-Pérez, L3
Recio, C3
Giri, SR1
Bhoi, B1
Trivedi, C1
Rath, A1
Rathod, R1
Sharma, A1
Ranvir, R1
Kadam, S1
Ingale, K1
Patel, H1
Nyska, A1
Jain, MR1
Jamal, F1
Ahmed, G1
Farazuddin, M1
Altaf, I1
Farheen, S1
Zia, Q1
Azhar, A1
Ahmad, H1
Khan, AA1
Somavarapu, S1
Agrawal, A1
Owais, M1
Sánchez-Meza, J1
Campos-Valdez, M1
Domínguez-Rosales, JA1
Godínez-Rubí, JM1
Rodríguez-Reyes, SC1
Martínez-López, E1
Zúñiga-González, GM1
Sánchez-Orozco, LV1
Zhou, W1
Zheng, Y1
Shang, J1
Wang, H9
Lu, H1
Wang, X11
Sui, M1
Lin, F1
Xu, Z1
Yu, S1
Liao, S1
Zhao, W3
Zhang, F1
Ouyang, C1
Zhang, C3
Xia, H2
Wu, Y3
Jiang, B1
Nasr, M3
Kira, AY1
Saber, S7
Essa, EA1
El-Gizawy, SA1
Abdel-Hamid, MS1
Mansour, AM3
Hassan, MH1
Abdelhady, R1
Elsadek, BEM1
El-Sayed, EM1
Salama, SA1
Robarts, DR1
Kotulkar, M1
Paine-Cabrera, D1
Venneman, KK1
Hanover, JA1
Zachara, NE1
Slawson, C1
Apte, U3
Wang, M3
Hao, M1
Wang, W4
Shi, J2
Zhang, X7
Dang, S1
Zhang, N3
Yang, R1
Chen, K2
Kong, D1
Kannan, P1
K, A1
Kumar, P2
Agarwal, A1
Singh, AK1
Gautam, AK1
Chakraborti, S1
Kumar, U1
Kumar, D1
Bhattacharya, B1
Panda, P1
Saha, B1
Qidwai, T1
Maity, B1
Saha, S1
Mo'men, YS1
Hussein, RM1
Kandeil, MA1
Li, J7
Yang, Y8
Lei, C2
Yang, F3
Liang, L2
Chen, C5
Xia, J2
Wang, K2
Tang, N2
Ali, S1
Ejaz, M1
Dar, KK1
Nasreen, S1
Ashraf, N1
Gillani, SF1
Shafi, N1
Safeer, S1
Khan, MA1
Andleeb, S1
Akhtar, N1
Mughal, TA1
Mello, T2
Materozzi, M1
Zanieri, F1
Simeone, I1
Ceni, E1
Bereshchenko, O1
Polvani, S1
Tarocchi, M2
Marroncini, G1
Nerlov, C1
Guasti, D1
Bani, D1
Pinzani, M2
Galli, A2
Ding, Z1
Ericksen, RE1
Escande-Beillard, N1
Lee, QY1
Loh, A1
Denil, S1
Steckel, M1
Haegebarth, A1
Wai Ho, TS1
Chow, P1
Toh, HC1
Reversade, B1
Gruenewald, S1
Han, W1
Chen, Q4
You, X1
Yang, W5
Jiang, S1
Lai, J1
Zhang, H4
Bai, L1
Wakana, H1
Kono, H2
Fukushima, H1
Nakata, Y2
Akazawa, Y2
Maruyama, S2
Hagio, K1
Fujii, H4
Ichikawa, D1
Schulien, I2
Hockenjos, B1
van Marck, V1
Ayata, CK1
Follo, M1
Thimme, R1
Hasselblatt, P2
Younis, NS1
Ghanim, AMH2
Feder, S1
Sinal, CJ1
Bruckmann, A1
Hoering, M1
Lin, YH1
Zhu, M1
Lu, T1
Wen, Z1
Xiao, G1
Luo, D1
Jia, Y1
Li, L4
MacConmara, M1
Hoshida, Y5
Singal, AG1
Yopp, A1
Wang, T2
Zhu, H4
Cao, L1
Ji, B1
Qi, Z1
Ding, S1
El-Kader, EMA1
Alghzzawy, ZM1
Elmaghraby, TK2
El-Hamid Hagag, SA1
Awwad, MH1
Choi, J1
Won, SB1
Lee, DY1
Yun, SM1
Song, MY1
Ji, SD1
Son, JG1
Kim, EH1
Mansy, SS1
Zoheiry, M1
Mourad, L1
Mahmoud, S1
Abu-Taleb, H1
Hassanien, M1
Hassan, M1
Sojoodi, M2
Wei, L3
Erstad, DJ2
Yamada, S3
Fujii, T2
Hirschfield, H1
Kim, RS1
Lauwers, GY2
Lanuti, M3
Tanabe, KK3
Fuchs, BC3
Abd-Elbaset, M1
Ahmed, OM1
Abo-Youssef, AM1
Khan, S2
Zafar, A1
Naseem, I2
Chen, L6
Yi, X2
Guo, P1
Guo, H2
Chen, Z1
Hou, C1
Li, C3
Liu, P1
Liu, Y4
Xu, Y3
Unsal, V1
Kurutaş, EB1
Liu, HC1
Gong, Z1
Song, L1
Zhang, JG1
Feng, X1
Hou, J3
Zhang, HL3
Liu, SF2
Perkons, NR2
Johnson, O2
Pilla, G1
Profka, E2
Mercadante, M1
Ackerman, D1
Gade, TPF1
Abo Mansour, HE1
El-Batsh, MM1
Badawy, NS1
Mehanna, ET1
Mesbah, NM1
Abo-Elmatty, DM1
Ma, M1
Zhou, Y3
Sun, R2
Tan, Y2
Yang, H4
Zhang, M3
Shen, R1
Wang, Z8
Fei, J1
Tang, Q1
Zhao, L3
Zhang, Q2
Hu, H1
Liu, L4
Zhu, Y2
Guo, A1
Yang, X7
Sun, Y2
Zhang, Y6
Geng, M1
Liu, S1
Petersen, RB1
Yue, J1
Huang, K1
Chen, Y6
Xu, C1
Gong, G1
Veeraraghavan, VP1
Bolla, SR1
Memon, A1
Pyao, Y1
Jung, Y1
Lee, JI1
Lee, WK1
Khan, MGM1
Ghosh, A2
Variya, B1
Santharam, MA1
Ihsan, AU1
Ramanathan, S1
Ilangumaran, S1
Park, BJ1
Morley, C1
Appel, S1
Nadolski, GJ2
Hunt, SJ3
Gade, TP2
Esparza-Baquer, A1
Labiano, I1
Sharif, O1
Agirre-Lizaso, A1
Oakley, F2
Rodrigues, PM1
Zhuravleva, E1
O'Rourke, CJ1
Hijona, E1
Jimenez-Agüero, R1
Riaño, I1
Landa, A1
La Casta, A1
Zaki, MYW1
Munoz-Garrido, P1
Azkargorta, M1
Elortza, F1
Vogel, A1
Schabbauer, G1
Aspichueta, P1
Andersen, JB1
Knapp, S1
Mann, DA2
Bujanda, L1
Banales, JM1
Perugorria, MJ1
Liu, J3
Li, P2
Wang, L3
Li, M2
Ge, Z1
Noordam, L1
Lieshout, R1
Verstegen, MMA1
Ma, B1
Su, J1
Yang, Q1
Zhang, R1
Zhou, G1
Carrascosa, LC1
Sprengers, D1
IJzermans, JNM1
Smits, R1
Kwekkeboom, J1
van der Laan, LJW1
Peppelenbosch, MP1
Pan, Q2
Cao, W1
Berthou, F1
De Vito, C1
Colin, DJ1
Bejuy, O1
Blackshear, PJ1
Rubbia-Brandt, L1
Tang, Y1
Cao, J2
Cai, Z1
An, H1
Peng, Y2
Chen, N1
Luo, A1
Tao, H1
Li, K2
Yakubu, OF1
Metibemu, DS1
Adelani, IB1
Adesina, GO1
Edokwe, CB1
Oseha, OE1
Adebayo, AH1
Mahmoud, YI1
Shehata, AMM1
Fares, NH1
Mahmoud, AA2
Ram, AK1
Vairappan, B1
Srinivas, BH1
Afaloniati, H1
Poutahidis, T1
Giakoustidis, A1
Gargavanis, A1
Giakoustidis, D1
Angelopoulou, K1
Alazzouni, AS1
Omran, MM1
Essawy, EA1
Abdalla, MS1
Abdelfattah, MS1
Sharma, R1
Ali, T1
Negi, I1
Das, A1
Duseja, A1
Kaur, J1
Lin, H4
Huang, YS1
Fustin, JM1
Doi, M1
Lai, HH1
Lin, SH1
Lee, YL1
King, PC1
Hou, HS1
Chen, HW1
Young, PY1
Chao, HW1
Nozaki, Y1
Hikita, H1
Tanaka, S1
Fukumoto, K1
Urabe, M1
Sato, K2
Myojin, Y1
Doi, A1
Sakane, S1
Saito, Y1
Kodama, T1
Sakamori, R1
Tatsumi, T1
Takehara, T1
Helms, TH1
Mullins, RD1
Thomas-Ahner, JM1
Kulp, SK1
Campbell, MJ1
Lucas, F1
Schmidt, N1
LeMoine, DM1
Getaneh, S1
Xie, Z1
Phelps, MA1
Clinton, SK1
Coss, CC1
Hassan, SA1
Ali, AAH1
Yassine, M1
Sohn, D1
Pfeffer, M1
Jänicke, RU1
Korf, HW1
von Gall, C1
Hooshmand, S1
Mahdinezhad, MR1
Taraz Jamshidi, S1
Soukhtanloo, M1
Mirzavi, F1
Iranshahi, M1
Hasanpour, M1
Ghorbani, A1
Yamamoto, K1
Honda, T2
Yokoyama, S2
Ma, L1
Kato, A1
Ito, T2
Ishizu, Y1
Kuzuya, T1
Nakamura, M1
Kawashima, H1
Ishigami, M1
Tsuji, NM1
Fujishiro, M1
Song, JS1
Chang, CC1
Wu, CH1
Dinh, TK1
Jan, JJ1
Huang, KW1
Chou, MC1
Shiue, TY1
Yeh, KC1
Ke, YY1
Yeh, TK1
Ta, YN1
Lee, CJ1
Huang, JK1
Sung, YC1
Shia, KS1
Castro-Gil, MP2
Sánchez-Rodríguez, R1
López-Torres, CD1
Quintanar-Jurado, V1
Gabiño-López, NB1
Del-Pozo-Jauner, L1
Kabel, AM1
Arab, HH1
Abd Elmaaboud, MA1
Julian, L1
Naylor, G1
Wickman, GR1
Rath, N1
Castino, G1
Stevenson, D1
Bryson, S1
Munro, J1
McGarry, L1
Mullin, M1
Rice, A1
Del Río Hernández, A1
Olson, MF1
Luo, Y2
Gao, Y2
Jiang, J4
Tang, W1
Yang, S1
Sun, L2
Cai, J3
Guo, X2
Takahashi, S3
Krausz, KW1
Qu, A1
Xie, C1
Gonzalez, FJ2
Mansour, W1
Kamel, M2
Elzayat, E1
Atta, S1
Mahmood, D1
Abd El Fattah El Sayed, H1
Hussein, T1
Xiao, H1
Liu, B2
Cui, D1
Liu, F2
Chen, D2
Ouyang, G1
Ali, G1
Omar, H1
Hersi, F1
Abo-Youssef, A1
Ahmed, O1
Mohamed, W1
Pocasap, P1
Weerapreeyakul, N1
Wongpoomchai, R1
Anwar, HM1
Moghazy, AM1
Osman, AAE1
Abdel Rahman, AAS1
Abdel-Aziz, N1
El-Sonbaty, SM2
Hegazy, MGA1
Saad, AS1
Mourad, AAE1
Gobba, NA1
Shata, A1
Hafez, AM1
Elsergany, RN1
Elagamy, HI1
Amin, NA1
Girgis, S1
Elewa, YHA1
Mahmoud, MH1
Batiha, GE1
El-Rous, MA1
Kamal, I1
Kaddah, MMY1
Khodir, AE2
Giovannini, C1
Baglioni, M2
Baron Toaldo, M1
Cescon, M1
Bolondi, L2
Gramantieri, L1
Sadek, KM1
Abouzed, TK1
Abouelkhair, R1
Nasr, S1
Bakiri, L2
Hamacher, R1
Graña, O2
Guío-Carrión, A1
Campos-Olivas, R1
Martinez, L1
Dienes, HP1
Thomsen, MK1
Hasenfuss, SC1
Wagner, EF2
Carloni, V2
Lulli, M1
Madiai, S1
Hall, A1
Luong, TV1
Rombouts, K1
El Miniawy, HM1
Ahmed, KA1
Mansour, SA1
Khattab, MM1
Pok, S3
Vohra, H1
Wehbe, C1
Barn, VA2
Arfianti, E1
Dan, YY3
Farrell, GC3
Teoh, NC4
Kiefer, RM1
Pulido, S1
Pickup, S1
Furth, EE1
Soulen, MC1
Molina-Aguilar, C1
Guerrero-Carrillo, MJ1
Espinosa-Aguirre, JJ1
Olguin-Reyes, S1
Castro-Belio, T1
Vázquez-Martínez, O1
Rivera-Zavala, JB1
Díaz-Muñoz, M1
Huang, Q2
Pu, M1
Zhao, G1
Dai, B1
Bian, Z1
Tang, H2
Qu, X1
Shen, L1
Tao, K1
Yan, G1
Sun, C2
Zheng, X1
Wei, H2
Tian, Z1
Subhapradha, N1
Shanmugam, V1
Shanmugam, A1
Verma, A3
Singh, D2
Anwar, F5
Bhatt, PC4
Al-Abbasi, F1
Kumar, V4
Aglan, HA1
Ahmed, HH7
El-Toumy, SA3
Mahmoud, NS2
Cheng, L1
Han, H1
Cui, K1
Zhang, J3
Yan, J3
Prochownik, E1
Sakurai, Y1
Kubota, N1
Takamoto, I1
Obata, A1
Iwamoto, M1
Hayashi, T1
Aihara, M1
Kubota, T1
Nishihara, H1
Kadowaki, T1
Fu, Y1
Silverstein, S1
McCutcheon, JN1
Dyba, M1
Nath, RG1
Aggarwal, M1
Coia, H1
Bai, A1
Kallakury, B1
Zhang, YW1
Giaccone, G1
He, AR1
Chung, FL1
Medhat, A1
Mansour, S1
El-Sonbaty, S1
Kandil, E1
Mahmoud, M2
Casagrande, V2
Mauriello, A2
Bischetti, S1
Mavilio, M2
Federici, M3
Menghini, R2
Rahman, M2
Al-Abbasi, FA4
Horng, CT1
Huang, CW1
Yang, MY1
Chen, TH1
Chang, YC1
Wang, CJ1
Elsonbaty, SM1
Zahran, WE1
Khan, F1
Khan, TJ1
Kalamegam, G1
Pushparaj, PN1
Chaudhary, A1
Abuzenadah, A1
Kumosani, T1
Barbour, E1
Al-Qahtani, M1
Cheng, J1
Zhong, Y1
Huang, L1
Kang, Y1
Chen, B2
Chen, G2
Wang, F3
Tian, Y1
Feng, GS2
Lu, Z2
Fathy, AH1
Bashandy, MA1
Bashandy, SAE1
Elsadek, B2
P Katare, D1
Malik, S1
J Mani, R1
Ranjpour, M3
Jain, SK3
Krishnan, GS1
Rajagopal, V1
Antony Joseph, SR1
Sebastian, D1
Savarimuthu, I1
Selvaraj, KRN1
Thobias, AF1
Kaithwas, G1
Choudhry, H1
Ren, YF1
Dong, J1
Ke, MY1
Ma, F1
Monga, SPS1
Wu, R1
Lv, Y2
Zhang, XF2
Bay, ML1
Gehl, J1
Pedersen, BK1
Hojman, P1
Zeng, Y1
Lian, S1
Li, D3
Lin, X3
Yang, T2
Amidi, S1
Hashemi, Z1
Motallebi, A1
Nazemi, M1
Farrokhpayam, H1
Seydi, E2
Pourahmad, J2
Inoue-Yamauchi, A1
Itagaki, H1
Oda, H1
He, Q1
Lindquist, DM1
Dillman, JR1
Timchenko, NA1
Redington, AN1
Ezhuthupurakkal, PB1
Ariraman, S1
Arumugam, S1
Subramaniyan, N1
Muthuvel, SK1
Kumpati, P1
Rajamani, B1
Chinnasamy, T1
Funaki, M1
Kitabayashi, J1
Shimakami, T1
Nagata, N1
Sakai, Y1
Takegoshi, K1
Okada, H1
Shirasaki, T1
Oyama, T3
Yamashita, T1
Ota, T1
Takuwa, Y1
Honda, M1
Kaneko, S3
Zheng, P1
Yi, M1
Chen, P1
Peng, Q1
Ban, Y1
Zeng, Z1
Xiong, W1
Xiang, B1
Wu, Q2
Chen, JX1
Cai, LL1
Wang, XZ1
Guo, WH1
Zheng, JF2
Gao, J3
Wang, GJ2
Zhang, HX2
Gao, N2
Wang, CE1
Chang, Z2
Fang, Y1
Zhang, YF2
Zhou, J2
Jin, H3
Qiao, HL2
Perumal, S2
Langeshwaran, K1
Selvaraj, J1
Ponnulakshmi, R1
Shyamaladevi, B1
Balasubramanian, MP4
Fathy, M1
Nikaido, T1
Zaazaa, AM1
Lokman, MS1
Shalby, AB3
Shan, B1
Dai, J1
Xia, Z1
Chen, T1
Lv, S1
Feng, Y1
Fang, J1
Xie, D1
Rui, L1
Preziosi, M2
Poddar, M1
Singh, S2
Monga, SP3
Meng, L1
Shang, H1
Dou, Q1
He, X1
Song, Y2
Khan, R1
Sachan, R1
Kazmi, I2
Rawat, A1
Sabih, A1
Singh, R2
Afzal, M2
Ahmad, A3
Al-Orab, AS1
Noguchi, H1
Ishii, N2
Homma, T1
Hamada, T1
Hiraki, T1
Matsuo, K1
Ishibashi, H1
Fukushige, T1
Kanekura, T1
Fujii, J1
Uramoto, H1
Tanimoto, A1
Saad El-Din, S1
Fouad, H1
Rashed, LA1
Mahfouz, S1
Hussein, RE1
Abu-Remaileh, M1
Khalaileh, A1
Pikarsky, E2
Aqeilan, RI1
Katare, DP1
Wajid, S2
Fan, W1
Tu, J1
Li, TWH1
Yang, J2
Xiong, T1
Steggerda, J1
Liu, Z2
Noureddin, M1
Maldonado, SS1
Annamalai, A1
Seki, E3
Mato, JM1
Lu, SC1
Pittala, S1
Krelin, Y1
Shoshan-Barmatz, V1
Shang, N1
Bank, T1
Ding, X1
Breslin, P1
Shi, B1
Qiu, W2
Orrù, C1
Szydlowska, M1
Taguchi, K1
Zavattari, P1
Perra, A2
Yamamoto, M2
Columbano, A2
Sánchez, DI2
González-Fernández, B2
Crespo, I2
San-Miguel, B2
Álvarez, M1
González-Gallego, J5
Tuñón, MJ2
Salazar-Anguiano, J1
Chávez-López, MG1
Zúñiga-García, V2
Camacho, J2
Elías-Viñas, D1
Wasonga, C1
Omwandho, C1
Arboatti, AS1
Lambertucci, F1
Sedlmeier, MG1
Pisani, G1
Monti, J1
Álvarez, ML1
Francés, DEA1
Ronco, MT1
Carnovale, CE1
Mahmoud, AAA1
Goda, R1
Helal, NS1
Abdelghany, RH1
Pan, LC1
Xiao, HY1
Yin, WJ1
Lin, Z1
Wen, Q1
Henderson, JM1
Polak, N1
Roediger, B1
Weninger, W1
Kench, JG1
McCaughan, GW1
Zhang, HE1
Gorrell, MD1
Li, W2
Siraj, S1
Fan, Y1
Huang, X3
Du, L1
Ye, Y1
Zhuang, J1
Wang, G3
Ni, J1
Xia, W1
Robertson, CL3
Mendoza, RG1
Jariwala, N2
Dozmorov, M1
Mukhopadhyay, ND2
Subler, MA3
Windle, JJ3
Lai, Z1
Fisher, PB3
Ghosh, S2
Sarkar, D3
Romualdo, GR2
Prata, GB1
da Silva, TC1
Fernandes, AAH1
Moreno, FS2
Cogliati, B2
Barbisan, LF3
Lee, C1
Kim, M1
Lee, JH4
Oh, J1
Shin, HH1
Lee, SM1
Scherer, PE1
Kwon, HM1
Choi, JH1
Park, J1
Ferrara-Romeo, I1
Martínez, P1
Blasco, MA1
Chen, XZ1
Zhang, WK1
Tang, HB1
Li, XJ1
Tian, GH1
Shang, HC1
Li, YS1
Ghoshal, S1
Arora, G1
Masia, R1
Baumert, TF1
Wu, C5
Chen, W1
Fang, M1
Boye, A3
Tao, X1
Hou, S1
Li, CC1
Fu, M1
Hu, KQ2
Aizawa, K1
Hiroyuki, S1
Wu, G1
Wang, XD3
Xiong, R1
Xiong, D1
Yin, T1
Jiang, G1
Yin, Z1
Galal, AF1
Abd-Rabou, AA1
Mehaya, FM1
Parashar, P1
Rana, P1
Dwivedi, M1
Saraf, SA1
Tripathy, A1
Thakurela, S1
Sahu, MK1
Uthanasingh, K1
Behera, M1
Ajay, AK1
Kumari, R1
Cui, H1
Han, F1
Zhang, L3
Kumar, M1
Jeong, WJ1
Park, JC1
Kim, WS1
Ro, EJ1
Jeon, SH1
Lee, SK1
Park, YN1
Min, DS1
Choi, KY1
Iwako, H1
Tashiro, H1
Okimoto, S1
Yamaguchi, M1
Abe, T1
Kuroda, S1
Kobayashi, T1
Ohdan, H1
Chen, M2
Lu, S1
Zheng, H1
Xu, M2
Song, J1
Weng, Q1
Fan, X1
Cheng, X1
Gao, H1
Ji, J1
Wan, LF1
Shen, JJ1
Wang, YH1
Fang, NY1
Yuan, X1
Xue, BY1
Cho, W1
Jin, X2
Pang, J1
Mivechi, NF1
Moskophidis, D1
Yang, G1
Shang, X1
Cui, G1
Zhao, H1
Wang, N1
RethnaPriya, E1
Ravichandran, S2
Gobinath, T1
Tilvi, S1
Devi, SP1
El-Magd, MA1
Mohamed, Y1
El-Shetry, ES1
Elsayed, SA1
Abo Gazia, M1
Abdel-Aleem, GA1
Shafik, NM1
Abdo, WS2
El-Desouki, NI1
Basyony, MA1
Shetty, S1
Kumar, R1
Fahmi, A1
Hassanen, N1
Abdur-Rahman, M1
Shams-Eldin, E1
Udden, SN1
Kwak, YT1
Godfrey, V1
Khan, MAW1
Loof, N1
Peng, L2
Zaki, H1
Matboli, M1
ElGwad, AA1
Hasanin, AH1
El-Tawdi, A1
Habib, EK1
Elmansy, RA1
Ibrahim, D1
Shehata, H1
Tash, F1
Das, BK1
Choukimath, SM1
Gadad, PC1
Gani, SA1
Muhammad, SA1
Kura, AU1
Barahuie, F1
Hussein, MZ1
Fakurazi, S1
Lee, HW1
Lee, GS1
An, BS1
Jeung, EB1
Park, BK1
Fuentes-Hernández, S1
Montes-Aparicio, AV1
Idelfonso-García, OG1
Rosas-Madrigal, S1
Aparicio-Bautista, DI1
Pérez-Hernández, JL1
Reyes-Gordillo, K1
Lakshman, MR1
Baltiérrez-Hoyos, R1
López-González, ML1
Sierra-Santoyo, A1
D'Souza, JC1
Sultan, LR1
Schultz, SM1
Brice, AK1
Wood, AKW1
Sehgal, CM1
Nakamura, N1
Hatano, E3
Iguchi, K1
Sato, M1
Kawaguchi, H1
Ohtsu, I1
Sakurai, T2
Aizawa, N1
Iijima, H1
Nishiguchi, S1
Tomono, T1
Okuda, Y1
Wada, S1
Seo, S1
Taura, K2
Uemoto, S2
Ikegawa, M1
Deng, H1
Xiang, J1
Pan, X1
Long, Q1
Chang, L2
Xu, P2
Huang, A1
Abdelmoneem, MA1
Elnaggar, MA1
Hammady, RS1
Kamel, SM1
Helmy, MW1
Abdulkader, MA1
Zaky, A1
Fang, JY1
Elkhodairy, KA1
Elzoghby, AO1
Anemona, L1
Iuliani, G1
De Angelis, L1
D'Onofrio, M1
Arisi, I1
Moeini, A1
Torrecilla, S1
Tovar, V1
Montironi, C1
Andreu-Oller, C1
Peix, J1
Higuera, M1
Pfister, D1
Ramadori, P1
Pinyol, R1
Solé, M1
Heikenwälder, M1
Friedman, SL3
Sia, D1
Llovet, JM2
Soliman, WE1
Salama, MM1
Elsaeed, B1
Nader, K1
Abdelnasser, A1
Megahed, N1
Basuony, M1
Shawky, A1
Medhat, R1
Eldin, AS1
Sun, K1
Guo, XL1
Zhao, QD1
Jing, YY1
Kou, XR1
Xie, XQ1
Cai, N1
Zhao, X3
Zhang, SS2
Song, JR1
Deng, WJ1
Li, R2
Wu, MC3
Wei, LX2
Narooka, AR1
Dai, ZJ1
Wu, WY2
Kang, HF1
Ma, XB2
Zhang, SQ2
Min, WL2
Kang, WF1
Lu, WF1
Lin, S1
Wang, XJ1
Casper, M1
Weber, SN2
Kloor, M1
Müllenbach, R1
Grobholz, R1
Lammert, F3
Zimmer, V2
Wen, V1
Shackel, N1
Alsop, A1
Pyakurel, P2
Fahrer, A1
Lu, W1
Lin, T1
You, P1
Ye, M1
Jiang, X1
Wang, C4
Lee, MH1
Yeung, SC1
Johnson, RL1
Wei, C1
Tsai, RY1
Frazier, ML1
McKeehan, WL1
Chung, YL1
Wu, ML1
Zhao, J2
Chu, ES3
Mok, MT1
Go, MY1
Man, K1
Heuchel, R1
Lan, HY1
Sung, JJ3
Yu, J6
Shen, J1
Shan, J1
Yang, Z2
Xia, F1
Bie, P1
Cui, Y1
Bian, XW1
Qian, C3
Dungdung, SR1
Choudhury, ST1
Chakraborty, S2
Das, N2
Kapanadze, T1
Gamrekelashvili, J1
Ma, C1
Chan, C1
Zhao, F1
Hewitt, S1
Zender, L2
Kapoor, V1
Felsher, DW1
Manns, MP1
Korangy, F1
Greten, TF1
Bertran, E1
Crosas-Molist, E1
Sancho, P1
Caja, L1
Lopez-Luque, J1
Navarro, E1
Egea, G1
Lastra, R1
Serrano, T1
Ramos, E1
Fabregat, I1
Yoshimura, K1
Mandal, MK1
Hara, M2
Chen, LC1
Tanabe, K1
Hiraoka, K1
Takeda, S1
Duong, FH1
Dill, MT2
Matter, MS1
Makowska, Z1
Calabrese, D1
Dietsche, T1
Ketterer, S1
Terracciano, L2
Heim, MH2
Haider, C1
Grubinger, M1
Řezníčková, E1
Weiss, TS1
Rotheneder, H1
Miklos, W1
Berger, W1
Jorda, R1
Zatloukal, M1
Gucky, T1
Strnad, M1
Kryštof, V1
Mikulits, W1
Sengupta, D1
Chowdhury, KD1
Sarkar, A1
Paul, S1
Sadhukhan, GC1
Morita, R1
Yafune, A1
Shiraki, A1
Itahashi, M1
Akane, H1
Nakane, F1
Suzuki, K1
Shibutani, M4
Mitsumori, K7
Saleem, S1
Shaharyar, MA1
Khusroo, MJ1
Ahmad, P1
Rahman, RU1
Ahmad, K1
Alam, MJ1
Al-Harbi, NO1
Iqbal, M1
Imam, F1
Luo, M1
Huang, SX1
Kuang, ZP1
Luo, XL1
Li, YD1
Wu, JN1
Xie, YA1
Ip, BC2
Smith, DE2
Obin, MS1
Ausman, LM2
Liu, XB1
Yu, JJ1
Hua, F3
Hu, ZW3
Xu, B1
Li, SH1
Zheng, R1
Gao, SB1
Ding, LH1
Yin, ZY2
Feng, ZJ1
Wang, XM2
Jin, GH1
Hsu, SH1
Wang, B1
Kutay, H1
Bid, H1
Shreve, J1
Costinean, S1
Bratasz, A1
Houghton, P1
Ghoshal, K1
Cha, JH1
Bae, SH2
Kim, HL1
Park, NR1
Choi, ES1
Jung, ES1
Choi, JY2
Yoon, SK2
Chappell, G1
Kutanzi, K1
Uehara, T4
Tryndyak, V2
Hong, HH1
Hoenerhoff, M1
Beland, FA2
Rusyn, I2
Pogribny, IP3
Rui, W2
Xie, L1
He, S3
Nagy, LI1
Molnár, E1
Kanizsai, I1
Madácsi, R1
Ózsvári, B1
Fehér, LZ1
Fábián, G1
Marton, A1
Vizler, C1
Ayaydin, F1
Kitajka, K1
Hackler, L1
Mátés, L1
Deák, F1
Kiss, I1
Puskás, LG1
Selima, E1
Hamed, O1
Kazem, A1
Guariento, AH1
Furtado, KS1
de Conti, A1
Campos, A1
Purgatto, E1
Carrilho, J1
Shinohara, EM1
Han, T2
Fuscoe, JC1
Ross, SA1
Joseph, JP1
Raval, SK1
Sadariya, KA1
Jhala, M1
Hu, X1
Lu, X1
Zeng, T1
Wu, W1
Yan, X1
Cai, H1
Zhang, Z2
Shao, Q1
Qin, W1
Scaiewicz, V1
Nahmias, A1
Chung, RT1
Mueller, T1
Tirosh, B1
Shibolet, O1
Horváth, Z1
Kovalszky, I1
Fullár, A1
Kiss, K1
Schaff, Z1
Iozzo, RV1
Baghy, K1
Marongiu, F1
Serra, MP1
Sini, M1
Angius, F1
Laconi, E2
Lau, CC1
Sun, T1
Ching, AK2
He, M1
Li, JW1
Wong, AM1
Co, NN1
Chan, AW1
Li, PS1
Lung, RW1
Tong, JH1
Lai, PB2
Chan, HL2
To, KF2
Chan, TF1
Wong, N1
Mansour, MA1
Aljoufi, MA1
Al-Hosaini, K1
Al-Rikabi, AC1
Nagi, MN1
McGinn, CM1
DePeralta, DK1
Kuroda, T1
Schmitt, AD1
Gupta, S4
Crenshaw, A1
Onofrio, R1
Taylor, B1
Winckler, W1
Bardeesy, N1
Caravan, P1
Golub, TR1
Long, L1
Cheng, M1
Kessler, SM1
Simon, Y1
Gemperlein, K1
Gianmoena, K1
Cadenas, C1
Pokorny, J1
Barghash, A1
Helms, V1
van Rooijen, N1
Bohle, RM1
Hengstler, JG1
Mueller, R1
Haybaeck, J1
Kiemer, AK1
Zhao, JA1
Geng, CZ1
Liu, YP1
Yang, HC1
Wang, SJ1
Santos, NP1
Oliveira, PA2
Arantes-Rodrigues, R1
Faustino-Rocha, AI1
Colaço, A2
Lopes, C2
Gil da Costa, RM1
Tekin, N1
Ustuner, MC1
Akyuz, F1
Ozbayer, CS1
Aydın, O1
Benkli, K1
Burukoglu, D1
Degirmenci, I1
Ozden, H1
Umemura, A2
Park, EJ2
Taniguchi, K2
Shalapour, S1
Valasek, MA2
Aghajan, M1
Nakagawa, H3
Hall, MN1
Karin, M5
Ma, WL2
Jeng, LB1
Lai, HC1
Liao, PY1
Chang, C2
Ilamathi, M1
Senthilkumar, S1
Prabu, PC1
Panchapakesan, S1
Sivaramakrishnan, V3
Song, S1
Yuan, P1
Wu, H3
Lu, J2
Wei, W5
Khalil, WK1
Hamza, AH1
Lanaya, H1
Natarajan, A1
Komposch, K1
Amberg, N1
Wculek, SK1
Hammer, M1
Zenz, R1
Peck-Radosavljevic, M2
Sieghart, W2
Trauner, M1
Sibilia, M1
Omura, K2
Morikawa, Y2
Hayashi, H2
Minami, K2
Kanki, M2
Yamada, H2
Ono, A2
Urushidani, T2
Ansil, PN1
Nitha, A1
Prabha, SP1
Latha, MS1
Su, B1
Luo, T1
Zhu, J1
Fu, J1
Ren, Y1
Yu, L1
Wu, M1
Feng, G1
Liang, Q1
Teoh, N3
Farrell, G2
Park, JH3
Kang, JH3
Lee, YJ3
Kim, KI3
Lee, TS3
Kim, KM2
Park, JA1
Ko, YO1
Yu, DY1
Nahm, SS3
Jeon, TJ1
Park, YS2
Lim, SM3
Duan, XY1
Yan, SY1
Ding, WJ1
Fan, JG1
Qiao, L1
Lu, M1
Wu, J3
He, F2
Wang, XL3
Chen, ZN1
Bian, H1
Tummala, KS1
Gomes, AL1
Yilmaz, M1
Ruppen, I1
Ximénez-Embún, P1
Sheshappanavar, V1
Rodriguez-Justo, M1
Pisano, DG1
Djouder, N1
Delgado, E1
Okabe, H1
Russell, JO1
Alvarado, TF1
Oertel, M1
Nejak-Bowen, KN1
Rachidi, S1
Sun, S1
Wu, BX1
Jones, E2
Drake, RR2
Ogretmen, B1
Cowart, LA1
Clarke, CJ1
Hannun, YA1
Chiosis, G1
Abdel-Latif, M1
Sakran, T1
El-Shahawi, G1
El-Fayoumi, H1
El-Mallah, AM1
Da Costa, RM1
Paula-Santos, N1
Rocha, AF1
Quetier, I1
Brezillon, N1
Revaud, J1
Ahodantin, J1
DaSilva, L1
Soussan, P1
Kremsdorf, D1
Kan, H1
Mukhopadhyay, B1
Schuebel, K1
Mukhopadhyay, P1
Cinar, R1
Godlewski, G1
Xiong, K1
Mackie, K1
Lizak, M1
Yuan, Q2
Goldman, D1
Kunos, G1
Li, SQ1
Wang, DM1
Zhu, S1
Ma, Z1
Li, RF1
Xu, ZS1
Han, HM1
Caviglia, JM1
Schwabe, RF2
Kadasa, NM1
Abdallah, H1
Afifi, M1
Gowayed, S1
Gao, JZ1
Wang, YL1
Hatting, M1
Spannbauer, M1
Peng, J1
Al Masaoudi, M1
Sellge, G1
Nevzorova, YA1
Gassler, N3
Liedtke, C2
Cubero, FJ1
Trautwein, C3
Ding, Y1
de Guadalupe Chávez-López, M1
Díaz-Chávez, J1
Herrera, LA1
Caro-Sánchez, CH1
Acuña-Macías, I1
Gariglio, P1
Hernández-Gallegos, E1
Chiliquinga, AJ1
Shen, Y1
Jing, Y1
He, H1
Yuan, J1
Zhao, Q1
Wilson, CL1
Jurk, D1
Fullard, N1
Banks, P1
Page, A1
Luli, S1
Elsharkawy, AM1
Gieling, RG1
Chakraborty, JB1
Fox, C1
Richardson, C1
Callaghan, K1
Blair, GE1
Fox, N1
Lagnado, A1
Passos, JF1
Moore, AJ1
Smith, GR1
Tiniakos, DG1
Mann, J1
Rasoul, LM1
Liu, M1
Ye, X1
Ren, G1
Chen, CC2
Kim, KH1
Lau, LF1
Shahat, AA1
Alsaid, MS1
Kotob, SE1
Amin, A2
Bashir, A1
Zaki, N1
McCarthy, D1
Ahmed, S1
Lotfy, M1
Farhan, M1
Rizvi, A1
Hadi, SM1
Guo, Y1
Tan, S1
Ke, B1
Tao, J1
Fujisawa, K1
Terai, S2
Matsumoto, T1
Takami, T2
Yamamoto, N1
Nishina, H1
Furutani-Seiki, M1
Sakaida, I2
Hussein, UK1
Mahmoud, HM1
Farrag, AG1
Bishayee, A4
Shousha, WG2
Ismaiel, NN1
Peng, B1
Han, R1
Luo, G1
Cathopoulis, T1
Lu, K1
Yang, L1
Liu, GY1
Cai, JC1
Shi, SL1
Song, SS2
Yuan, PF2
Li, PP2
Wu, HX1
Ni, WJ1
Lu, JT2
Qiu, B2
Nayeb-Hashemi, H1
Desai, A1
Demchev, V1
Bronson, RT1
Hornick, JL1
Cohen, DE1
Ukomadu, C1
Han, C1
Wu, T1
Patial, V1
S, M1
Sharma, S1
Pratap, K1
Padwad, YS1
Rajasekaran, D1
Siddiq, A2
Willoughby, JL1
Biagi, JM1
Christadore, LM1
Yunes, SA1
Gredler, R2
Akiel, MA1
Shen, XN2
Schaus, SE1
Hansen, U1
Park, SI1
Ham, HJ1
Jung, YJ1
Park, MS1
Lee, J5
Maeng, LS1
Chung, YA1
Jang, KS1
Konzack, A1
Jakupovic, M1
Kubaichuk, K1
Görlach, A1
Dombrowski, F1
Miinalainen, I1
Sormunen, R1
Kietzmann, T1
Xiao, J1
Zhou, X1
Hu, C2
Xu, X1
Xue, S1
Nie, L1
Ji, F1
Hui, L1
Tao, W1
Wei, B1
Furuya, S1
Hirayama, K1
Zeng, J1
Zhou, L1
Niu, J1
Yin, P1
Jo, W1
Yu, ES1
Chang, M1
Park, HK1
Choi, HJ1
Ryu, JE1
Jang, S1
Lee, HJ1
Jang, JJ1
Son, WC1
Fang, JZ1
Liu, XY1
Hu, TT1
Fan, ZS1
Han, ZG1
Wong, HJ1
Blackburn, AC1
Board, P1
Moreira, AJ1
Ordoñez, R1
Cerski, CT1
Picada, JN1
García-Palomo, A1
Marroni, NP1
Mauriz, JL3
Herzig, MC1
Zavadil, JA1
Street, K1
Hildreth, K1
Drinkwater, NR2
Reddick, T1
Herbert, DC1
Hanes, MA1
McMahan, CA1
Reddick, RL1
Walter, CA1
Qin, XY1
Tatsukawa, H2
Hitomi, K1
Ishibashi, N2
Moriwaki, H2
Kojima, S2
Tork, OM1
Khaleel, EF1
Abdelmaqsoud, OM1
Vandewynckel, YP1
Laukens, D1
Devisscher, L1
Bogaerts, E1
Paridaens, A1
Van den Bussche, A1
Raevens, S1
Verhelst, X1
Van Steenkiste, C1
Jonckx, B1
Libbrecht, L3
Geerts, A4
Carmeliet, P3
Van Vlierberghe, H4
Chen, YJ1
Wallig, MA1
Jeffery, EH1
Sugihara, E1
Gi, M1
Saya, H1
Wanibuchi, H4
Rasekh, HR1
Salimi, A1
Mohsenifar, Z1
Mercer, KE1
Pulliam, C1
Hennings, L1
Lai, K2
Cleves, M1
Ronis, M1
Ambade, A1
Satishchandran, A1
Gyongyosi, B1
Lowe, P1
Szabo, G1
Lam, KH1
Lee, KK2
Kok, SH1
Wong, RS1
Lau, FY1
Cheng, GY1
Wong, WY1
Tong, SW1
Chan, KW1
Chan, RY1
Tang, JC1
Cheng, CH1
Hau, DK1
Bian, ZX1
Gambari, R1
Chui, CH1
Beggs, K1
Borude, P2
Edwards, G2
Bhushan, B1
Walesky, C2
Roy, N1
Manley, MW1
Gunewardena, S2
O'Neil, M2
Li, H2
Chang, W1
He, W1
Bhattacharya, S1
Reddy, D1
Ingle, A1
Khade, B1
Yu, C1
Yan, S1
Khambu, B1
Dong, Z1
Luo, J1
Michalopoulos, GK1
Wu, S1
Yin, XM1
Dhar, D1
Yamachika, S1
Font-Burgada, J1
Zhong, Z1
Subramaniam, S1
Raghunandan, S1
Duran, A1
Linares, JF1
Reina-Campos, M1
Umemura, S1
Yamaguchi, K1
Koike, K2
Itoh, Y1
Diaz-Meco, MT1
Moscat, J1
Kishida, N1
Matsuda, S1
Itano, O1
Shinoda, M1
Kitago, M1
Yagi, H1
Abe, Y1
Hibi, T1
Masugi, Y1
Aiura, K1
Sakamoto, M1
Kitagawa, Y1
Mitchell, J1
Tinkey, PT1
Avritscher, R1
Van Pelt, C1
Eskandari, G1
Konnath George, S1
Xiao, L1
Cressman, E1
Morris, JS1
Rashid, A1
Kaseb, AO1
Amin, HM1
Uthamanthil, R1
Bohner, A1
Dapito, DH1
Zhang, W1
Chen, HJ1
Wang, ZJ1
Huang, W3
Zhang, LJ1
Shalini, S1
Nikolic, A1
Wilson, CH1
Puccini, J1
Sladojevic, N1
Finnie, J1
Dorstyn, L1
Kumar, S1
Wang, PW1
Hung, YC2
Li, WT1
Yeh, CT2
Pan, TL1
Goto, RL1
Henrique Fernandes, AA1
Chi, HC1
Chen, SL1
Tsai, CY1
Chuang, WY1
Huang, YH1
Tsai, MM1
Wu, SM1
Sun, CP1
Lin, KH1
de Urbina, JO1
Sayed, AH1
Ramadan, AR1
Sun, WY1
Hu, SS1
Wu, JJ1
Ma, Y1
Wang, QT1
Chen, JY2
Sadeeshkumar, V1
Duraikannu, A1
Fredrick, WS1
Sivaperumal, R1
Kodisundaram, P1
Mansour, A1
Saleem, T1
Warnecke, A1
Kratz, F3
El-Kharrag, R1
Hisaindee, S1
Greish, Y1
Karam, SM1
Li, JP1
Feng, GL1
Li, DQ1
Wang, HB1
Zhao, DL1
Wan, Y1
Jiang, HJ1
Jeric, I1
Maurer, G1
Cavallo, AL1
Raguz, J1
Desideri, E1
Tarkowski, B1
Parrini, M1
Fischer, I1
Zatloukal, K1
Baccarini, M1
Zhen, C1
Gu, J1
Wen, Y1
Xia, Q1
Kong, X1
Tien, AJ1
Chien, CY1
Chen, YH1
Lin, LC1
Chien, CT1
Zheng, XB1
Chen, XB1
Xu, LL1
Feng, L1
Yi, PS1
Tang, JW1
Xu, MQ1
Sheppard, S1
Guedes, J1
Mroz, A1
Zavitsanou, AM1
Kudo, H1
Rothery, SM1
Angelopoulos, P1
Goldin, R1
Guerra, N1
Lai, KKY1
Kweon, SM1
Chi, F1
Hwang, E1
Kabe, Y1
Higashiyama, R1
Qin, L1
Yan, R1
Wu, RP1
Fujii, N1
French, S1
Wang, JY1
Murali, R1
Mishra, L1
Lee, JS3
Ntambi, JM1
Tsukamoto, H1
Miard, S1
Girard, MJ1
Joubert, P1
Carter, S1
Gonzales, A1
Morpurgo, B1
Boivin, L1
Golovko, A1
Picard, F1
Nelson, ME1
Lahiri, S1
Chow, JD1
Byrne, FL1
Hargett, SR1
Breen, DS1
Olzomer, EM1
Wu, LE1
Cooney, GJ1
Turner, N1
James, DE1
Slack-Davis, JK1
Lackner, C2
Caldwell, SH1
Hoehn, KL1
Swisshelm, K2
Lehman, S1
Wright, JH1
Haque, J1
Gu, Y2
Fausto, N2
Jagan, S2
Ramakrishnan, G2
Anandakumar, P2
Kamaraj, S3
Devaki, T3
Ghosh, AS1
Bhattacharyya, D1
Chandra, M1
Bhattacharyya, TK1
Dhanasekaran, M1
Baskar, AA1
Ignacimuthu, S1
Agastian, P1
Duraipandiyan, V1
Baginskaya, NV1
Il'nitskaya, SI1
Nikitenko, EV1
Kaledin, VI1
Wei, BR1
Edwards, JB1
Hoover, SB1
Tillman, HS1
Reed, LT1
Sills, RC1
Simpson, RM1
Yau, TO1
Chan, CF1
Gee-San Lam, S1
Cheung, OF1
Ching, YP1
Jin, DY1
Sham, MH1
Ng, IO1
Matsumoto, S1
Jin, M3
Dewa, Y2
Nishimura, J2
Moto, M2
Murata, Y1
Guo, DM1
Qiu, TS1
Bian, J1
Wang, CZ1
Zhang, ZM1
Yang, ZX1
Shan, JL1
Jin, F1
Xu, W1
Luo, XZ1
Wang, D2
Li, ZP1
Gang, Z1
Qi, Q1
Jing, C1
Inoue, M1
Wei, M2
Fukushima, S2
Schneider-Merck, T1
Borbath, I3
Charette, N1
De Saeger, C1
Abarca, J1
Leclercq, I2
Horsmans, Y3
Stärkel, P1
Seufi, AM1
Ibrahim, SS1
Hafez, EE1
Liu, JG2
Zhao, HJ2
Liu, YJ2
Niranjali Devaraj, S2
Liang, HJ1
Kang, XN1
Guo, K1
Su, JJ1
Ou, C1
Liu, YK1
Reed, CA3
Mayhew, CN3
McClendon, AK2
Knudsen, ES3
Janani, P1
Sivakumari, K1
Geetha, A1
Ravisankar, B1
Parthasarathy, C1
Mitchell, C1
Kawai, M2
Saegusa, Y2
Kemmochi, S2
Harada, T2
Shimamoto, K1
Chui, YL1
Yip, FP1
Rowlands, DK1
James, AE1
Chan, JY1
Erkekoglu, P1
Baydar, T1
Gayathri, R1
Priya, DK1
Gunassekaran, GR1
Sakthisekaran, D5
Yu, GY1
He, G1
Ali, SR1
Holzer, RG1
Osterreicher, CH1
Takahashi, H2
Bitton-Worms, K1
Aronheim, A1
Freimuth, J1
Moro, N1
Günther, RW1
Krombach, GA1
Nagahara, T2
Okano, J2
Fujise, Y3
Abe, R2
Murawaki, Y2
Taha, MM1
Abdul, AB1
Abdullah, R1
Ibrahim, TA1
Abdelwahab, SI1
Mohan, S1
Wu, MH1
Hsu, CL1
Chen, YL1
Ou, JH1
Ryan, CK1
Yeh, S1
Maass, T1
Thieringer, FR1
Mann, A1
Longerich, T1
Schirmacher, P1
Strand, D1
Hansen, T1
Galle, PR1
Teufel, A2
Kanzler, S1
Shen, B1
Cheung, KF1
Wu, CW1
Lam, CN1
Feng, H1
Cheng, AS1
Asechi, H1
Nitta, T2
Tada, M2
Iwaisako, K1
Tamaki, N1
Nagata, H1
Narita, M1
Yanagida, A1
Ikai, I2
Liu, XE1
Dewaele, S1
Vanhooren, V1
Fan, YD1
Van Huysse, J1
Zhuang, H1
Contreras, R1
Libert, C1
Tan, X1
Zeng, G1
Misse, A1
Kim, Y1
Klaunig, JE1
Yu, LX2
Yan, HX2
Liu, Q2
Wu, HP1
Dong, W1
Tang, L2
Lin, Y2
He, YQ2
Zou, SS1
Cao, GW1
Wang, HY2
Subramanian, S1
Das, T1
Sarma, HD1
Banerjee, S1
Samuel, G1
Venkatesh, M1
Leng, T1
Liu, N1
Dai, Y1
Du, R1
Williams, GM2
Brunnemann, KD1
Iatropoulos, MJ1
Smart, DJ1
Enzmann, HG1
Dong, K1
Xue, X1
Feng, P1
Sano, T1
Fukaya, Y1
Watanabe, M1
Okuno, M1
Wang, YC1
Xu, GL1
Jia, WD1
Han, SJ1
Ren, WH1
Liu, WB1
Zhang, CH1
San, J1
Zheng, J1
Luo, X1
Hu, Q1
Calvisi, DF1
Aleksic, K1
Geigl, JB1
Schwarz, M1
Auer, M1
Ulz, P1
Fischer, M1
Trajanoski, Z1
Otte, M1
Speicher, MR1
Nazmy, MH2
Abdel-Bakey, AI1
Bhatia, D3
Thoppil, RJ3
Darvesh, AS3
Nevo, E1
Lansky, EP1
Kowalik, MA1
Saliba, C1
Pibiri, M1
Ledda-Columbano, GM1
Sarotto, I1
Ghiso, E1
Giordano, S1
Jang, JW1
Park, ST1
Kwon, JH1
You, CR1
Jung, CK1
Hirata, Y1
Takeda, K1
Hayakawa, Y1
Sato, T1
Kinoshita, H2
Sakamoto, K1
Nakata, W1
Hikiba, Y1
Omata, M1
Yoshida, H1
Ichijo, H1
Maeda, S2
Cany, J1
Tran, L1
Gauttier, V1
Judor, JP1
Vassaux, G1
Ferry, N2
Conchon, S1
Khan, MS1
Halagowder, D1
Devaraj, SN2
Hannivoort, R2
Lee, UE1
Vetter, D2
Narla, G2
Villanueva, A2
Oren, M1
Bard-Chapeau, EA1
Ding, J1
Zhu, HH1
Princen, F1
Fang, DD1
Bailly-Maitre, B1
Poli, V1
Varki, NM1
Lim, KT4
Dean, JL1
Ertel, A1
Fu, Z1
Rivadeneira, DB1
Bourgo, RJ1
Witkiewicz, A1
Addya, S1
Grimes, HL1
Fortina, P1
Leibowitz, B1
Carr, BI1
Cavallini, A1
D'Alessandro, R1
Refolo, MG1
Cheon, GJ2
El-Shahat, M1
El-Abd, S1
Alkafafy, M1
El-Khatib, G1
Jayakumar, S1
Madankumar, A1
Asokkumar, S1
Raghunandhakumar, S1
Gokula dhas, K1
Divya, MG1
Ghosh, D1
Sarkar, S1
Mandal, AK1
Thakur Choudhury, S1
Xie, XL1
Yamano, S1
Tajiri, M1
Rohr-Udilova, N1
Eferl, R1
Stoiber, D1
Björkhem-Bergman, L1
Eriksson, LC2
Stolze, K1
Hayden, H1
Keppler, B1
Sagmeister, S1
Grasl-Kraupp, B2
Schulte-Hermann, R2
Shilpa, PN2
Venkatabalasubramanian, S1
Wu, ZS1
Zhang, CL1
Meng, XL1
Chen, GG1
Leung, J1
Liang, NC1
Wu, K1
Chan, UP1
Leung, BC1
Du, J1
Deng, YF1
Gong, X1
Chak, EC1
Schneider, C1
Yevsa, T1
Staib, F1
Hohmeyer, A1
Walenda, G1
Zimmermann, HW1
Vucur, M1
Huss, S1
Wasmuth, HE1
Lira, SA1
Luedde, T1
Tacke, F1
Metwally, NS1
Kholeif, TE1
Ghanem, KZ1
Farrag, AR1
Ammar, NM1
Abdel-Hamid, AH1
Imamoto, R1
Maeda, M1
Heindryckx, F3
Kuchnio, A1
Casteleyn, C2
Coulon, S2
Olievier, K1
Colle, I3
Liu, YW1
Sanders, JA1
Brilliant, KE1
Clift, D1
Patel, A1
Cerretti, B1
Claro, P1
Mills, DR1
Hixson, DC1
Gruppuso, PA1
Cohen-Naftaly, M1
Lee, YA1
Kocabayoglu, P1
M Llovet, J1
Thung, SN1
O'Donnell, KA1
Keng, VW1
York, B1
Reineke, EL1
Seo, D1
Fan, D1
Silverstein, KA1
Schrum, CT1
Xie, WR1
Mularoni, L1
Wheelan, SJ1
Torbenson, MS1
O'Malley, BW1
Largaespada, DA1
Boeke, JD1
Liu, WH1
You, N1
Tao, KS1
Tang, LJ1
Dou, KF1
Mohamed, J1
Wei, WL1
Husin, NN1
Alwahaibi, NY1
Budin, SB1
Srivastava, J1
Emdad, L1
Santhekadur, PK1
Dumur, CI1
Hylemon, PB1
Bhere, D1
Shah, K1
Ahmad, R1
Giashuddin, S1
Stafflinger, J1
Zhai, B1
Tan, YX1
Shan, L1
Chen, HY1
Dai, RY1
Qiu, BJ1
Zheng, LY1
Li, YQ1
Wu, FQ1
Meng, Z1
Gan, Y1
Zhou, H1
Ness, CV1
Lou, G1
He, C1
Xu, R1
Park, JJ1
Song, I1
Chung, JK1
Babu, LH1
Abdel-Ghany, MI1
Amgad, SW1
Hussain, T2
Siddiqui, HH2
Fareed, S2
Vijayakumar, M2
Rao, CV2
Jiang, R1
Deng, L1
Sun, B1
Ohanyan, V1
Meszaros, JG1
Sun, W1
Lv, Q1
Xue, J2
Barnes, KF1
Haznagy-Radnai, E1
Hohmann, J1
Halasi, M1
Kabirov, K1
Banerjee, A1
Landolfi, J1
Lyubimov, AV1
Gartel, AL1
Chen, WD1
Yu, D1
Forman, BM1
Wang, YD1
Miyakoshi, M1
Tanaka, H1
Ogawa, K7
Jia, XL1
Li, SY1
Dang, SS1
Cheng, YA1
Wang, WJ1
Hughes, CE1
Caterson, B1
Blomme, B1
Stassen, JM2
Terrie, E1
Allemeersch, J1
Tornillo, L1
Fritzius, T1
Semela, D1
Bettler, B1
Tchorz, JS1
Lv, X1
Mi, S1
Yoo, B1
Cardinale, V1
Carpino, G1
Reid, LM1
Gaudio, E1
Alvaro, D1
Rappa, F1
Greco, A1
Podrini, C1
Cappello, F1
Bourgoin, L1
Peyrou, M1
Marino, A1
Scibetta, N1
Williams, R1
Mazzoccoli, G1
Pazienza, V1
Vinciguerra, M1
Zhou, JY1
Wang, SY1
Yan, JH1
Zhao, YL1
Wu, D1
Liu, ZJ1
Sundarrajan, M2
Rao, KV4
Bralet, MP2
Pichard, V1
Rossmanith, W1
Chabicovsky, M1
Peter, B1
Schausberger, E1
Thirunavukkarasu, C4
Prince Vijeya Singh, J1
Thangavel, M1
Selvendiran, K1
Ekuni, A1
Miyoshi, E1
Ko, JH1
Noda, K1
Kitada, T1
Ihara, S1
Endo, T1
Hino, A1
Honke, K1
Taniguchi, N1
Lim, IK3
Yang, JH1
You, TG1
Li, N1
Qian, QJ1
Wang, P1
Yan, ZL1
Meyer, K1
Dyck, PA1
Cao, WQ1
Rao, MS1
Thorgeirsson, SS3
Reddy, JK1
Otake, M1
Nishiwaki, M1
Kobayashi, Y1
Baba, S1
Kohno, E1
Kawasaki, T1
Nakamura, H1
Sánchez, A1
Nagy, P1
Kalinina, OA1
Kalinin, SA1
Polack, EW1
Mikaelian, I1
Panda, S1
Costa, RH1
Adami, GR1
GRUNDMANN, E1
SIEBURG, H1
REID, JD1
RILEY, JF1
SHEPHERD, DM1
THOMAS, C1
SCHMAEHL, D2
HEISE, E1
GOERLICH, M1
SYDOW, G1
DRUCKREY, H1
SCHILDBACH, A1
PREUSSMANN, R1
IVANKOVIC, S3
FEL, VIa1
TSIKARISHVILI, TN1
SHVEMBERGER, IN1
Linares, P1
Macias, RI1
Jorquera, F1
Honrado, E1
Olcoz, JL1
González, P2
Dagli, ML1
Yamasaki, H1
Krutovskikh, V1
Omori, Y1
Cheng, G1
González de Mejía, E1
Ramírez-Mares, MV1
Arce-Popoca, E1
Wallig, M1
Qian, Y1
Ling, CQ1
Tsujiuchi, T4
Sasaki, Y2
Oka, Y1
Kuniyasu, H1
Konishi, Y3
Tsutsumi, M2
Finnberg, N1
Stenius, U1
Högberg, J1
Yang, FC1
Zheng, SS1
Jiang, TA1
Schiffer, E1
Housset, C2
Cacheux, W1
Wendum, D2
Desbois-Mouthon, C2
Rey, C2
Clergue, F1
Poupon, R1
Barbu, V1
Rosmorduc, O1
Matsuda, M1
Nakamoto, Y2
Suzuki, S1
Kurata, T1
Sivalokanathan, S2
Ilayaraja, M2
Vizzutti, F1
Pantaleo, P1
Cardani, R1
Zavanella, T1
Zhao, WD1
Guan, S1
Zhou, KR1
Peng, WJ1
Tang, F1
Chen, ZW1
Sakata, K1
Kuno, T1
Kitaori, N1
Hirose, Y1
Murakami, A1
Tanaka, T1
Mori, H2
Fiume, L2
Busi, C2
Chieco, P2
Lanza, M1
Mattioli, A2
Di Stefano, G2
Ueno, S1
Aoki, D1
Kubo, F1
Hiwatashi, K1
Matsushita, K1
Maruyama, I1
Aikou, T1
Dakshayani, KB3
Subramanian, P3
Manivasagam, T1
Essa, MM1
Manoharan, S1
Boissan, M1
Beurel, E1
Lécluse, Y1
Lacombe, ML1
Yoshino, H1
Futakuchi, M5
Cho, YM1
Takeshita, F2
Imai, N1
Tamano, S1
Shirai, T5
Lu, P1
Fujii, C1
Gao, JL1
Murphy, PM1
Mukaida, N1
Mel'nykov, OR1
Momot, VIa1
P'iatchanina, TV1
Sydoryk, IeP1
Koizumi, N1
Shimahara, Y1
Ajith, TA1
Janardhanan, KK1
Parekh, P1
Xu, H1
Yang, ZH1
Xie, JX1
Okamura, M1
Muguruma, M1
Kashida, Y1
Kumar, RS1
Sunderam, RS1
Sivakumar, T1
Sivakumar, P1
Sureshkumar, R1
Kanagasabi, R1
Vijaya, M1
Perumal, BP1
Gupta, M1
Mazumdar, UK1
Kumar, MS1
Kumar, KA1
Lee, TY1
Kim, KT1
Han, SY1
Sakakima, Y1
Hayakawa, A1
Nagasaka, T1
Nakao, A1
Sugata, E1
Masaoka, T1
Onishi, M2
Shimizu, K1
Honoki, K2
Moulin, P2
Sokuza, Y1
Nishikawa, T1
Mori, C1
Uwataki, K1
Durán, MC1
Molpeceres, V1
Barrio, JP1
Martín-Renedo, J1
Culebras, JM1
Mirunalini, S1
Pandi-Perumal, SR2
Trakht, I2
Cardinali, DP2
Carter, SL1
Fox, SR1
Sexton, CR1
Srinivasan, SV1
Wikenheiser-Brokamp, K1
Boivin, GP1
Aronow, BJ1
Leclercq, IA1
Abarca-Quinones, J1
Desaeger, C1
Lebrun, V1
Praveen Kumar, VR1
Hokaiwado, N1
Asamoto, M3
Wentz, SC1
Yip-Schneider, MT1
Hennig, M1
Klein, PJ1
Sebolt-Leopold, J1
Schmidt, CM1
Wands, J1
Kang, JS1
Morimura, K1
Premkumar, K1
Sheriff, AK1
Furuta, K1
Sato, S1
Miyake, T1
Okamoto, E1
Ishine, J1
Ishihara, S1
Amano, Y1
Adachi, K1
Kinoshita, Y1
Zimmers, TA1
Gutierrez, JC1
Acosta, C1
McKillop, IH1
Pierce, RH1
Koniaris, LG1
Miki, A1
Yano, Y1
Kato, H1
Seo, Y1
Kuriyama, M1
Azuma, T1
Hayashi, Y1
Elinos-Báez, CM1
Augustine, TA1
Park, TJ1
Kim, JY1
Oh, SP1
Kang, SY1
Kim, BW1
Wang, HJ1
Song, KY1
Kim, HC1
Liang, LJ1
Llombart Bosch, A1
Peydro Olaya, A1
Lin, HJ1
Ng, WL1
Tung-Ma, L1
Lee, CL1
Wanless, IR1
Medline, A3
Sell, S2
Ruoslahti, E1
Ding, L1
Zou, DY1
Wang, JT1
Wang, YB1
Pan, SR1
Wand, SH1
Lapis, K1
Sarosi, I1
Bocsi, J1
Thorgeirsson, UP1
James, NH1
Ashby, J1
Roberts, RA1
Dragan, Y1
Teeguarden, J1
Campbell, H1
Hsia, S1
Pitot, H1
Kemp, CJ1
Yamaguchi, S1
Hakoi, K1
Ozaki, K2
Kato, T2
Tiwawech, D1
Nagao, S2
Matsumoto, K3
Tsuda, H2
Fardel, O2
Loyer, P1
Lecureur, V2
Glaise, D1
Guillouzo, A2
Gebhardt, R1
Sirma, H1
Stenbäck, F1
Kurokawa, F1
Wild, CP1
Montesano, R1
Iwase, T1
Pereira, MA2
Sakamoto, H1
Sawada, N2
Kamimura, Y1
Enomoto, K2
Mori, M3
de Calmanovici, RW1
Cochón, AC2
Aldonatti, CA1
Cabral, JR2
San Martín de Viale, LC2
Waalkes, MP1
Diwan, BA1
Rehm, S1
Ward, JM2
Moussa, M1
Cherian, MG1
Goyer, RA1
Yamamoto, T1
Kaneda, K1
Hirohashi, K1
Sakurai, M1
Pascale, RM1
De Miglio, MR2
Muroni, MR1
Simile, MM1
Daino, L2
Seddaiu, MA1
Nufris, A1
Gaspa, L1
Deiana, L2
Feo, F3
Idoate, M1
Bilbao, R2
Sangro, B2
Bruña, O1
Vázquez, J1
Prieto, J2
Wu, CG1
Hoek, FJ1
Groenink, M1
Reitsma, PH1
van Deventer, SJ1
Chamuleau, RA1
Lee, GH1
Sawaki, M1
Hattori, A1
Tsuzuki, N1
Sugawara, N1
Kishimoto, T1
Kokura, K1
Ohkawa, N1
Makino, Y1
Yoshida, M1
Hirohashi, S1
Niwa, S1
Muramatsu, M1
Tamura, T1
Yano, K1
Fukuda, Y1
Sumimoto, R1
Ito, H1
Okumichi, T1
Dohi, K1
Shimada, A1
Shiota, G1
Miyata, H1
Kamahora, T1
Kawasaki, H1
Shiraki, K1
Hino, S1
Terada, T1
Gérolami, R1
Cardoso, J1
Cuenod, CA1
Clément, O1
Tran, PL1
Bréchot, C1
Tessitore, L1
Gardner, HS1
Brennan, LM1
Toussaint, MW1
Rosencrance, AB1
Boncavage-Hennessey, EM1
Wolfe, MJ1
Kishibe, K1
Ishizaki, K1
Tokusashi, Y1
Thièry, JP1
Blazsek, I1
Legras, S1
Marion, S1
Reynes, M1
Anjo, A1
Adam, R1
Misset, JL1
Ahn, B1
Han, BS1
Kim, DJ1
Ohshima, H1
Gariboldi, M1
Pascale, R2
Manenti, G1
Calvisi, D2
Carru, A1
Dragani, TA1
Stål, P1
Wang, GS1
Olsson, JM1
Hirose, M1
Ogiso, T1
Kato, K1
Sano, M1
Monte, MJ1
Palomero, F1
Sainz, GR1
Domínguez, M1
Díez, M1
Toraño, A1
Marin, JJ1
Teeguarden, JG1
Newton, MA1
Dragan, YP1
Pitot, HC3
Altavilla, G1
Caputo, A1
Lanfredi, M1
Piola, C1
Barbanti-Brodano, G1
Corallini, A1
Rajeshkumar, NV1
Kuttan, R1
Chuang, SE1
Cheng, AL1
Lin, JK1
Kuo, ML1
Tomasi, C1
Curreli, F1
Diana, S1
Laconi, S1
Serra, G1
Collu, M1
Pani, P1
Barajas, M1
Mazzolini, G1
Genové, G1
Narvaiza, I1
Schmitz, V1
Melero, I1
Murata, N1
Simile, M1
De Miglio, M1
Muroni, M1
Frau, M1
Asara, G1
Nakanishi, H1
Imaida, K1
Tatematsu, M1
Watanabe, T1
Sugie, S1
Okamoto, K1
Rahman, KM1
Ushida, J1
Nagasue, N1
Dhar, DK1
Yamanoi, A1
El-Assal, ON1
Satoh, K1
Okita, K1
Minami, T1
Kaneda, S1
Otsuka, T2
Jiao, Z1
Suzuki, Y1
Yamada, T1
Izumi, K1
Shiba, H1
Okamoto, T1
Futagawa, Y1
Ohashi, T1
Eto, Y1
Bugni, JM1
Poole, TM1
Wu, XG1
Zhu, DH1
Hatanaka, Y1
Nakae, D1
Mutai, M1
Hashizume, K1
Kamihara, Y1
Kinoshita, N1
Tani, Y1
Danno Gi, G1
Ohta, S1
Ashida, H1
Rocha, NS1
de Oliveira, ML1
de Camargo, JL1
Horiguchi, N1
Takayama, H1
Toyoda, M1
Fukusato, T1
Merlino, G1
Takagi, H1
Kuroda, H1
Ohtsuru, A1
Kawashita, Y1
Nagayama, Y1
Fukuda, E1
Namba, H1
Kanematsu, T1
Yamashita, S1
Solt, DB2
Farber, E4
Cameron, R1
Kellen, J1
Kolin, A1
Malkin, A1
Barsness, L1
Goldsworthy, T1
Kitagawa, T1
Vanderlaan, M1
Cutter, C1
Dolbeare, F1
Rogers, AE1
Princler, GL1
McIntire, KR1
Adamson, RH3
Weisburger, JH1
Madison, RM1
Viguera, C1
Weisburger, EK1
Meltzer, MS1
Leonard, EJ1
Hardy, AS1
Rapp, HJ1
Craddock, VM1
Schneeweiss, U1
Fabricius, EA1
Letnansky, K1
Ishikawa, T2
Shimamine, T1
Takayama, S2
Schmähl, D2
Scherer, E1
Emmelot, P1
Thorne, J1
Snart, RS1
Shaposhnikov, IaD1
Kiselev, OI1
Gaĭtskhoki, VS2
Irving, MG1
Williams, JF1
Boyle, MD2
Ohanian, SH2
Borsos, T2
Ingleton, PM1
Hancock, MP1
Agostini, B1
Wieland, T1
Hofmann, W1
Matsushima, T1
Sugimura, T1
Lakings, DB1
Waalkes, TP1
Borek, E1
Gehrke, CW1
Mrochek, JE1
Longmore, J1
Shaposhnikov, JD2
Shalumovich, WN1
Kisselev, OI1
Pozharisski, KM1
Ruebner, BH1
Michas, C1
Kanayama, R1
Bannasch, P1
Ivanov, SD1
Voronova, LA1
Rubenchik, BL1
Romanenko, AM1
Nishizumi, M2
Hay, JB1
Linnell, JC1
Quadros, EV1
Matthews, DM1
Morris, HP1
Poirier, LA2
Khudoley, VV1
Sieber, SM1
Abe, S1
Berczi, I1
Sehon, AH1
Gyorkey, F1
Melnick, JL1
Mirkovic, R1
Cabral, GA1
Gyorkey, P1
Hollinger, FB1
Albert, RE1
Burns, FJ1
Bilger, L1
Fridman-Manduzio, A1
Gol-Winkler, R1
Betz, EH1
Goutier, R1
Kil'dema, LA1
Borenfreund, E1
Bendich, A1
Ratovitski, EA1
Pyllvere, EI1
Vesselinovitch, SD1
Mihailovich, N1
Takaya, S1
Imai, F1
Hatayama, I1
Ito, N1
Habs, M1
Miller, FR1
Blazkovec, AA1
Hiasa, Y1
Ohshima, M1
Iwata, C1
Tanikake, T1
Zapisek, WF1
Cronin, GM1
Lyn-Cook, BD1
Travis, CC1
McClain, TW1
Birkner, PD1
Wainstok de Calmanovici, R1
Zenklusen, JC1
Aldonatti, C1
Ye, JN1
Gu, TG1
Xia, LA1
Murphy, MJ1
Lee, W1
Gao, NH1
Gu, JR1
Fuhrer, JP1
Lagopoulos, L1
Sunahara, GI1
Würzner, H1
Dombrowsky, I1
Stalder, R1
Hunt, JM1
Dunsford, HA1
Chisari, FV1
Aitio, A1
Aitio, ML1
Camus, AM1
Cardis, E1
Bartsch, H1
Jung-Rou, T1
Herren-Freund, SL1
Schultz, ME1
Schultz, RJ1
Althoff, J1
Fehst, HJ1
Mohr, U1

Clinical Trials (2)

Trial Overview

TrialPhaseEnrollmentStudy TypeStart DateStatus
Biomarker Analyses in Hepatocellular Carcinoma Patients Treated With Therasphere®[NCT03203837]4 participants (Actual)Observational2017-07-05Terminated (stopped due to Funding Discontinued due to low accrual rate)
Phase I-II Study of Intratumoral Urelumab Combined With Nivolumab in Patients With Solid Tumors[NCT03792724]Phase 1/Phase 232 participants (Anticipated)Interventional2019-01-30Not yet recruiting
[information is prepared from clinicaltrials.gov, extracted Sep-2024]

Reviews

8 reviews available for diethylnitrosamine and Hepatocellular Carcinoma

ArticleYear
Models of nonalcoholic steatohepatitis potentiated by chemical inducers leading to hepatocellular carcinoma.
    Biochemical pharmacology, 2022, Volume: 195

    Topics: Animals; Carbon Tetrachloride; Carcinoma, Hepatocellular; Diet, High-Fat; Diethylnitrosamine; Diseas

2022
Diethylnitrosamine-induced liver tumorigenesis in mice.
    Methods in cell biology, 2021, Volume: 163

    Topics: Animals; Carcinogenesis; Carcinoma, Hepatocellular; Diethylnitrosamine; Humans; Liver; Liver Neoplas

2021
Liver carcinogenesis: from naughty chemicals to soothing fat and the surprising role of NRF2.
    Carcinogenesis, 2016, Volume: 37, Issue:6

    Topics: Animals; Carcinoma, Hepatocellular; Diet, High-Fat; Diethylnitrosamine; Disease Models, Animal; Hepa

2016
Immunotherapy of hepatocellular carcinoma: is there a place for regulatory T-lymphocyte depletion?
    Immunotherapy, 2011, Volume: 3, Issue:4 Suppl

    Topics: Animals; Antibodies, Monoclonal; Antigens, Neoplasm; Carcinoma, Hepatocellular; Diethylnitrosamine;

2011
Spectrum of molecular changes during hepatocarcinogenesis induced by DEN and other chemicals in Fischer 344 male rats.
    Mechanisms of ageing and development, 2002, Volume: 123, Issue:12

    Topics: Alkylating Agents; Animals; Carcinoma, Hepatocellular; Diethylnitrosamine; Disease Models, Animal; G

2002
The quantitation of altered hepatic foci during multistage hepatocarcinogenesis in the rat: transforming growth factor alpha expression as a marker for the stage of progression.
    Cancer letters, 1995, Jun-29, Volume: 93, Issue:1

    Topics: Animals; Biomarkers, Tumor; Carcinoma, Hepatocellular; Cell Count; Cell Transformation, Neoplastic;

1995
Experimental carcinogenesis in small aquarium fishes.
    Progress in experimental tumor research, 1976, Volume: 20

    Topics: 2-Acetylaminofluorene; Adenoma; Adenoma, Bile Duct; Aflatoxins; Animals; Benzopyrenes; Carcinogens;

1976
Diethylnitrosamine-induced hepatocarcinogenesis in rats: a theoretical study.
    Toxicology and applied pharmacology, 1991, Jun-15, Volume: 109, Issue:2

    Topics: Animals; Carcinoma, Hepatocellular; Diethylnitrosamine; Dose-Response Relationship, Drug; Female; Li

1991

Trials

1 trial available for diethylnitrosamine and Hepatocellular Carcinoma

ArticleYear
Can methanolic extract of Nigella sativa seed affect glyco-regulatory enzymes in experimental hepatocellular carcinoma?
    Environmental health and preventive medicine, 2013, Volume: 18, Issue:1

    Topics: Animals; Antineoplastic Agents, Phytogenic; Biomarkers, Tumor; Carbon Tetrachloride; Carcinoma, Hepa

2013

Other Studies

650 other studies available for diethylnitrosamine and Hepatocellular Carcinoma

ArticleYear
Farnesol alleviates diethyl nitrosamine induced inflammation and protects experimental rat hepatocellular carcinoma.
    Environmental toxicology, 2021, Volume: 36, Issue:12

    Topics: Animals; Antioxidants; Carcinoma, Hepatocellular; Diethylnitrosamine; Farnesol; Inflammation; Liver;

2021
Pharmacokinetic herb-drug interactions between Aidi injection and doxorubicin in rats with diethylnitrosamine-induced hepatocellular carcinoma.
    BMC pharmacology & toxicology, 2021, 09-06, Volume: 22, Issue:1

    Topics: Animals; Antibiotics, Antineoplastic; Area Under Curve; Carcinoma, Hepatocellular; Diethylnitrosamin

2021
In-vitro and in-vivo investigation of amygdalin, metformin, and combination of both against doxorubicin on hepatocellular carcinoma.
    Life sciences, 2021, Nov-15, Volume: 285

    Topics: alpha-Fetoproteins; Amygdalin; Animals; Antibiotics, Antineoplastic; Antineoplastic Agents, Phytogen

2021
Persistent mTORC1 activation via Depdc5 deletion results in spontaneous hepatocellular carcinoma but does not exacerbate carcinogen- and high-fat diet-induced hepatic carcinogenesis in mice.
    Biochemical and biophysical research communications, 2021, 11-12, Volume: 578

    Topics: Alkylating Agents; Animals; Carcinoma, Hepatocellular; Cell Proliferation; Diet, High-Fat; Diethylni

2021
Cholic acid supplementation accelerates the progression of nonalcoholic fatty liver disease to the procarcinogenic state in mice fed a high-fat and high-cholesterol diet.
    The Journal of nutritional biochemistry, 2022, Volume: 100

    Topics: Amino Acids; Animals; Carcinogenesis; Carcinoma, Hepatocellular; Cholesterol; Cholesterol, Dietary;

2022
Safflower yellow reduces DEN-induced hepatocellular carcinoma by enhancing liver immune infiltration through promotion of collagen degradation and modulation of gut microbiota.
    Food & function, 2021, Nov-01, Volume: 12, Issue:21

    Topics: Animals; Carcinoma, Hepatocellular; Cell Line, Tumor; Chalcone; Collagen; Diethylnitrosamine; Gastro

2021
MicroRNA-26a systemic administration attenuates tumor formation in hepatocellular carcinoma mouse model.
    Pakistan journal of pharmaceutical sciences, 2021, Volume: 34, Issue:3

    Topics: Alkylating Agents; alpha-Fetoproteins; Animals; Apoptosis; Biomarkers; Carcinoma, Hepatocellular; Ca

2021
Accumulation of cholesterol, triglycerides and ceramides in hepatocellular carcinomas of diethylnitrosamine injected mice.
    Lipids in health and disease, 2021, Oct-10, Volume: 20, Issue:1

    Topics: Animals; Carcinoma, Hepatocellular; Ceramides; Cholesterol; Diethylnitrosamine; Disease Models, Anim

2021
The phosphorylated retinoid X receptor-α promotes diethylnitrosamine-induced hepatocarcinogenesis in mice through the activation of β-catenin signaling pathway.
    Carcinogenesis, 2022, 04-25, Volume: 43, Issue:3

    Topics: Animals; beta Catenin; Carcinogenesis; Carcinoma, Hepatocellular; Diethylnitrosamine; Doxycycline; L

2022
In vivo Study of a Newly Synthesized Chromen-4-one Derivative as an Antitumor Agent against HCC.
    Journal of gastrointestinal cancer, 2022, Volume: 53, Issue:4

    Topics: Animals; Anti-Inflammatory Agents; Antineoplastic Agents; Antioxidants; bcl-2-Associated X Protein;

2022
Standardization of diethylnitrosamine-induced hepatocellular carcinoma rat model with time based molecular assessment.
    Experimental and molecular pathology, 2021, Volume: 123

    Topics: Animals; Apoptosis; Carcinogenesis; Carcinoma, Hepatocellular; Cell Proliferation; Diethylnitrosamin

2021
Loss of Hepatic Transcription Factor EB Attenuates Alcohol-Associated Liver Carcinogenesis.
    The American journal of pathology, 2022, Volume: 192, Issue:1

    Topics: Alcohol Drinking; Animals; Basic Helix-Loop-Helix Leucine Zipper Transcription Factors; Carcinogenes

2022
Potential anticancer effects of cyclo(-Pro-Tyr) against N-diethyl nitrosamine induced hepatocellular carcinoma in mouse through PI3K/AKT signaling.
    Environmental toxicology, 2022, Volume: 37, Issue:2

    Topics: Animals; Apoptosis; Carcinoma, Hepatocellular; Diethylnitrosamine; Dipeptides; Liver Neoplasms; Male

2022
Fuzheng Xiaozheng prescription relieves rat hepatocellular carcinoma through improving anti-inflammation capacity and regulating lipid related metabolisms.
    Journal of ethnopharmacology, 2022, Feb-10, Volume: 284

    Topics: Animals; Antineoplastic Agents; Carcinoma, Hepatocellular; Diethylnitrosamine; Drugs, Chinese Herbal

2022
Therapeutic Potential of Cucumis melo (L.) Fruit Extract and Its Silver Nanopartciles Against DEN-Induced Hepatocellular Cancer in Rats.
    Applied biochemistry and biotechnology, 2022, Volume: 194, Issue:1

    Topics: Animals; Carcinoma, Hepatocellular; Cucumis melo; Diethylnitrosamine; Fruit; Liver Neoplasms, Experi

2022
Dietary Intake of 17α-Ethinylestradiol Promotes HCC Progression in Humanized Male Mice Expressing Sex Hormone-Binding Globulin.
    International journal of molecular sciences, 2021, Nov-22, Volume: 22, Issue:22

    Topics: Androgens; Animals; Carcinoma, Hepatocellular; Diethylnitrosamine; Disease Models, Animal; Disease P

2021
Mulberry fruit polysaccharides alleviate diethylnitrosamine/phenobarbital-induced hepatocarcinogenesis in vivo: the roles of cell apoptosis and inflammation.
    Bioengineered, 2021, Volume: 12, Issue:2

    Topics: Animals; Apoptosis; Biomarkers, Tumor; Carcinoma, Hepatocellular; Diethylnitrosamine; Fruit; Gene Ex

2021
Hepatocellular carcinoma induces body mass loss in parallel with osmolyte and water retention in rats.
    Life sciences, 2022, Jan-15, Volume: 289

    Topics: Aldosterone; Animals; Carcinoma, Hepatocellular; Diethylnitrosamine; Liver Neoplasms, Experimental;

2022
Evaluation of anti-cancer effect of zerumbone and cisplatin on
    Natural product research, 2022, Volume: 36, Issue:18

    Topics: Animals; Carcinoma, Hepatocellular; Cisplatin; Diethylnitrosamine; Fresh Water; Humans; Liver Neopla

2022
Anti-hepatocellular carcinoma efficacy of Fuzheng Xiaozheng prescription and its interventional mechanism studies.
    Journal of ethnopharmacology, 2022, Mar-01, Volume: 285

    Topics: Animals; Antineoplastic Agents, Phytogenic; Carcinoma, Hepatocellular; Diethylnitrosamine; Dose-Resp

2022
Aidi injection altered the activity of CYP2D4, CYP1A2, CYP2C19, CYP3A2, CYP2E1 and CYP2C11 in normal and diethylnitrosamine-induced hepatocellular carcinoma in rats.
    Journal of ethnopharmacology, 2022, Mar-25, Volume: 286

    Topics: Animals; Antineoplastic Agents, Phytogenic; Carcinoma, Hepatocellular; Chromatography, Liquid; Cytoc

2022
1H-NMR-based metabolomics reveals the biomarker panel and molecular mechanism of hepatocellular carcinoma progression.
    Analytical and bioanalytical chemistry, 2022, Volume: 414, Issue:4

    Topics: Animals; Biomarkers, Tumor; Carcinoma, Hepatocellular; Diethylnitrosamine; Liver Neoplasms; Male; Me

2022
New Approach about the Signaling Crosstalk between IQGAPs/ NF- κB/IL-8 and PDCD5/p53/TRAIL Pathways that Modulate Malignant Transformation in Hepatocellular Carcinoma.
    Asian Pacific journal of cancer prevention : APJCP, 2022, Jan-01, Volume: 23, Issue:1

    Topics: Animals; Apoptosis Regulatory Proteins; Carcinoma, Hepatocellular; Diethylnitrosamine; Disease Model

2022
Comparative subcellular localization of NRF2 and KEAP1 during the hepatocellular carcinoma development in vivo.
    Biochimica et biophysica acta. Molecular cell research, 2022, Volume: 1869, Issue:5

    Topics: Actin Cytoskeleton; Animals; Carcinoma, Hepatocellular; Cell Nucleus; Cyclooxygenase 1; Diethylnitro

2022
Chemopreventive and Therapeutic Efficacy of Enhalus acoroides against Diethylnitrosamine Induced Hepatocellular Carcinoma in Wistar Albino Rats.
    Applied biochemistry and biotechnology, 2023, Volume: 195, Issue:4

    Topics: Animals; Antioxidants; Body Weight; Carcinoma, Hepatocellular; Diethylnitrosamine; Lipids; Liver; Li

2023
Dual regulating of mitochondrial fusion and Timp-3 by leflunomide and diallyl disulfide combination suppresses diethylnitrosamine-induced hepatocellular tumorigenesis in rats.
    Life sciences, 2022, Apr-01, Volume: 294

    Topics: Alkylating Agents; Allyl Compounds; Animals; Antineoplastic Agents; Carcinoma, Hepatocellular; Dieth

2022
Involvement of NF-κB/PI3K/AKT signaling pathway in the protective effect of prunetin against a diethylnitrosamine induced hepatocellular carcinogenesis in rats.
    Journal of biochemical and molecular toxicology, 2022, Volume: 36, Issue:5

    Topics: Animals; Antioxidants; Carcinogenesis; Carcinoma, Hepatocellular; Diethylnitrosamine; Humans; Isofla

2022
Anticancer Effect of Arbutin on Diethylnitrosamine-Induced Liver Carcinoma in Rats via the GRP and GADD Pathway.
    Journal of environmental pathology, toxicology and oncology : official organ of the International Society for Environmental Toxicology and Cancer, 2022, Volume: 41, Issue:1

    Topics: Animals; Arbutin; Carcinoma, Hepatocellular; Diethylnitrosamine; Liver Neoplasms; Rats

2022
Suppressive effects of thymoquinone on the initiation stage of diethylnitrosamine hepatocarcinogenesis in rats.
    Journal of biochemical and molecular toxicology, 2022, Volume: 36, Issue:8

    Topics: Animals; Antioxidants; Benzoquinones; Carcinoma, Hepatocellular; Diethylnitrosamine; Glutathione; Li

2022
Safety and Feasibility of Contrast-Enhanced Computed Tomography with a Nanoparticle Contrast Agent for Evaluation of Diethylnitrosamine-Induced Liver Tumors in a Rat Model.
    Academic radiology, 2023, Volume: 30, Issue:1

    Topics: Animals; Carcinoma, Hepatocellular; Contrast Media; Diethylnitrosamine; Feasibility Studies; Liver N

2023
    Natural product research, 2023, Volume: 37, Issue:6

    Topics: Apoptosis; Carcinoma, Hepatocellular; Diethylnitrosamine; ErbB Receptors; Gamma Rays; Liver; Liver N

2023
Boron attenuated diethylnitrosamine induced hepatocellular carcinoma in C3H/HeN mice via alteration of oxidative stress and apoptotic pathway.
    Journal of trace elements in medicine and biology : organ of the Society for Minerals and Trace Elements (GMS), 2022, Volume: 74

    Topics: Animals; Antioxidants; Apoptosis; bcl-2-Associated X Protein; Boron; Carcinoma, Hepatocellular; Casp

2022
Chemoprotective Effect of Decalactone on Hepatic Cancer via Diminishing the Inflammatory Response and Oxidative Stress.
    Journal of oleo science, 2022, Sep-01, Volume: 71, Issue:9

    Topics: alpha-Fetoproteins; Animals; Antioxidants; Bilirubin; Body Weight; Carcinoma, Hepatocellular; Diethy

2022
Modulation of EphA7 and pEphA7 Protein Expression: Potential Biomarkers for Early Detection of Hepatocellular Carcinoma.
    Asian Pacific journal of cancer prevention : APJCP, 2022, Aug-01, Volume: 23, Issue:8

    Topics: alpha-Fetoproteins; Animals; Body Weight; Carcinoma, Hepatocellular; Caspase 3; Diethylnitrosamine;

2022
MitoQ demonstrates connexin- and p53-mediated cancer chemoprevention in N-nitrosodiethylamine-induced hepatocarcinogenesis rodent model.
    Toxicology and applied pharmacology, 2022, 10-15, Volume: 453

    Topics: Animals; Carcinogenesis; Carcinoma, Hepatocellular; Chemoprevention; Connexins; Diethylnitrosamine;

2022
MiR-22 Deficiency Fosters Hepatocellular Carcinoma Development in Fatty Liver.
    Cells, 2022, 09-14, Volume: 11, Issue:18

    Topics: Animals; Carcinogenesis; Carcinoma, Hepatocellular; Diethylnitrosamine; Disease Models, Animal; Fatt

2022
Loss of phospholipase Cγ1 suppresses hepatocellular carcinogenesis through blockade of STAT3-mediated cancer development.
    Hepatology communications, 2022, Volume: 6, Issue:11

    Topics: Animals; Carcinogenesis; Carcinoma, Hepatocellular; Cell Proliferation; Diethylnitrosamine; Humans;

2022
ADSCs-derived exosomes ameliorate hepatic fibrosis by suppressing stellate cell activation and remodeling hepatocellular glutamine synthetase-mediated glutamine and ammonia homeostasis.
    Stem cell research & therapy, 2022, 10-04, Volume: 13, Issue:1

    Topics: Ammonia; Animals; Carbon Tetrachloride; Carcinoma, Hepatocellular; Diethylnitrosamine; Exosomes; Fib

2022
Attenuation of diethylnitrosamine-induced hepatocellular carcinoma in a rat model by combination therapy of diacerein and gold nanoparticles: a histopathological and immunohistochemical study.
    Journal of histotechnology, 2023, Volume: 46, Issue:1

    Topics: Animals; beta Catenin; Carcinoma, Hepatocellular; Caspase 3; Diethylnitrosamine; Fibrosis; Gold; Int

2023
iPLA2β-Null Mice Show HCC Protection by an Induction of Cell-Cycle Arrest after Diethylnitrosamine Treatment.
    International journal of molecular sciences, 2022, Nov-09, Volume: 23, Issue:22

    Topics: Animals; Carcinoma, Hepatocellular; Cell Cycle Checkpoints; Diethylnitrosamine; Liver Neoplasms; Mal

2022
iPLA2β-Null Mice Show HCC Protection by an Induction of Cell-Cycle Arrest after Diethylnitrosamine Treatment.
    International journal of molecular sciences, 2022, Nov-09, Volume: 23, Issue:22

    Topics: Animals; Carcinoma, Hepatocellular; Cell Cycle Checkpoints; Diethylnitrosamine; Liver Neoplasms; Mal

2022
iPLA2β-Null Mice Show HCC Protection by an Induction of Cell-Cycle Arrest after Diethylnitrosamine Treatment.
    International journal of molecular sciences, 2022, Nov-09, Volume: 23, Issue:22

    Topics: Animals; Carcinoma, Hepatocellular; Cell Cycle Checkpoints; Diethylnitrosamine; Liver Neoplasms; Mal

2022
iPLA2β-Null Mice Show HCC Protection by an Induction of Cell-Cycle Arrest after Diethylnitrosamine Treatment.
    International journal of molecular sciences, 2022, Nov-09, Volume: 23, Issue:22

    Topics: Animals; Carcinoma, Hepatocellular; Cell Cycle Checkpoints; Diethylnitrosamine; Liver Neoplasms; Mal

2022
iPLA2β-Null Mice Show HCC Protection by an Induction of Cell-Cycle Arrest after Diethylnitrosamine Treatment.
    International journal of molecular sciences, 2022, Nov-09, Volume: 23, Issue:22

    Topics: Animals; Carcinoma, Hepatocellular; Cell Cycle Checkpoints; Diethylnitrosamine; Liver Neoplasms; Mal

2022
iPLA2β-Null Mice Show HCC Protection by an Induction of Cell-Cycle Arrest after Diethylnitrosamine Treatment.
    International journal of molecular sciences, 2022, Nov-09, Volume: 23, Issue:22

    Topics: Animals; Carcinoma, Hepatocellular; Cell Cycle Checkpoints; Diethylnitrosamine; Liver Neoplasms; Mal

2022
iPLA2β-Null Mice Show HCC Protection by an Induction of Cell-Cycle Arrest after Diethylnitrosamine Treatment.
    International journal of molecular sciences, 2022, Nov-09, Volume: 23, Issue:22

    Topics: Animals; Carcinoma, Hepatocellular; Cell Cycle Checkpoints; Diethylnitrosamine; Liver Neoplasms; Mal

2022
iPLA2β-Null Mice Show HCC Protection by an Induction of Cell-Cycle Arrest after Diethylnitrosamine Treatment.
    International journal of molecular sciences, 2022, Nov-09, Volume: 23, Issue:22

    Topics: Animals; Carcinoma, Hepatocellular; Cell Cycle Checkpoints; Diethylnitrosamine; Liver Neoplasms; Mal

2022
iPLA2β-Null Mice Show HCC Protection by an Induction of Cell-Cycle Arrest after Diethylnitrosamine Treatment.
    International journal of molecular sciences, 2022, Nov-09, Volume: 23, Issue:22

    Topics: Animals; Carcinoma, Hepatocellular; Cell Cycle Checkpoints; Diethylnitrosamine; Liver Neoplasms; Mal

2022
Attenuation of N-Nitrosodiethylamine -Induced Hepatocellular Carcinoma by Piceatannol and/or Cisplatin: The Interplay between Nuclear Factor (Erythroid Derived 2)-like 2 and Redox Status.
    Asian Pacific journal of cancer prevention : APJCP, 2022, Nov-01, Volume: 23, Issue:11

    Topics: Animals; Antioxidants; Carcinoma, Hepatocellular; Cisplatin; Diethylnitrosamine; Liver Neoplasms; NF

2022
Attenuation of N-Nitrosodiethylamine -Induced Hepatocellular Carcinoma by Piceatannol and/or Cisplatin: The Interplay between Nuclear Factor (Erythroid Derived 2)-like 2 and Redox Status.
    Asian Pacific journal of cancer prevention : APJCP, 2022, Nov-01, Volume: 23, Issue:11

    Topics: Animals; Antioxidants; Carcinoma, Hepatocellular; Cisplatin; Diethylnitrosamine; Liver Neoplasms; NF

2022
Attenuation of N-Nitrosodiethylamine -Induced Hepatocellular Carcinoma by Piceatannol and/or Cisplatin: The Interplay between Nuclear Factor (Erythroid Derived 2)-like 2 and Redox Status.
    Asian Pacific journal of cancer prevention : APJCP, 2022, Nov-01, Volume: 23, Issue:11

    Topics: Animals; Antioxidants; Carcinoma, Hepatocellular; Cisplatin; Diethylnitrosamine; Liver Neoplasms; NF

2022
Attenuation of N-Nitrosodiethylamine -Induced Hepatocellular Carcinoma by Piceatannol and/or Cisplatin: The Interplay between Nuclear Factor (Erythroid Derived 2)-like 2 and Redox Status.
    Asian Pacific journal of cancer prevention : APJCP, 2022, Nov-01, Volume: 23, Issue:11

    Topics: Animals; Antioxidants; Carcinoma, Hepatocellular; Cisplatin; Diethylnitrosamine; Liver Neoplasms; NF

2022
SOCS2 protects against chemical-induced hepatocellular carcinoma progression by modulating inflammation and cell proliferation in the liver.
    Biomedicine & pharmacotherapy = Biomedecine & pharmacotherapie, 2023, Volume: 157

    Topics: Animals; Carcinoma, Hepatocellular; Cell Proliferation; Diethylnitrosamine; Liver Neoplasms; Mice; M

2023
SOCS2 protects against chemical-induced hepatocellular carcinoma progression by modulating inflammation and cell proliferation in the liver.
    Biomedicine & pharmacotherapy = Biomedecine & pharmacotherapie, 2023, Volume: 157

    Topics: Animals; Carcinoma, Hepatocellular; Cell Proliferation; Diethylnitrosamine; Liver Neoplasms; Mice; M

2023
SOCS2 protects against chemical-induced hepatocellular carcinoma progression by modulating inflammation and cell proliferation in the liver.
    Biomedicine & pharmacotherapy = Biomedecine & pharmacotherapie, 2023, Volume: 157

    Topics: Animals; Carcinoma, Hepatocellular; Cell Proliferation; Diethylnitrosamine; Liver Neoplasms; Mice; M

2023
SOCS2 protects against chemical-induced hepatocellular carcinoma progression by modulating inflammation and cell proliferation in the liver.
    Biomedicine & pharmacotherapy = Biomedecine & pharmacotherapie, 2023, Volume: 157

    Topics: Animals; Carcinoma, Hepatocellular; Cell Proliferation; Diethylnitrosamine; Liver Neoplasms; Mice; M

2023
Saroglitazar suppresses the hepatocellular carcinoma induced by intraperitoneal injection of diethylnitrosamine in C57BL/6 mice fed on choline deficient, l-amino acid- defined, high-fat diet.
    BMC cancer, 2023, Jan-17, Volume: 23, Issue:1

    Topics: Amino Acids; Animals; Carcinoma, Hepatocellular; Choline; Diet, High-Fat; Diethylnitrosamine; Diseas

2023
Potential of siRNA-Bearing Subtilosomes in the Treatment of Diethylnitrosamine-Induced Hepatocellular Carcinoma.
    Molecules (Basel, Switzerland), 2023, Feb-27, Volume: 28, Issue:5

    Topics: Animals; Apoptosis; Carcinogenesis; Carcinoma, Hepatocellular; Cyclooxygenase 2; Diethylnitrosamine;

2023
Chronic Administration of Diethylnitrosamine and 2-Acetylaminofluorene Induces Hepatocellular Carcinoma in Wistar Rats.
    International journal of molecular sciences, 2023, May-07, Volume: 24, Issue:9

    Topics: 2-Acetylaminofluorene; alpha-Fetoproteins; Animals; Carcinoma, Hepatocellular; Diethylnitrosamine; L

2023
Intestinal microecology in mice bearing diethylnitrosamine-induced primary hepatocellular carcinoma.
    Zhejiang da xue xue bao. Yi xue ban = Journal of Zhejiang University. Medical sciences, 2022, Aug-01, Volume: 51, Issue:4

    Topics: Animals; Bacteria; Carcinoma, Hepatocellular; Diethylnitrosamine; Liver Neoplasms; Male; Mice; Mice,

2022
ZEB1 Transcriptionally Activates PHGDH to Facilitate Carcinogenesis and Progression of HCC.
    Cellular and molecular gastroenterology and hepatology, 2023, Volume: 16, Issue:4

    Topics: Animals; Carcinogenesis; Carcinoma, Hepatocellular; Cell Line, Tumor; Diethylnitrosamine; Humans; Li

2023
Lactosylated Chitosan Nanoparticles Potentiate the Anticancer Effects of Telmisartan In Vitro and in a
    Molecular pharmaceutics, 2023, 09-04, Volume: 20, Issue:9

    Topics: Animals; Carcinoma, Hepatocellular; Chitosan; Diethylnitrosamine; Hep G2 Cells; Humans; Liver Neopla

2023
Estrogen Attenuates Diethylnitrosamine-Induced Hepatocellular Carcinoma in Female Rats via Modulation of Estrogen Receptor/FASN/CD36/IL-6 Axis.
    Biological & pharmaceutical bulletin, 2023, Volume: 46, Issue:11

    Topics: Animals; Carcinoma, Hepatocellular; Diethylnitrosamine; Estrogens; Fatty Acid Synthases; Female; Int

2023
The essential role of O-GlcNAcylation in hepatic differentiation.
    Hepatology communications, 2023, 11-01, Volume: 7, Issue:11

    Topics: Animals; Carcinoma, Hepatocellular; Cell Differentiation; Diethylnitrosamine; Fibrosis; Humans; Live

2023
Hepatoprotective effects of aspirin on diethylnitrosamine-induced hepatocellular carcinoma in rats by reducing inflammation levels and PD-L1 expression.
    Scientific reports, 2023, Dec-04, Volume: 13, Issue:1

    Topics: Animals; Aspirin; B7-H1 Antigen; Carcinoma, Hepatocellular; Diethylnitrosamine; Inflammation; Liver

2023
Whole transcriptome analysis of chemically induced hepatocellular carcinoma using RNA-sequencing analysis.
    FEBS open bio, 2019, Volume: 9, Issue:11

    Topics: Animals; Carcinoma, Hepatocellular; Diethylnitrosamine; Gene Expression Profiling; Gene Expression R

2019
Hepatoprotective effect of boldine against diethylnitrosamine-induced hepatocarcinogenesis in wistar rats.
    Journal of biochemical and molecular toxicology, 2019, Volume: 33, Issue:12

    Topics: alpha-Fetoproteins; Animals; Antioxidants; Apoptosis; Aporphines; bcl-2-Associated X Protein; Carcin

2019
Antineoplastic properties of zafirlukast against hepatocellular carcinoma via activation of mitochondrial mediated apoptosis.
    Regulatory toxicology and pharmacology : RTP, 2019, Volume: 109

    Topics: Animals; Antineoplastic Agents; Apoptosis; Apoptosis Regulatory Proteins; Carcinoma, Hepatocellular;

2019
A novel chemoprotective effect of tiopronin against diethylnitrosamine-induced hepatocellular carcinoma in rats: Role of ASK1/P38 MAPK-P53 signalling cascade.
    Clinical and experimental pharmacology & physiology, 2020, Volume: 47, Issue:2

    Topics: Alkylating Agents; Animals; Antineoplastic Agents; Carcinoma, Hepatocellular; Diethylnitrosamine; Li

2020
GSTZ1 deficiency promotes hepatocellular carcinoma proliferation via activation of the KEAP1/NRF2 pathway.
    Journal of experimental & clinical cancer research : CR, 2019, Oct-30, Volume: 38, Issue:1

    Topics: Animals; Carbon Tetrachloride; Carcinoma, Hepatocellular; Cell Line, Tumor; Cell Proliferation; Diet

2019
Evaluation of chemopreventive and chemotherapeutic effect of Artemisia vulgaris extract against diethylnitrosamine induced hepatocellular carcinogenesis in Balb C mice.
    Brazilian journal of biology = Revista brasleira de biologia, 2020, Volume: 80, Issue:3

    Topics: Animals; Artemisia; Carcinogenesis; Carcinoma, Hepatocellular; Diethylnitrosamine; Liver Neoplasms;

2020
Liver haploinsufficiency of RuvBL1 causes hepatic insulin resistance and enhances hepatocellular carcinoma progression.
    International journal of cancer, 2020, 06-15, Volume: 146, Issue:12

    Topics: Animals; ATPases Associated with Diverse Cellular Activities; Carcinogenesis; Carcinoma, Hepatocellu

2020
Metabolic pathway analyses identify proline biosynthesis pathway as a promoter of liver tumorigenesis.
    Journal of hepatology, 2020, Volume: 72, Issue:4

    Topics: Aldehyde Dehydrogenase; Animals; Carcinogenesis; Carcinoma, Hepatocellular; Cell Proliferation; delt

2020
Survival of endogenous hepatic stem/progenitor cells in liver tissues during liver cirrhosis.
    Life sciences, 2020, Jan-15, Volume: 241

    Topics: Animals; Carcinoma, Hepatocellular; Diethylnitrosamine; Disease Models, Animal; Inflammation; Liver;

2020
Effects of Medium-chain Triglycerides Administration in Chemically-induced Carcinogenesis in Mice.
    Anticancer research, 2019, Volume: 39, Issue:12

    Topics: 3-Hydroxybutyric Acid; Adipocytes; Adipokines; Adiponectin; Adipose Tissue; Aldehydes; Animal Feed;

2019
Extracellular ATP and Purinergic P2Y
    Cancer research, 2020, 02-15, Volume: 80, Issue:4

    Topics: Adenosine Triphosphate; Animals; Antineoplastic Agents; Carcinogenesis; Carcinoma, Hepatocellular; C

2020
Mebendazole augments sensitivity to sorafenib by targeting MAPK and BCL-2 signalling in n-nitrosodiethylamine-induced murine hepatocellular carcinoma.
    Scientific reports, 2019, 12-13, Volume: 9, Issue:1

    Topics: Alanine Transaminase; Animals; Antineoplastic Agents; Carcinoma, Hepatocellular; Cyclin D1; Diethyln

2019
Overexpression of Hepatocyte Chemerin-156 Lowers Tumor Burden in a Murine Model of Diethylnitrosamine-Induced Hepatocellular Carcinoma.
    International journal of molecular sciences, 2019, Dec-30, Volume: 21, Issue:1

    Topics: Animals; Carcinoma, Hepatocellular; Chemokines; Cholesterol; Diethylnitrosamine; Diglycerides; Disea

2019
Mice With Increased Numbers of Polyploid Hepatocytes Maintain Regenerative Capacity But Develop Fewer Hepatocellular Carcinomas Following Chronic Liver Injury.
    Gastroenterology, 2020, Volume: 158, Issue:6

    Topics: Animals; Carbon Tetrachloride; Carcinoma, Hepatocellular; Cells, Cultured; Chemical and Drug Induced

2020
Endurance training but not high-intensity interval training reduces liver carcinogenesis in mice with hepatocellular carcinogen diethylnitrosamine.
    Experimental gerontology, 2020, Volume: 133

    Topics: Animals; Carcinogenesis; Carcinogens; Carcinoma, Hepatocellular; Diabetes Mellitus, Type 2; Diethyln

2020
Novel complementary antitumour effects of celastrol and metformin by targeting IκBκB, apoptosis and NLRP3 inflammasome activation in diethylnitrosamine-induced murine hepatocarcinogenesis.
    Cancer chemotherapy and pharmacology, 2020, Volume: 85, Issue:2

    Topics: Animals; Antineoplastic Agents; Apoptosis; Carcinogenesis; Carcinoma, Hepatocellular; Diethylnitrosa

2020
Combretastatin A-4 disodium phosphate and low dose gamma irradiation suppress hepatocellular carcinoma by downregulating ROCK1 and VEGF gene expression.
    Molecular biology reports, 2020, Volume: 47, Issue:3

    Topics: Animals; Antineoplastic Agents, Phytogenic; Carcinoma, Hepatocellular; Chemoradiotherapy; Combined M

2020
Maternal Consumption of a Low-Isoflavone Soy Protein Isolate Diet Accelerates Chemically Induced Hepatic Carcinogenesis in Male Rat Offspring.
    Nutrients, 2020, Feb-22, Volume: 12, Issue:2

    Topics: Animals; Carcinogenesis; Carcinoma, Hepatocellular; Caseins; Diet, Vegetarian; Diethylnitrosamine; F

2020
Administration of Steamed and Freeze-Dried Mature Silkworm Larval Powder Prevents Hepatic Fibrosis and Hepatocellular Carcinogenesis by Blocking TGF-β/STAT3 Signaling Cascades in Rats.
    Cells, 2020, 02-28, Volume: 9, Issue:3

    Topics: Animals; Bombyx; Carcinogenesis; Carcinoma, Hepatocellular; Cell Proliferation; Diethylnitrosamine;

2020
MicroRNA-195 vector influence on the development of gradually induced hepatocellular carcinoma in murine model.
    Ultrastructural pathology, 2020, Mar-03, Volume: 44, Issue:2

    Topics: Animals; Carcinogens; Carcinoma, Hepatocellular; Diethylnitrosamine; Disease Models, Animal; Liver N

2020
Epigallocatechin Gallate Induces Hepatic Stellate Cell Senescence and Attenuates Development of Hepatocellular Carcinoma.
    Cancer prevention research (Philadelphia, Pa.), 2020, Volume: 13, Issue:6

    Topics: Animals; Anticarcinogenic Agents; Biomarkers; Carcinoma, Hepatocellular; Catechin; Cellular Senescen

2020
The potential chemotherapeutic effect of β-ionone and/or sorafenib against hepatocellular carcinoma via its antioxidant effect, PPAR-γ, FOXO-1, Ki-67, Bax, and Bcl-2 signaling pathways.
    Naunyn-Schmiedeberg's archives of pharmacology, 2020, Volume: 393, Issue:9

    Topics: Animals; Antineoplastic Agents; Apoptosis; bcl-2-Associated X Protein; Carcinoma, Hepatocellular; Ce

2020
Redox cycling of copper by coumarin-di(2-picolyl)amine hybrid molecule leads to ROS-mediated modulation of redox scavengers, DNA damage and cell death in diethylnitrosamine induced hepatocellular carcinoma.
    Bioorganic chemistry, 2020, Volume: 99

    Topics: Aminocoumarins; Animals; Antineoplastic Agents; Antioxidants; Carcinoma, Hepatocellular; Cell Death;

2020
The role of bone marrow-derived cells in the origin of liver cancer revealed by single-cell sequencing.
    Cancer biology & medicine, 2020, 02-15, Volume: 17, Issue:1

    Topics: Animals; Biomarkers, Tumor; Bone Marrow Cells; Bone Marrow Transplantation; Carcinoma, Hepatocellula

2020
Citral inhibits N-nitrosodiethylamine-induced hepatocellular carcinoma via modulation of antioxidants and xenobiotic-metabolizing enzymes.
    Environmental toxicology, 2020, Volume: 35, Issue:9

    Topics: Acyclic Monoterpenes; alpha-Fetoproteins; Animals; Antineoplastic Agents, Phytogenic; Antioxidants;

2020
Investigation of the Effects of Octreotide Agent on Oxidative Stress, 8-Hydroxy Deoxyguanosine in Experimental Hepatic Carcinogenesis Rat Model.
    Folia medica, 2020, 03-31, Volume: 62, Issue:1

    Topics: 2-Acetylaminofluorene; 8-Hydroxy-2'-Deoxyguanosine; Animals; Antineoplastic Agents, Hormonal; Carcin

2020
Differential changes in the pharmacokinetics of doxorubicin in diethylnitrosamine-induced hepatocarcinoma model rats.
    Xenobiotica; the fate of foreign compounds in biological systems, 2020, Volume: 50, Issue:10

    Topics: Animals; Carcinoma, Hepatocellular; Diethylnitrosamine; Doxorubicin; Liver Neoplasms; Rats

2020
Establishment of rat liver cancer cell lines with different metastatic potential.
    Scientific reports, 2020, 05-20, Volume: 10, Issue:1

    Topics: Animals; Carcinoma, Hepatocellular; Cell Line, Tumor; Diethylnitrosamine; Disease Models, Animal; Ka

2020
Functional Genetic Screening Enables Theranostic Molecular Imaging in Cancer.
    Clinical cancer research : an official journal of the American Association for Cancer Research, 2020, 09-01, Volume: 26, Issue:17

    Topics: Animals; Carbon-13 Magnetic Resonance Spectroscopy; Carcinoma, Hepatocellular; CRISPR-Cas Systems; D

2020
Effect of co-treatment with doxorubicin and verapamil loaded into chitosan nanoparticles on diethylnitrosamine-induced hepatocellular carcinoma in mice.
    Human & experimental toxicology, 2020, Volume: 39, Issue:11

    Topics: Animals; Antibiotics, Antineoplastic; Apoptosis; Calcium Channel Blockers; Carcinoma, Hepatocellular

2020
STAT3 and AKT signaling pathways mediate oncogenic role of NRSF in hepatocellular carcinoma.
    Acta biochimica et biophysica Sinica, 2020, Oct-19, Volume: 52, Issue:10

    Topics: Animals; Carcinogenesis; Carcinoma, Hepatocellular; Cell Movement; Cell Proliferation; Diethylnitros

2020
Time serial transcriptome reveals
    Cancer biology & medicine, 2020, 05-15, Volume: 17, Issue:2

    Topics: Animals; Carcinoma, Hepatocellular; Cell Line, Tumor; Cell Proliferation; Cytochrome P450 Family 2;

2020
Multigenerational maternal obesity increases the incidence of HCC in offspring via miR-27a-3p.
    Journal of hepatology, 2020, Volume: 73, Issue:3

    Topics: Aldehyde Dehydrogenase, Mitochondrial; Animals; Carcinoma, Hepatocellular; Coenzyme A Ligases; Diet,

2020
Vicenin-2 Treatment Attenuated the Diethylnitrosamine-Induced Liver Carcinoma and Oxidative Stress through Increased Apoptotic Protein Expression in Experimental Rats.
    Journal of environmental pathology, toxicology and oncology : official organ of the International Society for Environmental Toxicology and Cancer, 2020, Volume: 39, Issue:2

    Topics: 8-Hydroxy-2'-Deoxyguanosine; Animals; Antineoplastic Agents, Phytogenic; Antioxidants; Apigenin; Apo

2020
A Modified Protocol of Diethylnitrosamine Administration in Mice to Model Hepatocellular Carcinoma.
    International journal of molecular sciences, 2020, Jul-30, Volume: 21, Issue:15

    Topics: Animals; Carcinoma, Hepatocellular; Cell Proliferation; Diethylnitrosamine; Disease Models, Animal;

2020
Prognostic significance of SOCS1 and SOCS3 tumor suppressors and oncogenic signaling pathway genes in hepatocellular carcinoma.
    BMC cancer, 2020, Aug-17, Volume: 20, Issue:1

    Topics: Animals; Biomarkers, Tumor; Carcinoma, Hepatocellular; Cell Line, Tumor; Datasets as Topic; Diethyln

2020
Three-Dimensional Augmented Reality Visualization Informs Locoregional Therapy in a Translational Model of Hepatocellular Carcinoma.
    Journal of vascular and interventional radiology : JVIR, 2020, Volume: 31, Issue:10

    Topics: Acrylic Resins; Animals; Augmented Reality; Carcinoma, Hepatocellular; Diethylnitrosamine; Embolizat

2020
TREM-2 defends the liver against hepatocellular carcinoma through multifactorial protective mechanisms.
    Gut, 2021, Volume: 70, Issue:7

    Topics: Adult; Aged; Animals; Carcinogenesis; Carcinoma, Hepatocellular; Cell Line, Tumor; Cell Proliferatio

2021
Cancer-Associated Fibroblasts Provide a Stromal Niche for Liver Cancer Organoids That Confers Trophic Effects and Therapy Resistance.
    Cellular and molecular gastroenterology and hepatology, 2021, Volume: 11, Issue:2

    Topics: Animals; Antineoplastic Agents; Cancer-Associated Fibroblasts; Carcinoma, Hepatocellular; Coculture

2021
Tristetraprolin Promotes Hepatic Inflammation and Tumor Initiation but Restrains Cancer Progression to Malignancy.
    Cellular and molecular gastroenterology and hepatology, 2021, Volume: 11, Issue:2

    Topics: Animals; Carcinogenesis; Carcinoma, Hepatocellular; Cell Line, Tumor; Datasets as Topic; Diethylnitr

2021
Epigallocatechin gallate induces chemopreventive effects on rats with diethylnitrosamine‑induced liver cancer via inhibition of cell division cycle 25A.
    Molecular medicine reports, 2020, Volume: 22, Issue:5

    Topics: Animals; Antineoplastic Agents, Phytogenic; Carcinoma, Hepatocellular; Catechin; cdc25 Phosphatases;

2020
Annona senegalensis extract demonstrates anticancer properties in N-diethylnitrosamine-induced hepatocellular carcinoma in male Wistar rats.
    Biomedicine & pharmacotherapy = Biomedecine & pharmacotherapie, 2020, Volume: 131

    Topics: Animals; Annona; Antineoplastic Agents, Phytogenic; Antioxidants; Carbon Tetrachloride; Carcinoma, H

2020
Spirulina inhibits hepatocellular carcinoma through activating p53 and apoptosis and suppressing oxidative stress and angiogenesis.
    Life sciences, 2021, Jan-15, Volume: 265

    Topics: Animals; Anticarcinogenic Agents; Antioxidants; Apoptosis; Carcinoma, Hepatocellular; Diethylnitrosa

2021
Hepatic lipid profile in mice fed a choline-deficient, low-methionine diet resembles human non-alcoholic fatty liver disease.
    Lipids in health and disease, 2020, Dec-09, Volume: 19, Issue:1

    Topics: alpha-Fetoproteins; Animal Feed; Animals; Carcinoma, Hepatocellular; Ceramides; Choline; Choline Def

2020
Nimbolide inhibits tumor growth by restoring hepatic tight junction protein expression and reduced inflammation in an experimental hepatocarcinogenesis.
    World journal of gastroenterology, 2020, Dec-07, Volume: 26, Issue:45

    Topics: Animals; Carcinogenesis; Carcinoma, Hepatocellular; Diethylnitrosamine; Inflammation; Limonins; Live

2020
Romidepsin hepatocellular carcinoma suppression in mice is associated with deregulated gene expression of bone morphogenetic protein and Notch signaling pathway components.
    Molecular biology reports, 2021, Volume: 48, Issue:1

    Topics: Animals; Bone Morphogenetic Protein 2; Bone Morphogenetic Protein 7; Carcinoma, Hepatocellular; Cell

2021
Inhibitory and ameliorative effect of heliomycin derived from actinomycete on induced hepatocellular carcinoma in rats.
    Naunyn-Schmiedeberg's archives of pharmacology, 2021, Volume: 394, Issue:6

    Topics: Actinobacteria; Alanine Transaminase; alpha-Fetoproteins; Animals; Anticarcinogenic Agents; Aspartat

2021
Dietary modulations of folic acid affect the development of diethylnitrosamine induced hepatocellular carcinoma in a rat model.
    Journal of molecular histology, 2021, Volume: 52, Issue:2

    Topics: Animals; Carcinoma, Hepatocellular; Diethylnitrosamine; Folic Acid; Liver; Liver Cirrhosis; Liver Ne

2021
Hyperpolyploidization of hepatocyte initiates preneoplastic lesion formation in the liver.
    Nature communications, 2021, 01-28, Volume: 12, Issue:1

    Topics: Animals; Carcinoma, Hepatocellular; Cell Transformation, Neoplastic; Cells, Cultured; Diethylnitrosa

2021
Persistent hepatocyte apoptosis promotes tumorigenesis from diethylnitrosamine-transformed hepatocytes through increased oxidative stress, independent of compensatory liver regeneration.
    Scientific reports, 2021, 02-09, Volume: 11, Issue:1

    Topics: Animals; Apoptosis; Carcinoma, Hepatocellular; Cell Transformation, Neoplastic; Diethylnitrosamine;

2021
Inhibition of androgen/AR signaling inhibits diethylnitrosamine (DEN) induced tumour initiation and remodels liver immune cell networks.
    Scientific reports, 2021, 02-11, Volume: 11, Issue:1

    Topics: Androgens; Animals; Carcinogenesis; Carcinogens; Carcinoma, Hepatocellular; Cytochrome P-450 CYP2E1;

2021
Relationship between locomotor activity rhythm and corticosterone levels during HCC development, progression, and treatment in a mouse model.
    Journal of pineal research, 2021, Volume: 70, Issue:3

    Topics: Activity Cycles; Animals; Behavior, Animal; Biomarkers; Carcinoma, Hepatocellular; Chronotherapy; Ci

2021
Morus nigra L. extract prolongs survival of rats with hepatocellular carcinoma.
    Phytotherapy research : PTR, 2021, Volume: 35, Issue:6

    Topics: Alanine Transaminase; Animals; Antioxidants; Aspartate Aminotransferases; Bilirubin; Carcinoma, Hepa

2021
Microbiome, fibrosis and tumor networks in a non-alcoholic steatohepatitis model of a choline-deficient high-fat diet using diethylnitrosamine.
    Digestive and liver disease : official journal of the Italian Society of Gastroenterology and the Italian Association for the Study of the Liver, 2021, Volume: 53, Issue:11

    Topics: Alkylating Agents; Animals; Carcinogenesis; Carcinoma, Hepatocellular; Choline Deficiency; Cyclin-De

2021
A highly selective and potent CXCR4 antagonist for hepatocellular carcinoma treatment.
    Proceedings of the National Academy of Sciences of the United States of America, 2021, 03-30, Volume: 118, Issue:13

    Topics: Animals; Antineoplastic Agents; Antineoplastic Combined Chemotherapy Protocols; Carcinoma, Hepatocel

2021
Enrichment of progenitor cells by 2-acetylaminofluorene accelerates liver carcinogenesis induced by diethylnitrosamine in vivo.
    Molecular carcinogenesis, 2021, Volume: 60, Issue:6

    Topics: 2-Acetylaminofluorene; Animals; Carcinogens; Carcinoma, Hepatocellular; Cell Proliferation; Diethyln

2021
Attenuation of diethyl nitrosamine-induced hepatocellular carcinoma by taxifolin and/or alogliptin: The interplay between toll-like receptor 4, transforming growth factor beta-1, and apoptosis.
    Human & experimental toxicology, 2021, Volume: 40, Issue:10

    Topics: Animals; Anti-Inflammatory Agents, Non-Steroidal; Apoptosis; Carcinoma, Hepatocellular; Diethylnitro

2021
Defective apoptotic cell contractility provokes sterile inflammation, leading to liver damage and tumour suppression.
    eLife, 2021, 04-19, Volume: 10

    Topics: Animals; Apoptosis; Carcinoma, Hepatocellular; Caspases; Cell Shape; Chemical and Drug Induced Liver

2021
Myelocytomatosis-Protein Arginine N-Methyltransferase 5 Axis Defines the Tumorigenesis and Immune Response in Hepatocellular Carcinoma.
    Hepatology (Baltimore, Md.), 2021, Volume: 74, Issue:4

    Topics: Adult; Aged; Aged, 80 and over; Alkylating Agents; Animals; Arginine; Carcinogenesis; Carcinoma, Hep

2021
Therapeutic Role of Bone Marrow-Derived Mesenchymal Stem Cells in Controlling Prognosis of Hepatocellular Carcinoma in a Murine Model.
    Experimental and clinical transplantation : official journal of the Middle East Society for Organ Transplantation, 2022, Volume: 20, Issue:1

    Topics: Animals; Bone Marrow; Carcinoma, Hepatocellular; Diethylnitrosamine; Disease Models, Animal; Humans;

2022
Periostin deficiency reduces diethylnitrosamine-induced liver cancer in mice by decreasing hepatic stellate cell activation and cancer cell proliferation.
    The Journal of pathology, 2021, Volume: 255, Issue:2

    Topics: Animals; Carcinogens; Carcinoma, Hepatocellular; Cell Adhesion Molecules; Cell Proliferation; Diethy

2021
The Protective Role of Etoricoxib Against Diethylnitrosamine/2-acetylaminofluorene- Induced Hepatocarcinogenesis in Wistar Rats: The Impact of NF-κB/COX-2/PGE2 Signaling.
    Current molecular pharmacology, 2022, Volume: 15, Issue:1

    Topics: 2-Acetylaminofluorene; Animals; Carcinoma, Hepatocellular; Cyclooxygenase 2; Diethylnitrosamine; Din

2022
Chemopreventive Effect of
    Molecules (Basel, Switzerland), 2021, Jul-12, Volume: 26, Issue:14

    Topics: Animals; Anticarcinogenic Agents; Carcinogenesis; Carcinogens; Carcinoma, Hepatocellular; Clusiaceae

2021
The Therapeutic Effect of Myrrh (Commiphora molmol) and Doxorubicin on Diethylnitrosamine Induced Hepatocarcinogenesis in Male Albino Rats.
    Asian Pacific journal of cancer prevention : APJCP, 2021, Jul-01, Volume: 22, Issue:7

    Topics: Animals; Antioxidants; Biomarkers, Tumor; Carcinoma, Hepatocellular; Commiphora; Diethylnitrosamine;

2021
Ameliorative potential of manganese nanoparticles with low-level ionizing radiation against experimentally induced hepatocarcinogenesis.
    Environmental science and pollution research international, 2021, Volume: 28, Issue:46

    Topics: Animals; Carcinoma, Hepatocellular; Diethylnitrosamine; Gamma Rays; Liver; Liver Neoplasms, Experime

2021
Albendazole-loaded cubosomes interrupt the ERK1/2-HIF-1α-p300/CREB axis in mice intoxicated with diethylnitrosamine: A new paradigm in drug repurposing for the inhibition of hepatocellular carcinoma progression.
    Biomedicine & pharmacotherapy = Biomedecine & pharmacotherapie, 2021, Volume: 142

    Topics: Albendazole; Angiogenesis Inhibitors; Animals; Antineoplastic Agents; Biological Availability; Carci

2021
Vidatox 30 CH has tumor activating effect in hepatocellular carcinoma.
    Scientific reports, 2017, 03-21, Volume: 7

    Topics: Animals; Antineoplastic Agents; Carcinoma, Hepatocellular; Cell Cycle Proteins; Cell Line; Cell Line

2017
The chemo-prophylactic efficacy of an ethanol Moringa oleifera leaf extract against hepatocellular carcinoma in rats.
    Pharmaceutical biology, 2017, Volume: 55, Issue:1

    Topics: Animals; Anticarcinogenic Agents; Antioxidants; Apoptosis; Apoptosis Regulatory Proteins; Biomarkers

2017
Liver carcinogenesis by FOS-dependent inflammation and cholesterol dysregulation.
    The Journal of experimental medicine, 2017, 05-01, Volume: 214, Issue:5

    Topics: Animals; Carcinoma, Hepatocellular; Cell Transformation, Neoplastic; Cholesterol; Diethylnitrosamine

2017
CHK2 overexpression and mislocalisation within mitotic structures enhances chromosomal instability and hepatocellular carcinoma progression.
    Gut, 2018, Volume: 67, Issue:2

    Topics: Animals; Aurora Kinase B; Biological Transport; Carcinogens; Carcinoma, Hepatocellular; Cell Nucleus

2018
In vivo antitumour potential of camel's milk against hepatocellular carcinoma in rats and its improvement of cisplatin renal side effects.
    Pharmaceutical biology, 2017, Volume: 55, Issue:1

    Topics: Animals; Anticarcinogenic Agents; Antioxidants; Camelus; Carcinoma, Hepatocellular; Cisplatin; Dieth

2017
Deriving and testing of dysplastic murine hepatocytes: A new platform in liver cancer research.
    Experimental cell research, 2017, 07-01, Volume: 356, Issue:1

    Topics: Animals; Apoptosis; Carcinoma, Hepatocellular; Cell Cycle; Cell Proliferation; Cell Transformation,

2017
Relative Initial Weight Is Associated with Improved Survival without Altering Tumor Latency in a Translational Rat Model of Diethylnitrosamine-Induced Hepatocellular Carcinoma and Transarterial Embolization.
    Journal of vascular and interventional radiology : JVIR, 2017, Volume: 28, Issue:7

    Topics: Animals; Body Weight; Carcinoma, Hepatocellular; Diethylnitrosamine; Disease Models, Animal; Emboliz

2017
Time-caloric restriction inhibits the neoplastic transformation of cirrhotic liver in rats treated with diethylnitrosamine.
    Carcinogenesis, 2017, 08-01, Volume: 38, Issue:8

    Topics: Animals; Caloric Restriction; Carcinogenesis; Carcinoma, Hepatocellular; Cell Transformation, Neopla

2017
Tg737 regulates epithelial-mesenchymal transition and cancer stem cell properties via a negative feedback circuit between Snail and HNF4α during liver stem cell malignant transformation.
    Cancer letters, 2017, 08-28, Volume: 402

    Topics: Animals; Apoptosis; Carcinoma, Hepatocellular; Cell Line; Cell Proliferation; Cell Transformation, N

2017
Chronic Alcohol Consumption Promotes Diethylnitrosamine-Induced Hepatocarcinogenesis via Immune Disturbances.
    Scientific reports, 2017, 05-31, Volume: 7, Issue:1

    Topics: Alcohol Drinking; Animals; Carcinogenesis; Carcinoma, Hepatocellular; Diethylnitrosamine; Disease Pr

2017
Chitosan nanoparticles from marine squid protect liver cells against N-diethylnitrosoamine-induced hepatocellular carcinoma.
    Carbohydrate polymers, 2017, Sep-01, Volume: 171

    Topics: Animals; Antioxidants; Carcinoma, Hepatocellular; Chitosan; Decapodiformes; Diethylnitrosamine; Lipi

2017
Triterpenoids principle of Wedelia calendulacea attenuated diethynitrosamine-induced hepatocellular carcinoma via down-regulating oxidative stress, inflammation and pathology via NF-kB pathway.
    Inflammopharmacology, 2018, Volume: 26, Issue:1

    Topics: Animals; Antioxidants; Apoptosis; Carcinoma, Hepatocellular; Cell Line, Tumor; Cytokines; Diethylnit

2018
Gallic acid against hepatocellular carcinoma: An integrated scheme of the potential mechanisms of action from in vivo study.
    Tumour biology : the journal of the International Society for Oncodevelopmental Biology and Medicine, 2017, Volume: 39, Issue:6

    Topics: alpha-Fetoproteins; Animals; Apoptosis; Biomarkers, Tumor; Carcinoma, Hepatocellular; Diethylnitrosa

2017
MicroRNA-148a deficiency promotes hepatic lipid metabolism and hepatocarcinogenesis in mice.
    Cell death & disease, 2017, 07-13, Volume: 8, Issue:7

    Topics: Animals; Carcinoma, Hepatocellular; Cell Line, Tumor; Cholesterol; Diethylnitrosamine; Down-Regulati

2017
Role of insulin receptor substrates in the progression of hepatocellular carcinoma.
    Scientific reports, 2017, 07-14, Volume: 7, Issue:1

    Topics: Animals; beta Catenin; Carcinogenesis; Carcinoma, Hepatocellular; Diethylnitrosamine; Disease Progre

2017
An endogenous DNA adduct as a prognostic biomarker for hepatocarcinogenesis and its prevention by Theaphenon E in mice.
    Hepatology (Baltimore, Md.), 2018, Volume: 67, Issue:1

    Topics: Animals; Biomarkers, Tumor; Carcinogenesis; Carcinoma, Hepatocellular; Diethylnitrosamine; Disease M

2018
Evaluation of the antitumor activity of platinum nanoparticles in the treatment of hepatocellular carcinoma induced in rats.
    Tumour biology : the journal of the International Society for Oncodevelopmental Biology and Medicine, 2017, Volume: 39, Issue:7

    Topics: Animals; Antioxidants; Carcinoma, Hepatocellular; Diethylnitrosamine; Gene Expression Regulation, Ne

2017
Hepatocyte specific TIMP3 expression prevents diet dependent fatty liver disease and hepatocellular carcinoma.
    Scientific reports, 2017, 07-27, Volume: 7, Issue:1

    Topics: ADAM17 Protein; Albumins; Animals; ATP Binding Cassette Transporter, Subfamily B; Carcinogenesis; Ca

2017
Umbelliferon-α-d-glucopyranosyl-(2
    Biomedicine & pharmacotherapy = Biomedecine & pharmacotherapie, 2017, Volume: 94

    Topics: Animals; Anticarcinogenic Agents; Antioxidants; Carcinoma, Hepatocellular; Cell Proliferation; Cytok

2017
Nelumbo nucifera leaf extract treatment attenuated preneoplastic lesions and oxidative stress in the livers of diethylnitrosamine-treated rats.
    Environmental toxicology, 2017, Volume: 32, Issue:11

    Topics: Alanine Transaminase; Animals; Antineoplastic Agents, Phytogenic; Antioxidants; Aspartate Aminotrans

2017
Gamma-irradiated β-glucan modulates signaling molecular targets of hepatocellular carcinoma in rats.
    Tumour biology : the journal of the International Society for Oncodevelopmental Biology and Medicine, 2017, Volume: 39, Issue:8

    Topics: Animals; beta-Glucans; Carcinoma, Hepatocellular; Diethylnitrosamine; Disease Models, Animal; Gamma

2017
Anti-cancer effects of Ajwa dates (Phoenix dactylifera L.) in diethylnitrosamine induced hepatocellular carcinoma in Wistar rats.
    BMC complementary and alternative medicine, 2017, Aug-22, Volume: 17, Issue:1

    Topics: Animals; Antineoplastic Agents; Antioxidants; Carcinoma, Hepatocellular; Cytokines; Diethylnitrosami

2017
Gab2 mediates hepatocellular carcinogenesis by integrating multiple signaling pathways.
    FASEB journal : official publication of the Federation of American Societies for Experimental Biology, 2017, Volume: 31, Issue:12

    Topics: Adaptor Proteins, Signal Transducing; Animals; Apoptosis; Blotting, Western; Carcinoma, Hepatocellul

2017
Sequential analysis and staging of a diethylnitrosamine-induced hepatocellular carcinoma in male Wistar albino rat model.
    Canadian journal of physiology and pharmacology, 2017, Volume: 95, Issue:12

    Topics: Animals; Body Weight; Carcinoma, Hepatocellular; Diethylnitrosamine; Disease Models, Animal; Lipids;

2017
Novel mutations in transthyretin gene associated with hepatocellular carcinoma.
    Molecular carcinogenesis, 2018, Volume: 57, Issue:1

    Topics: 2-Acetylaminofluorene; Amino Acid Sequence; Animals; Apolipoprotein A-I; Biomarkers, Tumor; Carcinom

2018
In vitro, In silico and In vivo Antitumor Activity of Crude Methanolic Extract of Tetilla dactyloidea (Carter, 1869) on DEN Induced HCC in a Rat Model.
    Biomedicine & pharmacotherapy = Biomedecine & pharmacotherapie, 2017, Volume: 95

    Topics: Animals; Antineoplastic Agents; Antioxidants; Biomarkers, Tumor; Body Weight; Carcinoma, Hepatocellu

2017
Fabrication, optimization, and characterization of umbelliferone β-D-galactopyranoside-loaded PLGA nanoparticles in treatment of hepatocellular carcinoma: in vitro and in vivo studies.
    International journal of nanomedicine, 2017, Volume: 12

    Topics: Animals; Antineoplastic Agents, Phytogenic; Apoptosis; Carcinoma, Hepatocellular; Cell Line, Tumor;

2017
Activation of SRY accounts for male-specific hepatocarcinogenesis: Implication in gender disparity of hepatocellular carcinoma.
    Cancer letters, 2017, 12-01, Volume: 410

    Topics: Animals; Carcinoma, Hepatocellular; Cell Transformation, Neoplastic; Cyclin D1; Diethylnitrosamine;

2017
Voluntary Wheel Running Reduces the Acute Inflammatory Response to Liver Carcinogen in a Sex-specific Manner.
    Cancer prevention research (Philadelphia, Pa.), 2017, Volume: 10, Issue:12

    Topics: Acute Disease; Animals; Carcinogens; Carcinoma, Hepatocellular; Choice Behavior; Diethylnitrosamine;

2017
Anti-hepatocarcinoma effect of cordycepin against NDEA-induced hepatocellular carcinomas via the PI3K/Akt/mTOR and Nrf2/HO-1/NF-κB pathway in mice.
    Biomedicine & pharmacotherapy = Biomedecine & pharmacotherapie, 2017, Volume: 95

    Topics: Animals; Anticarcinogenic Agents; Carcinoma, Hepatocellular; Deoxyadenosines; Diethylnitrosamine; Do

2017
Identification of (Z)-2,3-Diphenylacrylonitrileas Anti-Cancer Molecule in Persian Gulf Sea Cucumber Holothuria parva.
    Marine drugs, 2017, Oct-16, Volume: 15, Issue:10

    Topics: 2-Acetylaminofluorene; Acrylonitrile; Animals; Antineoplastic Agents; Carcinoma, Hepatocellular; Chr

2017
Eicosapentaenoic acid attenuates obesity-related hepatocellular carcinogenesis.
    Carcinogenesis, 2018, 01-12, Volume: 39, Issue:1

    Topics: Animals; Carcinogenesis; Carcinogens; Carcinoma, Hepatocellular; Diet, High-Fat; Diethylnitrosamine;

2018
Intravenous miR-144 inhibits tumor growth in diethylnitrosamine-induced hepatocellular carcinoma in mice.
    Tumour biology : the journal of the International Society for Oncodevelopmental Biology and Medicine, 2017, Volume: 39, Issue:10

    Topics: Administration, Intravenous; Animals; Apoptosis; Carcinogenesis; Carcinoma, Hepatocellular; Cell Pro

2017
Anticancer potential of ZnO nanoparticle-ferulic acid conjugate on Huh-7 and HepG2 cells and diethyl nitrosamine induced hepatocellular cancer on Wistar albino rat.
    Nanomedicine : nanotechnology, biology, and medicine, 2018, Volume: 14, Issue:2

    Topics: Alkylating Agents; Animals; Antineoplastic Agents; Apoptosis; Carcinoma, Hepatocellular; Cell Prolif

2018
Peretinoin, an acyclic retinoid, inhibits hepatocarcinogenesis by suppressing sphingosine kinase 1 expression in vitro and in vivo.
    Scientific reports, 2017, 12-05, Volume: 7, Issue:1

    Topics: Animals; Antineoplastic Agents; Carcinoma, Hepatocellular; Cell Line, Tumor; Diethylnitrosamine; Gen

2017
Abberent expression of NOR1 protein in tumor associated macrophages contributes to the development of DEN-induced hepatocellular carcinoma.
    Journal of cellular physiology, 2018, Volume: 233, Issue:6

    Topics: Animals; Arginase; beta-N-Acetylhexosaminidases; Carcinoma, Hepatocellular; Diethylnitrosamine; Fema

2018
The chemokine receptor CCR10 promotes inflammation-driven hepatocarcinogenesis via PI3K/Akt pathway activation.
    Cell death & disease, 2018, 02-14, Volume: 9, Issue:2

    Topics: Adolescent; Adult; Aged; Animals; Apoptosis; Carbon Tetrachloride; Carcinogenesis; Carcinoma, Hepato

2018
Higher CYP2E1 Activity Correlates with Hepatocarcinogenesis Induced by Diethylnitrosamine.
    The Journal of pharmacology and experimental therapeutics, 2018, Volume: 365, Issue:2

    Topics: Animals; Carcinogenesis; Carcinoma, Hepatocellular; Cytochrome P-450 CYP2E1; Cytochrome P-450 CYP2E1

2018
Effect of diosmin on apoptotic signaling molecules in N-nitrosodiethylamine-induced hepatocellular carcinoma in experimental rats.
    Molecular and cellular biochemistry, 2018, Volume: 449, Issue:1-2

    Topics: Animals; Apoptosis; Carcinoma, Hepatocellular; Diethylnitrosamine; Diosmin; Liver Neoplasms, Experim

2018
In vivo attenuation of angiogenesis in hepatocellular carcinoma by Nigella sativa
    Turkish journal of medical sciences, 2018, Feb-23, Volume: 48, Issue:1

    Topics: Animals; Antineoplastic Agents, Phytogenic; Carcinoma, Hepatocellular; Diethylnitrosamine; Liver; Li

2018
Ellagic Acid Holds Promise Against Hepatocellular Carcinoma\ in an Experimental Model: Mechanisms of Action
    Asian Pacific journal of cancer prevention : APJCP, 2018, Feb-26, Volume: 19, Issue:2

    Topics: Alkylating Agents; alpha-Fetoproteins; Animals; Biomarkers, Tumor; Carcinoma, Hepatocellular; Cells,

2018
Dual role for inositol-requiring enzyme 1α in promoting the development of hepatocellular carcinoma during diet-induced obesity in mice.
    Hepatology (Baltimore, Md.), 2018, Volume: 68, Issue:2

    Topics: Animals; Carcinoma, Hepatocellular; Cell Proliferation; Cytokines; Diet, High-Fat; Diethylnitrosamin

2018
Hepatocyte Wnts Are Dispensable During Diethylnitrosamine and Carbon Tetrachloride-Induced Injury and Hepatocellular Cancer.
    Gene expression, 2018, 08-22, Volume: 18, Issue:3

    Topics: Animals; beta Catenin; Cadherins; Carbon Tetrachloride; Carcinoma, Hepatocellular; Diethylnitrosamin

2018
β2 spectrin-mediated differentiation repressed the properties of liver cancer stem cells through β-catenin.
    Cell death & disease, 2018, 04-01, Volume: 9, Issue:4

    Topics: AC133 Antigen; Animals; beta Catenin; Carcinoma, Hepatocellular; Cell Differentiation; Cell Line, Tu

2018
Therapeutic role of calcium and vitamin K3 in chemically induced hepatocarcinogenesis - new tools for cancer treatment.
    Archives of physiology and biochemistry, 2019, Volume: 125, Issue:3

    Topics: Alkylating Agents; Animals; Biomarkers; Calcium; Carcinoma, Hepatocellular; Caspase 3; Diethylnitros

2019
The Association of Peroxiredoxin 4 with the Initiation and Progression of Hepatocellular Carcinoma.
    Antioxidants & redox signaling, 2019, 04-01, Volume: 30, Issue:10

    Topics: Aged; Animals; Apoptosis; Carcinoma, Hepatocellular; Cell Line, Tumor; Cell Proliferation; Cohort St

2019
Impact of Mesenchymal Stem Cells and Vitamin D on Transforming Growth Factor Beta Signaling Pathway in Hepatocellular Carcinoma in Rats
    Asian Pacific journal of cancer prevention : APJCP, 2018, Apr-25, Volume: 19, Issue:4

    Topics: Alkylating Agents; Animals; Carcinoma, Hepatocellular; Cells, Cultured; Diethylnitrosamine; Female;

2018
WWOX controls hepatic HIF1α to suppress hepatocyte proliferation and neoplasia.
    Cell death & disease, 2018, 05-01, Volume: 9, Issue:5

    Topics: Animals; Carcinoma, Hepatocellular; Cell Line, Tumor; Cell Proliferation; Diet, High-Fat; Diethylnit

2018
HCC Specific Protein Network Involving Interactions of EGFR with A-Raf and Transthyretin: Experimental Analysis and Computational Biology Correlates.
    Anti-cancer agents in medicinal chemistry, 2018, Volume: 18, Issue:8

    Topics: Animals; Carcinoma, Hepatocellular; Computational Biology; Diethylnitrosamine; Dose-Response Relatio

2018
Mechanisms of MAFG Dysregulation in Cholestatic Liver Injury and Development of Liver Cancer.
    Gastroenterology, 2018, Volume: 155, Issue:2

    Topics: Animals; Bile Duct Neoplasms; Carcinoma, Hepatocellular; Cell Line, Tumor; Cholangiocarcinoma; Chole

2018
Targeting Liver Cancer and Associated Pathologies in Mice with a Mitochondrial VDAC1-Based Peptide.
    Neoplasia (New York, N.Y.), 2018, Volume: 20, Issue:6

    Topics: Animals; Apoptosis; Carcinoma, Hepatocellular; Cell Line, Tumor; Cell Proliferation; Diethylnitrosam

2018
Caspase-3 suppresses diethylnitrosamine-induced hepatocyte death, compensatory proliferation and hepatocarcinogenesis through inhibiting p38 activation.
    Cell death & disease, 2018, 05-01, Volume: 9, Issue:5

    Topics: Animals; Carcinoma, Hepatocellular; Caspase 3; Cell Death; Cell Proliferation; Cell Transformation,

2018
Genetic inactivation of Nrf2 prevents clonal expansion of initiated cells in a nutritional model of rat hepatocarcinogenesis.
    Journal of hepatology, 2018, Volume: 69, Issue:3

    Topics: Alkylating Agents; Animals; Carcinogenesis; Carcinoma, Hepatocellular; Choline; Diet; Diethylnitrosa

2018
Melatonin modulates dysregulated circadian clocks in mice with diethylnitrosamine-induced hepatocellular carcinoma.
    Journal of pineal research, 2018, Volume: 65, Issue:3

    Topics: Animals; Carcinoma, Hepatocellular; Cell Line, Tumor; Circadian Clocks; Diethylnitrosamine; Endoplas

2018
Resistive Part of Impedance as a Possible Indicator of Hepatocellular Carcinoma.
    Archives of medical research, 2018, Volume: 49, Issue:2

    Topics: Animals; Carcinoma, Hepatocellular; Diethylnitrosamine; Electric Impedance; Liver; Liver Neoplasms;

2018
Inhibitory effects of mushroom extracts on progression of carcinogenesis in mice.
    Journal of experimental therapeutics & oncology, 2018, Volume: 12, Issue:3

    Topics: Agaricus; Animals; Antineoplastic Agents; Biomarkers, Tumor; Carcinoma, Hepatocellular; Cell Transfo

2018
Diethylnitrosamine Increases Proliferation in Early Stages of Hepatic Carcinogenesis in Insulin-Treated Type 1 Diabetic Mice.
    BioMed research international, 2018, Volume: 2018

    Topics: Animals; Carcinoma, Hepatocellular; Cell Proliferation; Diabetes Mellitus, Experimental; Diabetes Me

2018
Perindopril, fosinopril and losartan inhibited the progression of diethylnitrosamine-induced hepatocellular carcinoma in mice via the inactivation of nuclear transcription factor kappa-B.
    Toxicology letters, 2018, Oct-01, Volume: 295

    Topics: Angiotensin II Type 1 Receptor Blockers; Angiotensin-Converting Enzyme Inhibitors; Animals; Antineop

2018
Correlation between HSD17B4 expression in rat liver cancer tissues and inflammation or proliferation.
    European review for medical and pharmacological sciences, 2018, Volume: 22, Issue:11

    Topics: Animals; Carcinoma, Hepatocellular; Cell Proliferation; Diethylnitrosamine; Estradiol; Extracellular

2018
From hepatofibrosis to hepatocarcinogenesis: Higher cytochrome P450 2E1 activity is a potential risk factor.
    Molecular carcinogenesis, 2018, Volume: 57, Issue:10

    Topics: Adult; Animals; Carcinogenesis; Carcinoma, Hepatocellular; Cytochrome P-450 CYP2E1; Diethylnitrosami

2018
Multiple liver insults synergize to accelerate experimental hepatocellular carcinoma.
    Scientific reports, 2018, 07-06, Volume: 8, Issue:1

    Topics: Alkylating Agents; Animals; Carcinoma, Hepatocellular; Chemical and Drug Induced Liver Injury; Diet,

2018
FUN14 Domain-Containing 1-Mediated Mitophagy Suppresses Hepatocarcinogenesis by Inhibition of Inflammasome Activation in Mice.
    Hepatology (Baltimore, Md.), 2019, Volume: 69, Issue:2

    Topics: Animals; Carcinoma, Hepatocellular; Caspase 1; Diethylnitrosamine; Hepatocytes; Humans; Inflammasome

2019
Anticancer effects of echinacoside in hepatocellular carcinoma mouse model and HepG2 cells.
    Journal of cellular physiology, 2019, Volume: 234, Issue:2

    Topics: Animals; Anticarcinogenic Agents; Antineoplastic Agents; Apoptosis; Carcinoma, Hepatocellular; Cell

2019
Astrocyte Elevated Gene-1 Regulates Macrophage Activation in Hepatocellular Carcinogenesis.
    Cancer research, 2018, 11-15, Volume: 78, Issue:22

    Topics: Animals; Carcinoma, Hepatocellular; Cell Adhesion; Cell Differentiation; Cell Line, Tumor; Cell Move

2018
Fibrosis-associated hepatocarcinogenesis revisited: Establishing standard medium-term chemically-induced male and female models.
    PloS one, 2018, Volume: 13, Issue:9

    Topics: Animals; Carbon Tetrachloride; Carcinoma, Hepatocellular; Diethylnitrosamine; Disease Susceptibility

2018
COL6A3-derived endotrophin links reciprocal interactions among hepatic cells in the pathology of chronic liver disease.
    The Journal of pathology, 2019, Volume: 247, Issue:1

    Topics: Animals; Apoptosis; Carbon Tetrachloride; Carcinoma, Hepatocellular; Cell Communication; Chemical an

2019
Mice lacking RAP1 show early onset and higher rates of DEN-induced hepatocellular carcinomas in female mice.
    PloS one, 2018, Volume: 13, Issue:10

    Topics: Age of Onset; Animals; Carcinoma, Hepatocellular; Cell Proliferation; Diethylnitrosamine; Female; Hi

2018
Elevated Expression of A-Raf and FA2H in Hepatocellular Carcinoma is Associated with Lipid Metabolism Dysregulation and Cancer Progression.
    Anti-cancer agents in medicinal chemistry, 2019, Volume: 19, Issue:2

    Topics: Animals; Carcinoma, Hepatocellular; Diethylnitrosamine; Humans; Lipid Metabolism; Liver Neoplasms; M

2019
The Ethanol Supernatant Extracts of Liushenwan Could Alleviate Nanodiethylnitrosamine-Induced Liver Cancer in Mice.
    Canadian journal of gastroenterology & hepatology, 2018, Volume: 2018

    Topics: Administration, Oral; Alanine Transaminase; Animals; Antineoplastic Agents; Aspartate Aminotransfera

2018
Pioglitazone Reduces Hepatocellular Carcinoma Development in Two Rodent Models of Cirrhosis.
    Journal of gastrointestinal surgery : official journal of the Society for Surgery of the Alimentary Tract, 2019, Volume: 23, Issue:1

    Topics: Adiponectin; AMP-Activated Protein Kinases; Animals; Carcinoma, Hepatocellular; Choline; Diet, High-

2019
Compound Astragalus and Salvia miltiorrhiza extract inhibits hepatocellular carcinoma progression via miR-145/miR-21 mediated Smad3 phosphorylation.
    Journal of ethnopharmacology, 2019, Mar-01, Volume: 231

    Topics: Animals; Antineoplastic Agents, Phytogenic; Astragalus Plant; Carcinoma, Hepatocellular; Diethylnitr

2019
Dietary Tomato Powder Inhibits High-Fat Diet-Promoted Hepatocellular Carcinoma with Alteration of Gut Microbiota in Mice Lacking Carotenoid Cleavage Enzymes.
    Cancer prevention research (Philadelphia, Pa.), 2018, Volume: 11, Issue:12

    Topics: Animals; beta-Carotene 15,15'-Monooxygenase; Carcinoma, Hepatocellular; Carotenoids; Diet, High-Fat;

2018
The Adenosine Monophosphate (AMP) Analog, 5-Aminoimidazole-4-Carboxamide Ribonucleotide (AICAR) Inhibits Hepatosteatosis and Liver Tumorigenesis in a High-Fat Diet Murine Model Treated with Diethylnitrosamine (DEN).
    Medical science monitor : international medical journal of experimental and clinical research, 2018, Nov-26, Volume: 24

    Topics: Adenosine Monophosphate; Aminoimidazole Carboxamide; AMP-Activated Protein Kinases; Animals; Carcino

2018
Improving Anti-Cancer Potentiality and Bioavailability of Gallic Acid by Designing Polymeric Nanocomposite Formulation
    Asian Pacific journal of cancer prevention : APJCP, 2018, Nov-29, Volume: 19, Issue:11

    Topics: Animals; Biological Availability; Carcinoma, Hepatocellular; Diethylnitrosamine; Drug Compounding; F

2018
Dextrose modified bilosomes for peroral delivery: improved therapeutic potential and stability of silymarin in diethylnitrosamine-induced hepatic carcinoma in rats.
    Journal of liposome research, 2019, Volume: 29, Issue:3

    Topics: Administration, Oral; Animals; Antineoplastic Agents; Carcinoma, Hepatocellular; Cell Survival; Diet

2019
The molecular connection of histopathological heterogeneity in hepatocellular carcinoma: A role of Wnt and Hedgehog signaling pathways.
    PloS one, 2018, Volume: 13, Issue:12

    Topics: Adult; Aged; Aged, 80 and over; Animals; beta Catenin; Carcinogenesis; Carcinoma, Hepatocellular; Di

2018
Gamma linolenic acid regulates PHD2 mediated hypoxia and mitochondrial apoptosis in DEN induced hepatocellular carcinoma.
    Drug design, development and therapy, 2018, Volume: 12

    Topics: Animals; Anti-Inflammatory Agents; Anticarcinogenic Agents; Apoptosis; Apoptosis Regulatory Proteins

2018
WDR76 is a RAS binding protein that functions as a tumor suppressor via RAS degradation.
    Nature communications, 2019, 01-17, Volume: 10, Issue:1

    Topics: Animals; Carcinogenesis; Carcinoma, Hepatocellular; Cell Cycle Proteins; Cell Line, Tumor; Chromosom

2019
Antithrombin Insufficiency Promotes Susceptibility to Liver Tumorigenesis.
    The Journal of surgical research, 2019, Volume: 236

    Topics: Animals; Antithrombin III; Carbon Tetrachloride; Carcinoma, Hepatocellular; Diethylnitrosamine; Fema

2019
Identification of the Potential Metabolic Pathways Involved in the Hepatic Tumorigenesis of Rat Diethylnitrosamine-Induced Hepatocellular Carcinoma via
    BioMed research international, 2019, Volume: 2019

    Topics: Animals; Carcinogenesis; Carcinoma, Hepatocellular; Diethylnitrosamine; Glucose; Glutamic Acid; Glut

2019
Extracts of Qizhu decoction inhibit hepatitis and hepatocellular carcinoma in vitro and in C57BL/6 mice by suppressing NF-κB signaling.
    Scientific reports, 2019, 02-05, Volume: 9, Issue:1

    Topics: Animals; Carcinoma, Hepatocellular; Diethylnitrosamine; Disease Models, Animal; Drugs, Chinese Herba

2019
The Molecular Chaperone Heat Shock Protein 70 Controls Liver Cancer Initiation and Progression by Regulating Adaptive DNA Damage and Mitogen-Activated Protein Kinase/Extracellular Signal-Regulated Kinase Signaling Pathways.
    Molecular and cellular biology, 2019, 05-01, Volume: 39, Issue:9

    Topics: Animals; Carcinoma, Hepatocellular; Cell Transformation, Neoplastic; Diethylnitrosamine; Disease Pro

2019
Mangiferin Attenuated Diethynitrosamine-Induced Hepatocellular Carcinoma in Sprague-Dawley Rats via Alteration of Oxidative Stress and Apoptotic Pathway.
    Journal of environmental pathology, toxicology and oncology : official organ of the International Society for Environmental Toxicology and Cancer, 2019, Volume: 38, Issue:1

    Topics: Animals; Antineoplastic Agents, Phytogenic; Apoptosis; Biomarkers, Tumor; Carcinoma, Hepatocellular;

2019
Gallium nanoparticles along with low-dose gamma radiation modulate TGF-β/MMP-9 expression in hepatocellular carcinogenesis in rats.
    Tumour biology : the journal of the International Society for Oncodevelopmental Biology and Medicine, 2019, Volume: 41, Issue:3

    Topics: Animals; Carcinogenesis; Carcinoma, Hepatocellular; Caspase 3; Diethylnitrosamine; Disease Models, A

2019
Functional characterization of anti-cancer sphingolipids from the marine crab Dromia dehanni.
    Chemistry and physics of lipids, 2019, Volume: 221

    Topics: Animals; Antineoplastic Agents; Brachyura; Carcinoma, Hepatocellular; Cell Proliferation; Diethylnit

2019
Melatonin maximizes the therapeutic potential of non-preconditioned MSCs in a DEN-induced rat model of HCC.
    Biomedicine & pharmacotherapy = Biomedecine & pharmacotherapie, 2019, Volume: 114

    Topics: alpha-Fetoproteins; Animals; Apoptosis; Carcinoma, Hepatocellular; Diethylnitrosamine; Disease Model

2019
Mito-TEMPO, a mitochondria-targeted antioxidant, prevents N-nitrosodiethylamine-induced hepatocarcinogenesis in mice.
    Free radical biology & medicine, 2019, 05-20, Volume: 136

    Topics: Alkylating Agents; Animals; Antioxidants; Carcinogenesis; Carcinoma, Hepatocellular; Cyclic N-Oxides

2019
Phytochemicals, antioxidant activity and hepatoprotective effect of ginger (
    Biomarkers : biochemical indicators of exposure, response, and susceptibility to chemicals, 2019, Volume: 24, Issue:5

    Topics: Animals; Antioxidants; Biomarkers; Carcinoma, Hepatocellular; Cell Line, Tumor; Cytotoxins; Diethyln

2019
NLRP12 suppresses hepatocellular carcinoma via downregulation of cJun N-terminal kinase activation in the hepatocyte.
    eLife, 2019, 04-16, Volume: 8

    Topics: Animals; Carcinogens; Carcinoma, Hepatocellular; Cell Proliferation; Diethylnitrosamine; Disease Mod

2019
Pantoprazole attenuates tumorigenesis via inhibition of exosomal secretion in a rat model of hepatic precancerous lesion induced by diethylnitrosamine and 2-acetamidofluorene.
    Journal of cellular biochemistry, 2019, Volume: 120, Issue:9

    Topics: 2-Acetylaminofluorene; Animals; Carcinoma, Hepatocellular; Cell Transformation, Neoplastic; Diethyln

2019
Asarone and metformin delays experimentally induced hepatocellular carcinoma in diabetic milieu.
    Life sciences, 2019, Aug-01, Volume: 230

    Topics: Allylbenzene Derivatives; Animals; Anisoles; Carcinoma, Hepatocellular; Diabetes Mellitus, Experimen

2019
Effect of protocatechuic acid-layered double hydroxide nanoparticles on diethylnitrosamine/phenobarbital-induced hepatocellular carcinoma in mice.
    PloS one, 2019, Volume: 14, Issue:5

    Topics: Animals; Carcinoma, Hepatocellular; Cell Proliferation; Diethylnitrosamine; Disease Models, Animal;

2019
Sex hormone-binding globulin suppresses NAFLD-triggered hepatocarcinogenesis after menopause.
    Carcinogenesis, 2019, 08-22, Volume: 40, Issue:8

    Topics: Acetyl-CoA Carboxylase; Animals; Carcinogenesis; Carcinoma, Hepatocellular; Diet, High-Fat; Diethyln

2019
Chronic administration of diethylnitrosamine to induce hepatocarcinogenesis and to evaluate its synergistic effect with other hepatotoxins in mice.
    Toxicology and applied pharmacology, 2019, 09-01, Volume: 378

    Topics: Animals; Carcinogenesis; Carcinoma, Hepatocellular; Cell Proliferation; Diethylnitrosamine; Drug Syn

2019
B-mode ultrasound for the assessment of hepatic fibrosis: a quantitative multiparametric analysis for a radiomics approach.
    Scientific reports, 2019, 06-18, Volume: 9, Issue:1

    Topics: Animals; Biopsy; Body Weight; Carcinoma, Hepatocellular; Diethylnitrosamine; Hepatic Veins; Humans;

2019
Elevated levels of circulating ITIH4 are associated with hepatocellular carcinoma with nonalcoholic fatty liver disease: from pig model to human study.
    BMC cancer, 2019, Jun-25, Volume: 19, Issue:1

    Topics: Acute-Phase Proteins; Adolescent; Adult; Aged; Animals; Biomarkers; Blood Proteins; Carcinogens; Car

2019
GSTZ1-1 Deficiency Activates NRF2/IGF1R Axis in HCC via Accumulation of Oncometabolite Succinylacetone.
    The EMBO journal, 2019, 08-01, Volume: 38, Issue:15

    Topics: Animals; Carcinoma, Hepatocellular; Cell Line, Tumor; Cell Proliferation; Diethylnitrosamine; Down-R

2019
Dual-Targeted Lactoferrin Shell-Oily Core Nanocapsules for Synergistic Targeted/Herbal Therapy of Hepatocellular Carcinoma.
    ACS applied materials & interfaces, 2019, Jul-31, Volume: 11, Issue:30

    Topics: Animals; Carcinoma, Hepatocellular; Diethylnitrosamine; Disaccharides; Drug Delivery Systems; Gene E

2019
Timp3 deficiency affects the progression of DEN-related hepatocellular carcinoma during diet-induced obesity in mice.
    Acta diabetologica, 2019, Volume: 56, Issue:12

    Topics: Animals; Carcinoma, Hepatocellular; Diet, High-Fat; Diethylnitrosamine; Disease Progression; Fatty L

2019
An Immune Gene Expression Signature Associated With Development of Human Hepatocellular Carcinoma Identifies Mice That Respond to Chemopreventive Agents.
    Gastroenterology, 2019, Volume: 157, Issue:5

    Topics: Animals; Anticarcinogenic Agents; Aspirin; Biomarkers, Tumor; Carcinoma, Hepatocellular; Case-Contro

2019
Telmisartan attenuates N-nitrosodiethylamine-induced hepatocellular carcinoma in mice by modulating the NF-κB-TAK1-ERK1/2 axis in the context of PPARγ agonistic activity.
    Naunyn-Schmiedeberg's archives of pharmacology, 2019, Volume: 392, Issue:12

    Topics: Animals; Antihypertensive Agents; Antineoplastic Agents; Carcinoma, Hepatocellular; Cell Proliferati

2019
Paradoxical role of autophagy in the dysplastic and tumor-forming stages of hepatocarcinoma development in rats.
    Cell death & disease, 2013, Feb-21, Volume: 4

    Topics: Animals; Antioxidants; Autophagy; Carcinoma, Hepatocellular; Cell Proliferation; Cell Transformation

2013
Anticancer effect of ursolic acid stearoyl glucoside in chemically induced hepatocellular carcinoma.
    Journal of physiology and biochemistry, 2013, Volume: 69, Issue:4

    Topics: Alanine Transaminase; Alkaline Phosphatase; alpha-Fetoproteins; Animals; Antineoplastic Agents, Phyt

2013
Protective effects of Scutellaria barbata against rat liver tumorigenesis.
    Asian Pacific journal of cancer prevention : APJCP, 2013, Volume: 14, Issue:1

    Topics: Alanine Transaminase; Alkaline Phosphatase; alpha-L-Fucosidase; Animals; Aspartate Aminotransferases

2013
Hepatocellular carcinoma as extracolonic manifestation of Lynch syndrome indicates SEC63 as potential target gene in hepatocarcinogenesis.
    Scandinavian journal of gastroenterology, 2013, Volume: 48, Issue:3

    Topics: Adaptor Proteins, Signal Transducing; Adenosine Triphosphatases; Animals; Apoptosis; Carcinoma, Hepa

2013
Cyclin E facilitates dysplastic hepatocytes to bypass G1/S checkpoint in hepatocarcinogenesis.
    Journal of gastroenterology and hepatology, 2013, Volume: 28, Issue:9

    Topics: Animals; Apoptosis; Carcinoma, Hepatocellular; Cell Proliferation; Cell Transformation, Neoplastic;

2013
Activation of Liver FGF21 in hepatocarcinogenesis and during hepatic stress.
    BMC gastroenterology, 2013, Apr-17, Volume: 13

    Topics: AMP-Activated Protein Kinases; Animals; Carcinoma, Hepatocellular; Cell Transformation, Neoplastic;

2013
Promyelocytic leukaemia protein links DNA damage response and repair to hepatitis B virus-related hepatocarcinogenesis.
    The Journal of pathology, 2013, Volume: 230, Issue:4

    Topics: Adiposity; Animals; Antibiotics, Antineoplastic; Biomarkers; Biopsy; Carcinoma, Hepatocellular; Cell

2013
Inhibitory role of Smad7 in hepatocarcinogenesis in mice and in vitro.
    The Journal of pathology, 2013, Volume: 230, Issue:4

    Topics: Animals; Apoptosis; Apoptosis Regulatory Proteins; Carcinoma, Hepatocellular; Cell Cycle Proteins; C

2013
Decrease of 5-hydroxymethylcytosine is associated with progression of hepatocellular carcinoma through downregulation of TET1.
    PloS one, 2013, Volume: 8, Issue:5

    Topics: 5-Methylcytosine; Animals; Blotting, Western; Carcinoma, Hepatocellular; Cell Line, Tumor; Cytosine;

2013
Mitochondria protection with ginkgolide B-loaded polymeric nanocapsules prevents diethylnitrosamine-induced hepatocarcinoma in rats.
    Nanomedicine (London, England), 2014, Volume: 9, Issue:3

    Topics: Animals; Anticarcinogenic Agents; Carcinoma, Hepatocellular; Diethylnitrosamine; Ginkgolides; Lacton

2014
Regulation of accumulation and function of myeloid derived suppressor cells in different murine models of hepatocellular carcinoma.
    Journal of hepatology, 2013, Volume: 59, Issue:5

    Topics: Animals; Antineoplastic Agents; Carcinoma, Hepatocellular; Cell Movement; Cell Proliferation; Diethy

2013
Overactivation of the TGF-β pathway confers a mesenchymal-like phenotype and CXCR4-dependent migratory properties to liver tumor cells.
    Hepatology (Baltimore, Md.), 2013, Volume: 58, Issue:6

    Topics: Aged; Aged, 80 and over; Animals; Carcinoma, Hepatocellular; Cell Line, Tumor; Cell Movement; Chemok

2013
Real-time diagnosis of chemically induced hepatocellular carcinoma using a novel mass spectrometry-based technique.
    Analytical biochemistry, 2013, Oct-01, Volume: 441, Issue:1

    Topics: Animals; Carcinoma, Hepatocellular; Diethylnitrosamine; Humans; Liver Neoplasms; Male; Mice; Mice, I

2013
Protein phosphatase 2A promotes hepatocellular carcinogenesis in the diethylnitrosamine mouse model through inhibition of p53.
    Carcinogenesis, 2014, Volume: 35, Issue:1

    Topics: Animals; Biopsy; Carcinoma, Hepatocellular; Diethylnitrosamine; Disease Models, Animal; Etoposide; G

2014
Novel inhibitors of cyclin-dependent kinases combat hepatocellular carcinoma without inducing chemoresistance.
    Molecular cancer therapeutics, 2013, Volume: 12, Issue:10

    Topics: 2-Aminopurine; Animals; Apoptosis; Carcinoma, Hepatocellular; Cell Line, Tumor; Cell Proliferation;

2013
Berberine and S allyl cysteine mediated amelioration of DEN+CCl4 induced hepatocarcinoma.
    Biochimica et biophysica acta, 2014, Volume: 1840, Issue:1

    Topics: Alkylating Agents; Animals; Antineoplastic Agents; Apoptosis; Berberine; Blotting, Western; Carbon T

2014
Suppressive effect of liver tumor-promoting activities in rats subjected to combined administration of phenobarbital and piperonyl butoxide.
    The Journal of toxicological sciences, 2013, Volume: 38, Issue:5

    Topics: Animals; Carcinoma, Hepatocellular; Cell Proliferation; Cytochrome P-450 CYP1A1; Depression, Chemica

2013
Anticancer potential of rhamnocitrin 4'-β-D-galactopyranoside against N-diethylnitrosamine-induced hepatocellular carcinoma in rats.
    Molecular and cellular biochemistry, 2013, Volume: 384, Issue:1-2

    Topics: Alanine Transaminase; Alkaline Phosphatase; alpha-Fetoproteins; Animals; Aspartate Aminotransferases

2013
Two-stage model of chemically induced hepatocellular carcinoma in mouse.
    Oncology research, 2013, Volume: 20, Issue:11

    Topics: Animals; Apoptosis; Carbon Tetrachloride; Carcinogenesis; Carcinoma, Hepatocellular; Cell Proliferat

2013
Lycopene metabolite, apo-10'-lycopenoic acid, inhibits diethylnitrosamine-initiated, high fat diet-promoted hepatic inflammation and tumorigenesis in mice.
    Cancer prevention research (Philadelphia, Pa.), 2013, Volume: 6, Issue:12

    Topics: Alkylating Agents; Animals; Apoptosis; Blotting, Western; Carcinoma, Hepatocellular; Carotenoids; Ce

2013
Antioxidant N-acetylcysteine attenuates hepatocarcinogenesis by inhibiting ROS/ER stress in TLR2 deficient mouse.
    PloS one, 2013, Volume: 8, Issue:10

    Topics: Acetylcysteine; Animals; Antioxidants; Carcinogenesis; Carcinoma, Hepatocellular; Cell Line; Diethyl

2013
Menin promotes hepatocellular carcinogenesis and epigenetically up-regulates Yap1 transcription.
    Proceedings of the National Academy of Sciences of the United States of America, 2013, Oct-22, Volume: 110, Issue:43

    Topics: Adaptor Proteins, Signal Transducing; Animals; Carbon Tetrachloride; Carcinogenesis; Carcinoma, Hepa

2013
Hepatic loss of miR-122 predisposes mice to hepatobiliary cyst and hepatocellular carcinoma upon diethylnitrosamine exposure.
    The American journal of pathology, 2013, Volume: 183, Issue:6

    Topics: Alkylating Agents; Animals; Axl Receptor Tyrosine Kinase; Carcinoma, Hepatocellular; cdc25 Phosphata

2013
Branched-chain amino acids ameliorate fibrosis and suppress tumor growth in a rat model of hepatocellular carcinoma with liver cirrhosis.
    PloS one, 2013, Volume: 8, Issue:11

    Topics: Administration, Oral; Amino Acids, Branched-Chain; Animals; Anticarcinogenic Agents; Carcinogenesis;

2013
Genetic and epigenetic changes in fibrosis-associated hepatocarcinogenesis in mice.
    International journal of cancer, 2014, Jun-15, Volume: 134, Issue:12

    Topics: Animals; beta Catenin; Carbon Tetrachloride; Carcinoma, Hepatocellular; Cell Transformation, Neoplas

2014
Compound Astragalus and Salvia miltiorrhiza extract suppresses hepatocellular carcinoma progression by inhibiting fibrosis and PAI-1 mRNA transcription.
    Journal of ethnopharmacology, 2014, Volume: 151, Issue:1

    Topics: Animals; Astragalus Plant; Carcinoma, Hepatocellular; Diethylnitrosamine; Gene Expression Regulation

2014
Lipid droplet binding thalidomide analogs activate endoplasmic reticulum stress and suppress hepatocellular carcinoma in a chemically induced transgenic mouse model.
    Lipids in health and disease, 2013, Nov-22, Volume: 12

    Topics: Animals; Antineoplastic Agents; Carcinoma, Hepatocellular; Cell Line, Tumor; Cell Movement; Cell Pro

2013
Targeting different angiogenic pathways with combination of curcumin, leflunomide and perindopril inhibits diethylnitrosamine-induced hepatocellular carcinoma in mice.
    European journal of pharmacology, 2014, Jan-15, Volume: 723

    Topics: Angiotensin-Converting Enzyme Inhibitors; Animals; Antineoplastic Agents; Antirheumatic Agents; Carc

2014
Transcriptomic responses provide a new mechanistic basis for the chemopreventive effects of folic acid and tributyrin in rat liver carcinogenesis.
    International journal of cancer, 2014, Jul-01, Volume: 135, Issue:1

    Topics: Animals; Antigens, CD34; Antineoplastic Combined Chemotherapy Protocols; Carcinogenesis; Carcinoma,

2014
Anti cancerous efficacy of Ayurvedic milk extract of Semecarpus anacardium nuts on hepatocellular carcinoma in Wistar rats.
    African journal of traditional, complementary, and alternative medicines : AJTCAM, 2013, Volume: 10, Issue:5

    Topics: Animals; Antineoplastic Agents, Phytogenic; Carcinoma, Hepatocellular; Diethylnitrosamine; Female; L

2013
Compound Astragalus and Salvia miltiorrhiza extracts suppress hepatocarcinogenesis by modulating transforming growth factor-β/Smad signaling.
    Journal of gastroenterology and hepatology, 2014, Volume: 29, Issue:6

    Topics: Animals; Astragalus Plant; Carcinoma, Hepatocellular; Diethylnitrosamine; Dose-Response Relationship

2014
Enhancement of DEN-induced liver tumourigenesis in hepatocyte-specific Lass2-knockout mice coincident with upregulation of the TGF-β1-Smad4-PAI-1 axis.
    Oncology reports, 2014, Volume: 31, Issue:2

    Topics: Animals; Apoptosis; Carcinoma, Hepatocellular; Cell Proliferation; Cell Transformation, Neoplastic;

2014
CCAAT/enhancer-binding protein homologous (CHOP) protein promotes carcinogenesis in the DEN-induced hepatocellular carcinoma model.
    PloS one, 2013, Volume: 8, Issue:12

    Topics: Active Transport, Cell Nucleus; Animals; Carcinogenesis; Carcinoma, Hepatocellular; Cell Nucleus; Di

2013
Decorin deficiency promotes hepatic carcinogenesis.
    Matrix biology : journal of the International Society for Matrix Biology, 2014, Volume: 35

    Topics: Animals; Blotting, Western; Carcinogenesis; Carcinoma, Hepatocellular; Cyclin-Dependent Kinase Inhib

2014
Clearance of senescent hepatocytes in a neoplastic-prone microenvironment delays the emergence of hepatocellular carcinoma.
    Aging, 2014, Volume: 6, Issue:1

    Topics: Animals; Biomarkers; Carcinoma, Hepatocellular; Cell Transformation, Neoplastic; Cellular Microenvir

2014
Viral-human chimeric transcript predisposes risk to liver cancer development and progression.
    Cancer cell, 2014, Mar-17, Volume: 25, Issue:3

    Topics: Animals; Base Sequence; beta Catenin; Carcinoma, Hepatocellular; Cell Line, Tumor; Cell Movement; Di

2014
Possible role of selective, irreversible, proteasome inhibitor (carfilzomib) in the treatment of rat hepatocellular carcinoma.
    Chemico-biological interactions, 2014, May-25, Volume: 215

    Topics: Animals; Biomarkers, Tumor; Carcinogens; Carcinoma, Hepatocellular; Diethylnitrosamine; Endostatins;

2014
High-refined-carbohydrate and high-fat diets induce comparable hepatic tumorigenesis in male mice.
    The Journal of nutrition, 2014, Volume: 144, Issue:5

    Topics: Animals; Apoptosis; Carcinogens; Carcinoma, Hepatocellular; Dietary Carbohydrates; Dietary Fats; Die

2014
Epidermal growth factor receptor inhibition attenuates liver fibrosis and development of hepatocellular carcinoma.
    Hepatology (Baltimore, Md.), 2014, Volume: 59, Issue:4

    Topics: Animals; Bile Ducts; Carbon Tetrachloride; Carcinoma, Hepatocellular; Cell Proliferation; Cells, Cul

2014
Maotai ameliorates diethylnitrosamine-initiated hepatocellular carcinoma formation in mice.
    PloS one, 2014, Volume: 9, Issue:4

    Topics: Alcoholic Beverages; Animals; Carcinoma, Hepatocellular; China; Diethylnitrosamine; Disease Models,

2014
Fatty acid elongation in non-alcoholic steatohepatitis and hepatocellular carcinoma.
    International journal of molecular sciences, 2014, Apr-04, Volume: 15, Issue:4

    Topics: Acetyltransferases; Animals; Carcinoma, Hepatocellular; Choline; Diet; Diethylnitrosamine; Disease M

2014
Preventive effect of hydrazinocurcumin on carcinogenesis of diethylnitrosamine-induced hepatocarcinoma in male SD rats.
    Asian Pacific journal of cancer prevention : APJCP, 2014, Volume: 15, Issue:5

    Topics: Alanine Transaminase; Alkaline Phosphatase; Animals; Aspartate Aminotransferases; Carcinogenesis; Ca

2014
Cytokeratin 7/19 expression in N-diethylnitrosamine-induced mouse hepatocellular lesions: implications for histogenesis.
    International journal of experimental pathology, 2014, Volume: 95, Issue:3

    Topics: Animals; Carcinoma, Hepatocellular; Diethylnitrosamine; Disease Models, Animal; Gene Expression Regu

2014
Apoptotic effects of dipyrido [3,2-a:2',3'-c] phenazine (dppz) Au(III) complex against diethylnitrosamine/phenobarbital induced experimental hepatocarcinogenesis in rats.
    Molecular biology reports, 2014, Volume: 41, Issue:8

    Topics: Animals; Antineoplastic Agents; Apoptosis; Carcinoma, Hepatocellular; Diethylnitrosamine; DNA Fragme

2014
Liver damage, inflammation, and enhanced tumorigenesis after persistent mTORC1 inhibition.
    Cell metabolism, 2014, Jul-01, Volume: 20, Issue:1

    Topics: Adaptor Proteins, Signal Transducing; Animals; Carcinoma, Hepatocellular; Cell Proliferation; Cell T

2014
Androgen receptor enhances cell adhesion and decreases cell migration via modulating β1-integrin-AKT signaling in hepatocellular carcinoma cells.
    Cancer letters, 2014, Aug-28, Volume: 351, Issue:1

    Topics: Animals; Apoptosis; Carcinoma, Hepatocellular; Cell Adhesion; Cell Line, Tumor; Cell Movement; Dieth

2014
Formylchromone exhibits salubrious effects against nitrosodiethylamine mediated early hepatocellular carcinogenesis in rats.
    Chemico-biological interactions, 2014, Aug-05, Volume: 219

    Topics: Alanine Transaminase; Animals; Apoptosis; Aspartate Aminotransferases; Carcinoma, Hepatocellular; Ch

2014
Dynamic analysis of tumor-associated immune cells in DEN-induced rat hepatocellular carcinoma.
    International immunopharmacology, 2014, Volume: 22, Issue:2

    Topics: Animals; B-Lymphocytes, Regulatory; Bone Marrow Cells; Carcinogens; Carcinoma, Hepatocellular; Cells

2014
Molecular mechanisms of nano-selenium in mitigating hepatocellular carcinoma induced by N-nitrosodiethylamine (NDEA) in rats.
    Toxicology mechanisms and methods, 2014, Volume: 24, Issue:8

    Topics: Aldehyde Reductase; Alkylating Agents; Animals; Anticarcinogenic Agents; Apoptosis; Biomarkers; Carc

2014
EGFR has a tumour-promoting role in liver macrophages during hepatocellular carcinoma formation.
    Nature cell biology, 2014, Volume: 16, Issue:10

    Topics: Animals; Blotting, Western; Carcinoma, Hepatocellular; Cells, Cultured; Diethylnitrosamine; ErbB Rec

2014
The DEN and CCl4 -Induced Mouse Model of Fibrosis and Inflammation-Associated Hepatocellular Carcinoma.
    Current protocols in pharmacology, 2014, Sep-02, Volume: 66

    Topics: Animals; Carbon Tetrachloride; Carcinogens; Carcinoma, Hepatocellular; Chemical and Drug Induced Liv

2014
Detection of initiating potential of non-genotoxic carcinogens in a two-stage hepatocarcinogenesis study in rats.
    The Journal of toxicological sciences, 2014, Volume: 39, Issue:5

    Topics: Acetaminophen; Animals; Carcinoma, Hepatocellular; Diethylnitrosamine; Disease Models, Animal; DNA D

2014
Curative effect of Amorphophallus campanulatus (Roxb.) Blume. tuber on N-nitrosodiethylamine- induced hepatocellular carcinoma in rats.
    Journal of environmental pathology, toxicology and oncology : official organ of the International Society for Environmental Toxicology and Cancer, 2014, Volume: 33, Issue:3

    Topics: Amorphophallus; Animals; Antineoplastic Agents; Carcinoma, Hepatocellular; Cell Proliferation; Dieth

2014
Interleukin-1β/Iinterleukin-1 receptor-associated kinase 1 inflammatory signaling contributes to persistent Gankyrin activation during hepatocarcinogenesis.
    Hepatology (Baltimore, Md.), 2015, Volume: 61, Issue:2

    Topics: Adult; Aged; Animals; Carcinoma, Hepatocellular; Case-Control Studies; Cattle; CCAAT-Binding Factor;

2015
Peroxisome proliferator activated receptor alpha inhibits hepatocarcinogenesis through mediating NF-κB signaling pathway.
    Oncotarget, 2014, Sep-30, Volume: 5, Issue:18

    Topics: Animals; Apoptosis; Apoptosis Regulatory Proteins; Binding Sites; Carcinoma, Hepatocellular; Cell Pr

2014
Evaluation of diethylnitrosamine- or hepatitis B virus X gene-induced hepatocellular carcinoma with 18F-FDG PET/CT: a preclinical study.
    Oncology reports, 2015, Volume: 33, Issue:1

    Topics: Animals; Carcinoma, Hepatocellular; Diethylnitrosamine; Female; Fluorodeoxyglucose F18; Glucose Tran

2015
Comprehensive analysis of DNA methylation and gene expression of rat liver in a 2-stage hepatocarcinogenesis model.
    The Journal of toxicological sciences, 2014, Volume: 39, Issue:6

    Topics: Animals; Carcinogenesis; Carcinogens; Carcinoma, Hepatocellular; Diethylnitrosamine; Disease Models,

2014
High-saturate-fat diet delays initiation of diethylnitrosamine-induced hepatocellular carcinoma.
    BMC gastroenterology, 2014, Nov-20, Volume: 14

    Topics: Animals; Apoptosis; Carcinogens; Carcinoma, Hepatocellular; Cell Proliferation; Diet, High-Fat; Diet

2014
Cell expression patterns of CD147 in N-diethylnitrosamine/phenobarbital-induced mouse hepatocellular carcinoma.
    Journal of molecular histology, 2015, Volume: 46, Issue:1

    Topics: Animals; Antigens, CD; Antigens, Differentiation, Myelomonocytic; Basigin; Carcinogens; Carcinoma, H

2015
Inhibition of de novo NAD(+) synthesis by oncogenic URI causes liver tumorigenesis through DNA damage.
    Cancer cell, 2014, Dec-08, Volume: 26, Issue:6

    Topics: Animals; Carcinoma, Hepatocellular; Diethylnitrosamine; DNA Damage; Gene Expression Regulation, Neop

2014
Complete response of Ctnnb1-mutated tumours to β-catenin suppression by locked nucleic acid antisense in a mouse hepatocarcinogenesis model.
    Journal of hepatology, 2015, Volume: 62, Issue:2

    Topics: Alkylating Agents; Animals; beta Catenin; Blotting, Western; Carcinogenesis; Carcinoma, Hepatocellul

2015
Endoplasmic reticulum heat shock protein gp96 maintains liver homeostasis and promotes hepatocellular carcinogenesis.
    Journal of hepatology, 2015, Volume: 62, Issue:4

    Topics: Alkylating Agents; Animals; Carcinogenesis; Carcinoma, Hepatocellular; Cell Line, Tumor; Diethylnitr

2015
Immunomodulatory effect of diethylcarbamazine citrate plus filarial excretory-secretory product on rat hepatocarcinogenesis.
    International immunopharmacology, 2015, Volume: 24, Issue:2

    Topics: Animals; Antigens, Helminth; Carcinoma, Hepatocellular; Cells, Cultured; Diethylcarbamazine; Diethyl

2015
The N-nitrosodiethylamine mouse model: sketching a timeline of evolution of chemically-induced hepatic lesions.
    Anticancer research, 2014, Volume: 34, Issue:12

    Topics: Alkylating Agents; Animals; Apoptosis; Carcinogenesis; Carcinoma, Hepatocellular; Diethylnitrosamine

2014
C-terminal-truncated hepatitis B virus X protein enhances the development of diethylnitrosamine-induced hepatocellular carcinogenesis.
    The Journal of general virology, 2015, Volume: 96, Issue:Pt 3

    Topics: Amino Acid Sequence; Animals; Apoptosis; Carcinoma, Hepatocellular; Cell Proliferation; Diethylnitro

2015
MAPK inhibitors differently modulate TGF-β/Smad signaling in HepG2 cells.
    Tumour biology : the journal of the International Society for Oncodevelopmental Biology and Medicine, 2015, Volume: 36, Issue:5

    Topics: Animals; Carcinogenesis; Carcinoma, Hepatocellular; Cell Proliferation; Diethylnitrosamine; Flavonoi

2015
Cannabinoid receptor 1 promotes hepatocellular carcinoma initiation and progression through multiple mechanisms.
    Hepatology (Baltimore, Md.), 2015, Volume: 61, Issue:5

    Topics: Animals; Carcinoma, Hepatocellular; Diethylnitrosamine; Disease Progression; Endocannabinoids; Forkh

2015
The important role of ADAM8 in the progression of hepatocellular carcinoma induced by diethylnitrosamine in mice.
    Human & experimental toxicology, 2015, Volume: 34, Issue:11

    Topics: ADAM Proteins; Alanine Transaminase; alpha-Fetoproteins; Animals; Antibodies, Monoclonal; Antigens,

2015
Mouse models of liver cancer.
    Methods in molecular biology (Clifton, N.J.), 2015, Volume: 1267

    Topics: Animals; ATP Binding Cassette Transporter, Subfamily B; ATP-Binding Cassette Sub-Family B Member 4;

2015
Hepatoprotective effects of curcumin against diethyl nitrosamine induced hepatotoxicity in albino rats.
    Asian Pacific journal of cancer prevention : APJCP, 2015, Volume: 16, Issue:1

    Topics: alpha-Fetoproteins; Animals; Antioxidants; Carcinoma, Hepatocellular; Catalase; Chemical and Drug In

2015
Effects of VEGF/VEGFR/K-ras signaling pathways on miRNA21 levels in hepatocellular carcinoma tissues in rats.
    Genetics and molecular research : GMR, 2015, Jan-30, Volume: 14, Issue:1

    Topics: Animals; Carcinoma, Hepatocellular; Diethylnitrosamine; Disease Models, Animal; Gene Expression Regu

2015
Lack of gp130 expression in hepatocytes attenuates tumor progression in the DEN model.
    Cell death & disease, 2015, Mar-05, Volume: 6

    Topics: Animals; Carcinoma, Hepatocellular; Cytokine Receptor gp130; Diethylnitrosamine; DNA Damage; Female;

2015
Pharmacokinetics and tissue distribution study of caudatin in normal and diethylnitrosamine-induced hepatocellular carcinoma model rats.
    Molecules (Basel, Switzerland), 2015, Mar-05, Volume: 20, Issue:3

    Topics: Alkylating Agents; Animals; Carcinoma, Hepatocellular; Chromatography, Liquid; Diethylnitrosamine; D

2015
Doxorubicin and curcumin co-delivery by lipid nanoparticles for enhanced treatment of diethylnitrosamine-induced hepatocellular carcinoma in mice.
    European journal of pharmaceutics and biopharmaceutics : official journal of Arbeitsgemeinschaft fur Pharmazeutische Verfahrenstechnik e.V, 2015, Volume: 93

    Topics: Animals; Antibiotics, Antineoplastic; Antineoplastic Agents, Phytogenic; Apoptosis; Biomarkers, Tumo

2015
Astemizole-based anticancer therapy for hepatocellular carcinoma (HCC), and Eag1 channels as potential early-stage markers of HCC.
    Tumour biology : the journal of the International Society for Oncodevelopmental Biology and Medicine, 2015, Volume: 36, Issue:8

    Topics: Animals; Apoptosis; Astemizole; Biomarkers, Tumor; Carcinoma, Hepatocellular; Cell Proliferation; Di

2015
TGF-β regulates hepatocellular carcinoma progression by inducing Treg cell polarization.
    Cellular physiology and biochemistry : international journal of experimental cellular physiology, biochemistry, and pharmacology, 2015, Volume: 35, Issue:4

    Topics: Animals; Azabicyclo Compounds; Carcinoma, Hepatocellular; Cell Differentiation; Cell Polarity; Cell

2015
NFκB1 is a suppressor of neutrophil-driven hepatocellular carcinoma.
    Nature communications, 2015, Apr-16, Volume: 6

    Topics: Alkylating Agents; Animals; Calgranulin A; Calgranulin B; Carcinoma, Hepatocellular; Chemokine CXCL1

2015
Compound Astragalus and Salvia miltiorrhiza extracts modulate MAPK-regulated TGF-β/Smad signaling in hepatocellular carcinoma by multi-target mechanism.
    Journal of ethnopharmacology, 2015, Jul-01, Volume: 169

    Topics: Alkenes; Animals; Astragalus propinquus; Carcinoma, Hepatocellular; Diethylnitrosamine; Down-Regulat

2015
Long-Term Administration of Fibroblast Growth Factor 21 Prevents Chemically-Induced Hepatocarcinogenesis in Mice.
    Digestive diseases and sciences, 2015, Volume: 60, Issue:10

    Topics: Animals; Blotting, Western; Carcinogenesis; Carcinoma, Hepatocellular; Cell Line, Tumor; Cell Prolif

2015
The matricellular protein CCN1 suppresses hepatocarcinogenesis by inhibiting compensatory proliferation.
    Oncogene, 2016, Mar-10, Volume: 35, Issue:10

    Topics: Animals; Carcinogenesis; Carcinoma, Hepatocellular; Cell Line, Tumor; Cell Proliferation; Cysteine-R

2016
Significance of Rumex vesicarius as anticancer remedy against hepatocellular carcinoma: a proposal-based on experimental animal studies.
    Asian Pacific journal of cancer prevention : APJCP, 2015, Volume: 16, Issue:10

    Topics: Alanine Transaminase; Alkaline Phosphatase; alpha-Fetoproteins; alpha-L-Fucosidase; Animals; Antineo

2015
Insights into glycan biosynthesis in chemically-induced hepatocellular carcinoma in rats: A glycomic analysis.
    World journal of gastroenterology, 2015, May-28, Volume: 21, Issue:20

    Topics: Animals; Biomarkers, Tumor; Carcinoma, Hepatocellular; Computational Biology; Diethylnitrosamine; Gl

2015
Targeting increased copper levels in diethylnitrosamine induced hepatocellular carcinoma cells in rats by epigallocatechin-3-gallate.
    Tumour biology : the journal of the International Society for Oncodevelopmental Biology and Medicine, 2015, Volume: 36, Issue:11

    Topics: Animals; Carcinoma, Hepatocellular; Catechin; Cell Membrane Permeability; Copper; Diethylnitrosamine

2015
β-Arrestin1 enhances hepatocellular carcinogenesis through inflammation-mediated Akt signalling.
    Nature communications, 2015, Jun-16, Volume: 6

    Topics: Alkylating Agents; Animals; Arrestins; beta-Arrestin 1; beta-Arrestin 2; beta-Arrestins; Blotting, W

2015
Evidence for a Role of the Transcriptional Regulator Maid in Tumorigenesis and Aging.
    PloS one, 2015, Volume: 10, Issue:6

    Topics: Aging; Amino Acid Sequence; Animals; Animals, Genetically Modified; Carcinogenesis; Carcinoma, Hepat

2015
Chemoprevention of Diethylnitrosamine-Initiated and Phenobarbital-Promoted Hepatocarcinogenesis in Rats by Sulfated Polysaccharides and Aqueous Extract of Ulva lactuca.
    Integrative cancer therapies, 2015, Volume: 14, Issue:6

    Topics: Animals; Anticarcinogenic Agents; Apoptosis; Carcinoma, Hepatocellular; Cell Proliferation; Diethyln

2015
Implications of Sex Hormone Receptor Gene Expression in the Predominance of Hepatocellular Carcinoma in Males: Role of Natural Products.
    Asian Pacific journal of cancer prevention : APJCP, 2015, Volume: 16, Issue:12

    Topics: Animals; Biological Products; Carcinoma, Hepatocellular; Curcumin; Cymenes; Diethylnitrosamine; Down

2015
Dynamic metabolic change is indicative of inflammation-induced transformation of hepatic cells.
    The international journal of biochemistry & cell biology, 2015, Volume: 66

    Topics: Animals; Blotting, Western; Carcinoma, Hepatocellular; Cell Transformation, Neoplastic; Chemical and

2015
Protective Effects of Total Glucosides of Paeony on N-nitrosodiethylamine-induced Hepatocellular Carcinoma in Rats via Down-regulation of Regulatory B Cells.
    Immunological investigations, 2015, Volume: 44, Issue:6

    Topics: Alanine Transaminase; Alkaline Phosphatase; Animals; Antineoplastic Agents, Phytogenic; Aspartate Am

2015
p53-p66(shc)/miR-21-Sod2 signaling is critical for the inhibitory effect of betulinic acid on hepatocellular carcinoma.
    Toxicology letters, 2015, Nov-04, Volume: 238, Issue:3

    Topics: Animals; Antineoplastic Agents, Phytogenic; Betulinic Acid; Carbon Tetrachloride; Carcinoma, Hepatoc

2015
Targeted disruption of fibrinogen like protein-1 accelerates hepatocellular carcinoma development.
    Biochemical and biophysical research communications, 2015, Sep-18, Volume: 465, Issue:2

    Topics: Animals; Apoptosis Regulatory Proteins; Carcinogenesis; Carcinoma, Hepatocellular; Diethylnitrosamin

2015
MiR-17-92 cluster promotes hepatocarcinogenesis.
    Carcinogenesis, 2015, Volume: 36, Issue:10

    Topics: Animals; Carcinogenesis; Carcinoma, Hepatocellular; Cell Proliferation; Diethylnitrosamine; Disease

2015
Synergistic effect of curcumin and piperine in suppression of DENA-induced hepatocellular carcinoma in rats.
    Environmental toxicology and pharmacology, 2015, Volume: 40, Issue:2

    Topics: Alkaloids; Animals; Antineoplastic Combined Chemotherapy Protocols; Apoptosis; Benzodioxoles; Carcin

2015
Small molecule inhibitors of Late SV40 Factor (LSF) abrogate hepatocellular carcinoma (HCC): Evaluation using an endogenous HCC model.
    Oncotarget, 2015, Sep-22, Volume: 6, Issue:28

    Topics: Animals; Antineoplastic Agents; Apoptosis; Benzodioxoles; Carcinoma, Hepatocellular; Cell Cycle Chec

2015
Evaluation of 2-[18F]-fluoro-2-deoxy-D-glucose positron emission tomography/computed tomography in rat models with hepatocellular carcinoma with liver cirrhosis.
    Bio-medical materials and engineering, 2015, Volume: 26 Suppl 1

    Topics: Animals; Carcinoma, Hepatocellular; Diethylnitrosamine; Feasibility Studies; Fluorodeoxyglucose F18;

2015
Mitochondrial Dysfunction Due to Lack of Manganese Superoxide Dismutase Promotes Hepatocarcinogenesis.
    Antioxidants & redox signaling, 2015, Nov-10, Volume: 23, Issue:14

    Topics: Animals; Carcinoma, Hepatocellular; Cell Hypoxia; Cell Proliferation; Cell Shape; Cell Transformatio

2015
STK4 regulates TLR pathways and protects against chronic inflammation-related hepatocellular carcinoma.
    The Journal of clinical investigation, 2015, Nov-02, Volume: 125, Issue:11

    Topics: Animals; Carbon Tetrachloride; Carcinoma, Hepatocellular; Cytokines; Diethylnitrosamine; Escherichia

2015
Interleukin-17A Plays a Pivotal Role in Chemically Induced Hepatocellular Carcinoma in Mice.
    Digestive diseases and sciences, 2016, Volume: 61, Issue:2

    Topics: 8-Hydroxy-2'-Deoxyguanosine; Animals; Carcinoma, Hepatocellular; Cell Proliferation; Deoxyguanosine;

2016
Metabolomics Identifies Biomarker Pattern for Early Diagnosis of Hepatocellular Carcinoma: from Diethylnitrosamine Treated Rats to Patients.
    Scientific reports, 2015, Nov-03, Volume: 5

    Topics: alpha-Fetoproteins; Animals; Betaine; Biomarkers, Tumor; Carcinoma, Hepatocellular; Cohort Studies;

2015
Metformin inhibits early stage diethylnitrosamine‑induced hepatocarcinogenesis in rats.
    Molecular medicine reports, 2016, Volume: 13, Issue:1

    Topics: Adenylate Kinase; Animals; Blotting, Western; Body Weight; Carcinogenesis; Carcinoma, Hepatocellular

2016
Hepatocyte-Specific Arid1a Deficiency Initiates Mouse Steatohepatitis and Hepatocellular Carcinoma.
    PloS one, 2015, Volume: 10, Issue:11

    Topics: Animals; Carcinogenesis; Carcinoma, Hepatocellular; Cytokines; Diethylnitrosamine; DNA-Binding Prote

2015
Testosterone regulation of cyclin E kinase: A key factor in determining gender differences in hepatocarcinogenesis.
    Journal of gastroenterology and hepatology, 2016, Volume: 31, Issue:6

    Topics: Animals; Apoptosis; Apoptosis Regulatory Proteins; Carcinoma, Hepatocellular; Castration; Cell Proli

2016
Melatonin Activates Endoplasmic Reticulum Stress and Apoptosis in Rats with Diethylnitrosamine-Induced Hepatocarcinogenesis.
    PloS one, 2015, Volume: 10, Issue:12

    Topics: Animals; Apoptosis; Biomarkers, Tumor; Carcinogenesis; Carcinoma, Hepatocellular; Comet Assay; Cyclo

2015
DNA Alkylating Agent Protects Against Spontaneous Hepatocellular Carcinoma Regardless of O6-Methylguanine-DNA Methyltransferase Status.
    Cancer prevention research (Philadelphia, Pa.), 2016, Volume: 9, Issue:3

    Topics: Alkylating Agents; Animals; Apoptosis; Carcinoma, Hepatocellular; Cell Proliferation; Cells, Culture

2016
Metabolome Analyses Uncovered a Novel Inhibitory Effect of Acyclic Retinoid on Aberrant Lipogenesis in a Mouse Diethylnitrosamine-Induced Hepatic Tumorigenesis Model.
    Cancer prevention research (Philadelphia, Pa.), 2016, Volume: 9, Issue:3

    Topics: Alkylating Agents; Animals; Antineoplastic Agents; Blotting, Western; Carcinogenesis; Carcinoma, Hep

2016
Altered Cell to Cell Communication, Autophagy and Mitochondrial Dysfunction in a Model of Hepatocellular Carcinoma: Potential Protective Effects of Curcumin and Stem Cell Therapy.
    Asian Pacific journal of cancer prevention : APJCP, 2015, Volume: 16, Issue:18

    Topics: Animals; Antineoplastic Agents; Apoptosis; Autophagy; Blotting, Western; Carcinoma, Hepatocellular;

2015
Placental growth factor inhibition modulates the interplay between hypoxia and unfolded protein response in hepatocellular carcinoma.
    BMC cancer, 2016, Jan-11, Volume: 16

    Topics: Animals; Carcinoma, Hepatocellular; Cell Hypoxia; Diethylnitrosamine; Disease Models, Animal; eIF-2

2016
Dietary Broccoli Lessens Development of Fatty Liver and Liver Cancer in Mice Given Diethylnitrosamine and Fed a Western or Control Diet.
    The Journal of nutrition, 2016, Volume: 146, Issue:3

    Topics: Alanine Transaminase; Animals; Brassica; Carcinoma, Hepatocellular; Diet, Western; Diethylnitrosamin

2016
CD44 variant 9 is a potential biomarker of tumor initiating cells predicting survival outcome in hepatitis C virus-positive patients with resected hepatocellular carcinoma.
    Cancer science, 2016, Volume: 107, Issue:5

    Topics: Aged; Aged, 80 and over; Animals; Biomarkers, Tumor; Carcinoma, Hepatocellular; Cell Proliferation;

2016
Myricetin Selectively Induces Apoptosis on Cancerous Hepatocytes by Directly Targeting Their Mitochondria.
    Basic & clinical pharmacology & toxicology, 2016, Volume: 119, Issue:3

    Topics: 2-Acetylaminofluorene; Alanine Transaminase; Alkaline Phosphatase; alpha-Fetoproteins; Animals; Apop

2016
Soy Protein Isolate Protects Against Ethanol-Mediated Tumor Progression in Diethylnitrosamine-Treated Male Mice.
    Cancer prevention research (Philadelphia, Pa.), 2016, Volume: 9, Issue:6

    Topics: Adenoma; Alkylating Agents; Animals; Blotting, Western; Carcinoma, Hepatocellular; Diet; Diethylnitr

2016
Adult mouse model of early hepatocellular carcinoma promoted by alcoholic liver disease.
    World journal of gastroenterology, 2016, Apr-28, Volume: 22, Issue:16

    Topics: Alanine Transaminase; alpha-Fetoproteins; Animals; Biomarkers, Tumor; Carcinoma, Hepatocellular; Cel

2016
Antiangiogenic activity of 2-formyl-8-hydroxy-quinolinium chloride.
    Biomedicine & pharmacotherapy = Biomedecine & pharmacotherapie, 2016, Volume: 80

    Topics: Angiogenesis Inhibitors; Animals; Antineoplastic Agents; Carcinogenesis; Carcinoma, Hepatocellular;

2016
Bile acids promote diethylnitrosamine-induced hepatocellular carcinoma via increased inflammatory signaling.
    American journal of physiology. Gastrointestinal and liver physiology, 2016, 07-01, Volume: 311, Issue:1

    Topics: Adult; Animals; Apoptosis; Carcinoma, Hepatocellular; Cell Proliferation; Cell Transformation, Neopl

2016
Protective effects of Celastrol on diethylnitrosamine-induced hepatocellular carcinoma in rats and its mechanisms.
    European journal of pharmacology, 2016, Aug-05, Volume: 784

    Topics: Animals; Antineoplastic Agents; bcl-2-Associated X Protein; bcl-X Protein; Carcinogenesis; Carcinoma

2016
Brief Communication: Featured Article: Histone H2A mono-ubiquitination and cellular transformation are inversely related in N-nitrosodiethylamine-induced hepatocellular carcinoma.
    Experimental biology and medicine (Maywood, N.J.), 2016, Volume: 241, Issue:16

    Topics: Alkylating Agents; Animals; Blotting, Western; Carcinoma, Hepatocellular; Cell Transformation, Neopl

2016
Gene Expression Analysis Indicates Divergent Mechanisms in DEN-Induced Carcinogenesis in Wild Type and Bid-Deficient Livers.
    PloS one, 2016, Volume: 11, Issue:5

    Topics: Animals; BH3 Interacting Domain Death Agonist Protein; Carcinogenesis; Carcinoma, Hepatocellular; Ce

2016
p62, Upregulated during Preneoplasia, Induces Hepatocellular Carcinogenesis by Maintaining Survival of Stressed HCC-Initiating Cells.
    Cancer cell, 2016, 06-13, Volume: 29, Issue:6

    Topics: Animals; Carcinoma, Hepatocellular; Cell Survival; Diethylnitrosamine; Gene Expression Regulation, N

2016
Development of a novel mouse model of hepatocellular carcinoma with nonalcoholic steatohepatitis using a high-fat, choline-deficient diet and intraperitoneal injection of diethylnitrosamine.
    BMC gastroenterology, 2016, Jun-13, Volume: 16, Issue:1

    Topics: Animals; Biomarkers; Body Weight; Carcinoma, Hepatocellular; Choline Deficiency; Diet, High-Fat; Die

2016
Validation of a Preclinical Model of Diethylnitrosamine-Induced Hepatic Neoplasia in Yucatan Miniature Pigs.
    Oncology, 2016, Volume: 91, Issue:2

    Topics: Adenoma; alpha-Fetoproteins; Animals; Carcinoma, Hepatocellular; Diethylnitrosamine; Disease Models,

2016
TLR4 Deficiency Protects against Hepatic Fibrosis and Diethylnitrosamine-Induced Pre-Carcinogenic Liver Injury in Fibrotic Liver.
    PloS one, 2016, Volume: 11, Issue:7

    Topics: Animals; ATP Binding Cassette Transporter, Subfamily B; ATP-Binding Cassette Sub-Family B Member 4;

2016
Dynamic contrast enhanced MR imaging for evaluation of angiogenesis of hepatocellular nodules in liver cirrhosis in N-nitrosodiethylamine induced rat model.
    European radiology, 2017, Volume: 27, Issue:5

    Topics: Angiography; Animals; Carcinoma, Hepatocellular; Contrast Media; Diethylnitrosamine; Disease Models,

2017
Caspase-2 deficiency accelerates chemically induced liver cancer in mice.
    Cell death and differentiation, 2016, Volume: 23, Issue:10

    Topics: Animals; Carcinoma, Hepatocellular; Caspase 2; Cell Death; Cell Proliferation; Diethylnitrosamine; D

2016
Systematic revelation of the protective effect and mechanism of Cordycep sinensis on diethylnitrosamine-induced rat hepatocellular carcinoma with proteomics.
    Oncotarget, 2016, Sep-13, Volume: 7, Issue:37

    Topics: Alanine Transaminase; Animals; Aspartate Aminotransferases; Biological Products; Carcinoma, Hepatoce

2016
Dietary zinc deficiency predisposes mice to the development of preneoplastic lesions in chemically-induced hepatocarcinogenesis.
    Food and chemical toxicology : an international journal published for the British Industrial Biological Research Association, 2016, Volume: 96

    Topics: Alkylating Agents; Animals; Animals, Newborn; Antioxidants; Apoptosis; Carcinoma, Hepatocellular; Ce

2016
Thyroid hormone suppresses hepatocarcinogenesis via DAPK2 and SQSTM1-dependent selective autophagy.
    Autophagy, 2016, Volume: 12, Issue:12

    Topics: Animals; Autophagy; Carcinogenesis; Carcinoma, Hepatocellular; Death-Associated Protein Kinases; Die

2016
Melatonin prevents deregulation of the sphingosine kinase/sphingosine 1-phosphate signaling pathway in a mouse model of diethylnitrosamine-induced hepatocellular carcinoma.
    Journal of pineal research, 2017, Volume: 62, Issue:1

    Topics: Animals; Blotting, Western; Carcinogens; Carcinoma, Hepatocellular; Diethylnitrosamine; Disease Mode

2017
Biochemical and molecular evidences for the antitumor potential of Ginkgo biloba leaves extract in rodents.
    Acta biochimica Polonica, 2017, Volume: 64, Issue:1

    Topics: Anaplasia; Animals; Carcinoma, Hepatocellular; Diethylnitrosamine; Gene Expression Regulation; Ginkg

2017
Down-regulation of β-arrestin2 promotes tumour invasion and indicates poor prognosis of hepatocellular carcinoma.
    Scientific reports, 2016, 10-19, Volume: 6

    Topics: Animals; beta-Arrestin 2; Carcinogenesis; Carcinoma, Hepatocellular; Cell Line, Tumor; Cell Movement

2016
Protective effects of dieckol on N-nitrosodiethylamine induced hepatocarcinogenesis in rats.
    Biomedicine & pharmacotherapy = Biomedecine & pharmacotherapie, 2016, Volume: 84

    Topics: Animals; Anticarcinogenic Agents; Antioxidants; Benzofurans; Biomarkers; Carcinoma, Hepatocellular;

2016
The antitumor activity of a lactosaminated albumin conjugate of doxorubicin in a chemically induced hepatocellular carcinoma rat model compared to sorafenib.
    Digestive and liver disease : official journal of the Italian Society of Gastroenterology and the Italian Association for the Study of the Liver, 2017, Volume: 49, Issue:2

    Topics: Animals; Antibiotics, Antineoplastic; Biomarkers, Tumor; Carcinoma, Hepatocellular; Diethylnitrosami

2017
Development of a therapeutic model of precancerous liver using crocin-coated magnetite nanoparticles.
    International journal of oncology, 2017, Volume: 50, Issue:1

    Topics: Animals; Carcinoma, Hepatocellular; Carotenoids; Cell Proliferation; Diethylnitrosamine; Drug Delive

2017
Detection and differentiation of early hepatocellular carcinoma from cirrhosis using CT perfusion in a rat liver model.
    Hepatobiliary & pancreatic diseases international : HBPD INT, 2016, Volume: 15, Issue:6

    Topics: Animals; Area Under Curve; Blood Flow Velocity; Capillary Permeability; Carcinoma, Hepatocellular; C

2016
A cell-autonomous tumour suppressor role of RAF1 in hepatocarcinogenesis.
    Nature communications, 2016, 12-21, Volume: 7

    Topics: Animals; Carcinogenesis; Carcinoma, Hepatocellular; Cell Line, Tumor; Cells, Cultured; Diethylnitros

2016
DJ-1 promotes development of DEN-induced hepatocellular carcinoma and proliferation of liver cancer cells.
    Oncotarget, 2017, Jan-31, Volume: 8, Issue:5

    Topics: Animals; Carcinoma, Hepatocellular; Cell Line, Tumor; Cell Proliferation; Diethylnitrosamine; Geneti

2017
Fruiting Bodies of Antrodia cinnamomea and Its Active Triterpenoid, Antcin K, Ameliorates N-Nitrosodiethylamine-Induced Hepatic Inflammation, Fibrosis and Carcinogenesis in Rats.
    The American journal of Chinese medicine, 2017, Volume: 45, Issue:1

    Topics: Alkylating Agents; Animals; Antrodia; Apoptosis; Autophagy; Carcinogenesis; Carcinoma, Hepatocellula

2017
miR-203 inhibits augmented proliferation and metastasis of hepatocellular carcinoma residual in the promoted regenerating liver.
    Cancer science, 2017, Volume: 108, Issue:3

    Topics: Animals; Calpain; Carcinoma, Hepatocellular; Cell Movement; Cell Proliferation; Diethylnitrosamine;

2017
The immunoreceptor NKG2D promotes tumour growth in a model of hepatocellular carcinoma.
    Nature communications, 2017, 01-27, Volume: 8

    Topics: Animals; Antineoplastic Agents, Immunological; Carcinogenesis; Carcinoma, Hepatocellular; Cell Proli

2017
Stearoyl-CoA Desaturase Promotes Liver Fibrosis and Tumor Development in Mice via a Wnt Positive-Signaling Loop by Stabilization of Low-Density Lipoprotein-Receptor-Related Proteins 5 and 6.
    Gastroenterology, 2017, Volume: 152, Issue:6

    Topics: Animals; beta Catenin; beta Karyopherins; Carcinoma, Hepatocellular; Case-Control Studies; Cell Line

2017
Absence of Malat1 does not prevent DEN-induced hepatocarcinoma in mice.
    Oncology reports, 2017, Volume: 37, Issue:4

    Topics: Animals; Blood Glucose; Carcinoma, Hepatocellular; Diethylnitrosamine; Gene Deletion; Gene Expressio

2017
Inhibition of hepatic lipogenesis enhances liver tumorigenesis by increasing antioxidant defence and promoting cell survival.
    Nature communications, 2017, 03-14, Volume: 8

    Topics: Acetyl-CoA Carboxylase; Alkylating Agents; Animals; Antioxidants; Carcinogenesis; Carcinoma, Hepatoc

2017
Defective DNA strand break repair causes chromosomal instability and accelerates liver carcinogenesis in mice.
    Hepatology (Baltimore, Md.), 2008, Volume: 47, Issue:6

    Topics: Actins; Animals; Antigens, Nuclear; Aurora Kinase A; Aurora Kinases; Carcinogens; Carcinoma, Hepatoc

2008
Antiproliferative potential of gallic acid against diethylnitrosamine-induced rat hepatocellular carcinoma.
    Molecular and cellular biochemistry, 2008, Volume: 319, Issue:1-2

    Topics: Alkylating Agents; Animals; Antioxidants; Biomarkers, Tumor; Carcinogens; Carcinoma, Hepatocellular;

2008
Effect of DENA induced hepatocarcinogenesis on neuroendocrine levels in male rats.
    Indian journal of experimental biology, 2008, Volume: 46, Issue:7

    Topics: Animals; Brain; Carcinoma, Hepatocellular; Diethylnitrosamine; Dopamine; gamma-Glutamyltransferase;

2008
Chemopreventive potential of Epoxy clerodane diterpene from Tinospora cordifolia against diethylnitrosamine-induced hepatocellular carcinoma.
    Investigational new drugs, 2009, Volume: 27, Issue:4

    Topics: Animals; Anticarcinogenic Agents; Antioxidants; Carcinoma, Hepatocellular; Diethylnitrosamine; Diter

2009
Promoting effect of o-aminoazotoluene on hepatocarcinogenesis is accompanied by the increase in inflammatory and proliferative processes in liver tissue and decrease in the concentration of free thyroxin in the blood.
    Bulletin of experimental biology and medicine, 2007, Volume: 144, Issue:6

    Topics: Animals; Carcinogens; Carcinoma, Hepatocellular; Cell Proliferation; Diethylnitrosamine; Female; Inf

2007
Altered {beta}-catenin accumulation in hepatocellular carcinomas of diethylnitrosamine-exposed rhesus macaques.
    Toxicologic pathology, 2008, Volume: 36, Issue:7

    Topics: Animals; beta Catenin; Carcinogenicity Tests; Carcinogens; Carcinoma, Hepatocellular; Diethylnitrosa

2008
Hepatocyte-specific activation of NF-kappaB does not aggravate chemical hepatocarcinogenesis in transgenic mice.
    The Journal of pathology, 2009, Volume: 217, Issue:3

    Topics: Animals; Blotting, Western; Carcinoma, Hepatocellular; Cell Line, Tumor; Diethylnitrosamine; Electro

2009
Suppressive effect of Siraitia grosvenorii extract on dicyclanil-promoted hepatocellular proliferative lesions in male mice.
    The Journal of toxicological sciences, 2009, Volume: 34, Issue:1

    Topics: Alkylating Agents; Animals; Antioxidants; Body Weight; Carcinogens; Carcinoma, Hepatocellular; Cell

2009
Detection and characterization of hepatocellular carcinoma in rats with liver cirrhosis: diagnostic value of combined use of MR positive and negative contrast agents.
    Hepatobiliary & pancreatic diseases international : HBPD INT, 2009, Volume: 8, Issue:1

    Topics: Alkylating Agents; Animals; Carcinoma, Hepatocellular; Contrast Media; Diethylnitrosamine; Disease M

2009
[The expression of B-cell translocation gene 2 in diethylnitrosamine-induced primary hepatocellular carcinoma rat model.].
    Zhonghua gan zang bing za zhi = Zhonghua ganzangbing zazhi = Chinese journal of hepatology, 2009, Volume: 17, Issue:2

    Topics: Animals; B-Lymphocytes; Carcinoma, Hepatocellular; Diethylnitrosamine; Hepatocytes; Liver Neoplasms;

2009
Measuring microenvironment mechanical stress of rat liver during diethylnitrosamine induced hepatocarcinogenesis by atomic force microscope.
    Microscopy research and technique, 2009, Volume: 72, Issue:9

    Topics: Animals; Carcinogens; Carcinoma, Hepatocellular; Diethylnitrosamine; Liver; Liver Neoplasms; Microsc

2009
Cytokeratin 8/18 overexpression and complex formation as an indicator of GST-P positive foci transformation into hepatocellular carcinomas.
    Toxicology and applied pharmacology, 2009, Jul-01, Volume: 238, Issue:1

    Topics: Animals; Carcinoma, Hepatocellular; Cell Proliferation; Diethylnitrosamine; Gene Expression Regulati

2009
The Ras inhibitor farnesylthiosalicyclic acid (FTS) prevents nodule formation and development of preneoplastic foci of altered hepatocytes in rats.
    European journal of cancer (Oxford, England : 1990), 2009, Volume: 45, Issue:11

    Topics: Animals; Antineoplastic Agents; Apoptosis; Biomarkers; Blotting, Western; Carcinoma, Hepatocellular;

2009
Preventive effect of the flavonoid, quercetin, on hepatic cancer in rats via oxidant/antioxidant activity: molecular and histological evidences.
    Journal of experimental & clinical cancer research : CR, 2009, Jun-11, Volume: 28

    Topics: Alkylating Agents; Animals; Antioxidants; Carcinoma, Hepatocellular; Diethylnitrosamine; Liver Neopl

2009
Effect of selenium-enriched malt on hypoglycemia and regulatory hormones in diethylnitrosamine-induced hepatocarcinoma SD rats.
    Research in veterinary science, 2009, Volume: 87, Issue:3

    Topics: Animals; Carcinoma, Hepatocellular; Diethylnitrosamine; Edible Grain; Hypoglycemia; Liver Neoplasms;

2009
Morin regulates the expression of NF-kappaB-p65, COX-2 and matrix metalloproteinases in diethylnitrosamine induced rat hepatocellular carcinoma.
    Chemico-biological interactions, 2009, Aug-14, Volume: 180, Issue:3

    Topics: Administration, Oral; Animals; Anti-Inflammatory Agents, Non-Steroidal; Antineoplastic Agents; Carci

2009
[Differentially expressed proteins in the precancerous stage of rat hepatocarcinogenesis induced by diethylnitrosamine].
    Zhonghua gan zang bing za zhi = Zhonghua ganzangbing zazhi = Chinese journal of hepatology, 2009, Volume: 17, Issue:9

    Topics: Animals; Blotting, Western; Carcinoma, Hepatocellular; Diethylnitrosamine; gamma-Glutamyltransferase

2009
Unique impact of RB loss on hepatic proliferation: tumorigenic stresses uncover distinct pathways of cell cycle control.
    The Journal of biological chemistry, 2010, Jan-08, Volume: 285, Issue:2

    Topics: Alkylating Agents; Animals; Carcinoma, Hepatocellular; Cell Cycle; Cyclin D1; Diethylnitrosamine; DN

2010
Chemopreventive effect of bacoside A on N-nitrosodiethylamine-induced hepatocarcinogenesis in rats.
    Journal of cancer research and clinical oncology, 2010, Volume: 136, Issue:5

    Topics: Animals; Anticarcinogenic Agents; Antioxidants; Carcinogens; Carcinoma, Hepatocellular; Diethylnitro

2010
Induction of p53 renders ATM-deficient mice refractory to hepatocarcinogenesis.
    Gastroenterology, 2010, Volume: 138, Issue:3

    Topics: Animals; Apoptosis; Ataxia Telangiectasia Mutated Proteins; Carcinoma, Hepatocellular; Caspase 3; Ce

2010
Cytokeratin 8/18 is a useful immunohistochemical marker for hepatocellular proliferative lesions in mice.
    The Journal of veterinary medical science, 2010, Volume: 72, Issue:3

    Topics: Adenoma; Animals; Biomarkers; Carcinoma; Carcinoma, Hepatocellular; Diethylnitrosamine; Hepatectomy;

2010
BRE over-expression promotes growth of hepatocellular carcinoma.
    Biochemical and biophysical research communications, 2010, Jan-15, Volume: 391, Issue:3

    Topics: Animals; Carcinoma, Hepatocellular; Cell Proliferation; Diethylnitrosamine; Humans; Liver; Liver Neo

2010
Evaluation of the protective effect of ascorbic acid on nitrite- and nitrosamine-induced cytotoxicity and genotoxicity in human hepatoma line.
    Toxicology mechanisms and methods, 2010, Volume: 20, Issue:2

    Topics: Antioxidants; Ascorbic Acid; Carcinoma, Hepatocellular; Cell Survival; Comet Assay; Cytoprotection;

2010
Ursolic acid attenuates oxidative stress-mediated hepatocellular carcinoma induction by diethylnitrosamine in male Wistar rats.
    Asian Pacific journal of cancer prevention : APJCP, 2009, Volume: 10, Issue:5

    Topics: Adenosine Triphosphatases; Alkylating Agents; Animals; Antineoplastic Agents, Phytogenic; Carcinoma,

2009
The threshold dose for liver tumor promoting effects of dicyclanil in ICR mice.
    The Journal of toxicological sciences, 2010, Volume: 35, Issue:1

    Topics: Animals; Carcinogens; Carcinoma, Hepatocellular; Cytochrome P-450 CYP1A1; Cytochrome P-450 CYP1A2; D

2010
Dietary and genetic obesity promote liver inflammation and tumorigenesis by enhancing IL-6 and TNF expression.
    Cell, 2010, Jan-22, Volume: 140, Issue:2

    Topics: Animals; Carcinoma, Hepatocellular; Cell Proliferation; Diethylnitrosamine; Extracellular Signal-Reg

2010
The AP-1 repressor protein, JDP2, potentiates hepatocellular carcinoma in mice.
    Molecular cancer, 2010, Mar-09, Volume: 9

    Topics: Animals; Carcinoma, Hepatocellular; Diethylnitrosamine; Gene Expression Profiling; Gene Expression R

2010
Application of magnetic resonance imaging in transgenic and chemical mouse models of hepatocellular carcinoma.
    Molecular cancer, 2010, Apr-29, Volume: 9

    Topics: Alkylating Agents; Animals; Carcinoma, Hepatocellular; Diethylnitrosamine; Disease Models, Animal; G

2010
Preventive effect of JTE-522, a selective cyclooxygenase-2 inhibitor, on DEN-induced hepatocarcinogenesis in rats.
    Biomedicine & pharmacotherapy = Biomedecine & pharmacotherapie, 2010, Volume: 64, Issue:5

    Topics: Animals; Apoptosis; Benzenesulfonates; Blotting, Western; Carcinoma, Hepatocellular; Cell Proliferat

2010
Potential chemoprevention of diethylnitrosamine-initiated and 2-acetylaminofluorene-promoted hepatocarcinogenesis by zerumbone from the rhizomes of the subtropical ginger (Zingiber zerumbet).
    Chemico-biological interactions, 2010, Aug-05, Volume: 186, Issue:3

    Topics: 2-Acetylaminofluorene; Animals; Anticarcinogenic Agents; Apoptosis; bcl-2-Associated X Protein; Carc

2010
Androgen receptor promotes hepatitis B virus-induced hepatocarcinogenesis through modulation of hepatitis B virus RNA transcription.
    Science translational medicine, 2010, May-19, Volume: 2, Issue:32

    Topics: Androgen Receptor Antagonists; Animals; Antineoplastic Agents; Base Sequence; Carcinoma, Hepatocellu

2010
Liver specific overexpression of platelet-derived growth factor-B accelerates liver cancer development in chemically induced liver carcinogenesis.
    International journal of cancer, 2011, Mar-15, Volume: 128, Issue:6

    Topics: Alkylating Agents; Animals; Anticonvulsants; Blotting, Western; Carcinoma, Hepatocellular; Diethylni

2011
Inhibitory role of peroxisome proliferator-activated receptor gamma in hepatocarcinogenesis in mice and in vitro.
    Hepatology (Baltimore, Md.), 2010, Volume: 51, Issue:6

    Topics: Adenoviridae; Alkylating Agents; Animals; Apoptosis; Carcinoma, Hepatocellular; Cell Cycle; Cell Lin

2010
Resistance to cisplatin-induced apoptosis via PI3K-dependent survivin expression in a rat hepatoma cell line.
    International journal of oncology, 2010, Volume: 37, Issue:1

    Topics: Animals; Antineoplastic Agents; Apoptosis; Carcinoma, Hepatocellular; Cell Line, Tumor; Cells, Cultu

2010
Alteration of N-glycome in diethylnitrosamine-induced hepatocellular carcinoma mice: a non-invasive monitoring tool for liver cancer.
    Liver international : official journal of the International Association for the Study of the Liver, 2010, Volume: 30, Issue:8

    Topics: Animals; Biomarkers, Tumor; Carcinoma, Hepatocellular; Diethylnitrosamine; DNA Primers; DNA, Complem

2010
Conditional beta-catenin loss in mice promotes chemical hepatocarcinogenesis: role of oxidative stress and platelet-derived growth factor receptor alpha/phosphoinositide 3-kinase signaling.
    Hepatology (Baltimore, Md.), 2010, Volume: 52, Issue:3

    Topics: Acetylcysteine; Administration, Oral; Animals; Apoptosis; beta Catenin; Carcinoma, Hepatocellular; C

2010
Endotoxin accumulation prevents carcinogen-induced apoptosis and promotes liver tumorigenesis in rodents.
    Hepatology (Baltimore, Md.), 2010, Volume: 52, Issue:4

    Topics: Animals; Apoptosis; Carcinogens; Carcinoma, Hepatocellular; Cell Proliferation; Diethylnitrosamine;

2010
Preparation of 177Lu-labeled oxine in lipiodol as a possible agent for therapy of hepatocellular carcinoma: a preliminary animal study.
    Cancer biotherapy & radiopharmaceuticals, 2010, Volume: 25, Issue:5

    Topics: Animals; Carcinoma, Hepatocellular; Diethylnitrosamine; Drug Evaluation, Preclinical; Ethiodized Oil

2010
Dissection of DEN-induced platelet proteome changes reveals the progressively dys-regulated pathways indicative of hepatocarcinogenesis.
    Journal of proteome research, 2010, Dec-03, Volume: 9, Issue:12

    Topics: Adult; Aged; Animals; Biomarkers, Tumor; Blood Platelets; Blotting, Western; Carcinoma, Hepatocellul

2010
Production of liver preneoplasia and gallbladder agenesis in turkey fetuses administered diethylnitrosamine.
    Archives of toxicology, 2011, Volume: 85, Issue:6

    Topics: Animals; Biological Assay; Carcinogens; Carcinoma, Hepatocellular; Diethylnitrosamine; Dose-Response

2011
Elevated expression of urotensin II and its receptor in diethylnitrosamine-mediated precancerous lesions in rat liver.
    Peptides, 2011, Volume: 32, Issue:2

    Topics: Adult Stem Cells; Animals; Carcinoma, Hepatocellular; Cell Line; Cell Proliferation; Diethylnitrosam

2011
Dual induction of caspase 3- and transglutaminase-dependent apoptosis by acyclic retinoid in hepatocellular carcinoma cells.
    Molecular cancer, 2011, Jan-09, Volume: 10

    Topics: Animals; Antineoplastic Agents; Apoptosis; Carcinoma, Hepatocellular; Caspase 3; Diethylnitrosamine;

2011
Estrogen suppresses metastasis in rat hepatocellular carcinoma through decreasing interleukin-6 and hepatocyte growth factor expression.
    Inflammation, 2012, Volume: 35, Issue:1

    Topics: Animals; Carcinoma, Hepatocellular; Diethylnitrosamine; Estrogens; Ethinyl Estradiol; Female; Hepato

2012
Aberrant expression of the p53-inducible antiproliferative gene BTG2 in hepatocellular carcinoma is associated with overexpression of the cell cycle-related proteins.
    Cell biochemistry and biophysics, 2011, Volume: 61, Issue:1

    Topics: Adult; Aged; Aged, 80 and over; Animals; Carcinoma, Hepatocellular; Cell Cycle Proteins; Cell Line,

2011
Of mice and men: the nonrandom genomic instability in hepatocarcinogenesis.
    Hepatology (Baltimore, Md.), 2011, Volume: 53, Issue:3

    Topics: Animals; Carcinoma, Hepatocellular; Cell Transformation, Neoplastic; Diethylnitrosamine; Genes, myc;

2011
Evolution of genomic instability in diethylnitrosamine-induced hepatocarcinogenesis in mice.
    Hepatology (Baltimore, Md.), 2011, Volume: 53, Issue:3

    Topics: Animals; beta Catenin; Carcinoma, Hepatocellular; Comparative Genomic Hybridization; Core Binding Fa

2011
Polyol profile as an early diagnostic and prognostic marker in natural product chemoprevention of hepatocellular carcinoma in diabetic rats.
    Diabetes research and clinical practice, 2011, Volume: 92, Issue:2

    Topics: Aldehyde Reductase; Allyl Compounds; alpha-Fetoproteins; Animals; Ascorbic Acid; Blood Glucose; Carc

2011
Pomegranate-mediated chemoprevention of experimental hepatocarcinogenesis involves Nrf2-regulated antioxidant mechanisms.
    Carcinogenesis, 2011, Volume: 32, Issue:6

    Topics: Alkylating Agents; Animals; Antioxidants; Blotting, Western; Carcinoma, Hepatocellular; Diethylnitro

2011
Yes-associated protein regulation of adaptive liver enlargement and hepatocellular carcinoma development in mice.
    Hepatology (Baltimore, Md.), 2011, Volume: 53, Issue:6

    Topics: Adaptor Proteins, Signal Transducing; Animals; Carcinoma, Hepatocellular; Cell Cycle Proteins; Cell

2011
Suppression of hepatic tumor growth and metastasis by metronomic therapy in a rat model of hepatocellular carcinoma.
    Experimental & molecular medicine, 2011, May-31, Volume: 43, Issue:5

    Topics: Animals; Antineoplastic Agents; Carcinoma, Hepatocellular; Cell Proliferation; Cyclophosphamide; Die

2011
Apoptosis signal-regulating kinase 1 inhibits hepatocarcinogenesis by controlling the tumor-suppressing function of stress-activated mitogen-activated protein kinase.
    Hepatology (Baltimore, Md.), 2011, Volume: 54, Issue:1

    Topics: Animals; Apoptosis; Apoptosis Regulatory Proteins; Bcl-2-Like Protein 11; Carcinoma, Hepatocellular;

2011
Methylated chrysin induces co-ordinated attenuation of the canonical Wnt and NF-kB signaling pathway and upregulates apoptotic gene expression in the early hepatocarcinogenesis rat model.
    Chemico-biological interactions, 2011, Aug-15, Volume: 193, Issue:1

    Topics: Animals; Antineoplastic Agents; Apoptosis; bcl-2-Associated X Protein; Carcinoma, Hepatocellular; Ca

2011
Carcinogen-induced hepatic tumors in KLF6+/- mice recapitulate aggressive human hepatocellular carcinoma associated with p53 pathway deregulation.
    Hepatology (Baltimore, Md.), 2011, Volume: 54, Issue:2

    Topics: Animals; Carcinogens; Carcinoma, Hepatocellular; Diethylnitrosamine; Gene Expression Regulation, Neo

2011
Ptpn11/Shp2 acts as a tumor suppressor in hepatocellular carcinogenesis.
    Cancer cell, 2011, May-17, Volume: 19, Issue:5

    Topics: Adenoma, Liver Cell; Animals; Carcinoma, Hepatocellular; Cytokines; Diethylnitrosamine; Gene Express

2011
Inhibitory effect of phytoglycoprotein (24 kDa) on hepatocarcinogenesis in N-nitrosodiethylamine-treated ICR mice.
    The Journal of pharmacy and pharmacology, 2011, Volume: 63, Issue:6

    Topics: Alanine Transaminase; Animals; Anticarcinogenic Agents; Biomarkers; Carcinoma, Hepatocellular; Cyclo

2011
RB and p53 cooperate to prevent liver tumorigenesis in response to tissue damage.
    Gastroenterology, 2011, Volume: 141, Issue:4

    Topics: Animals; Carcinoma, Hepatocellular; Cell Cycle; Cell Proliferation; Chromosome Aberrations; Comparat

2011
PUMA-mediated apoptosis drives chemical hepatocarcinogenesis in mice.
    Hepatology (Baltimore, Md.), 2011, Volume: 54, Issue:4

    Topics: Alanine Transaminase; Animals; Apoptosis; Apoptosis Regulatory Proteins; Biopsy, Needle; Blotting, W

2011
c-Met-Akt pathway-mediated enhancement of inhibitory c-Raf phosphorylation is involved in vitamin K1 and sorafenib synergy on HCC growth inhibition.
    Cancer biology & therapy, 2011, Sep-15, Volume: 12, Issue:6

    Topics: Animals; Antineoplastic Agents; Antineoplastic Combined Chemotherapy Protocols; Benzenesulfonates; C

2011
Non-invasive monitoring of hepatocellular carcinoma in transgenic mouse with bioluminescent imaging.
    Cancer letters, 2011, Nov-01, Volume: 310, Issue:1

    Topics: alpha-Fetoproteins; Animals; Animals, Newborn; Carcinoma, Hepatocellular; Cell Line, Tumor; Diethyln

2011
Potential chemoprevention of diethylnitrosamine-induced hepatocarcinogenesis in rats: myrrh (Commiphora molmol) vs. turmeric (Curcuma longa).
    Acta histochemica, 2012, Volume: 114, Issue:5

    Topics: Alanine Transaminase; Animals; Aspartate Aminotransferases; Carcinoma, Hepatocellular; Curcuma; Diet

2012
Potential preventive effect of carvacrol against diethylnitrosamine-induced hepatocellular carcinoma in rats.
    Molecular and cellular biochemistry, 2012, Volume: 360, Issue:1-2

    Topics: Animals; Antineoplastic Agents; Antioxidants; Biomarkers, Tumor; Carcinoma, Hepatocellular; Cymenes;

2012
Preventive effect of phytoglycoprotein (38 kDa) on expression of alpha-fetoprotein and matrix metalloproteinase-9 in diethylnitrosamine-treated ICR mice.
    Drug and chemical toxicology, 2012, Volume: 35, Issue:3

    Topics: alpha-Fetoproteins; Animals; Carcinoma, Hepatocellular; Cyclooxygenase 2; Diethylnitrosamine; DNA Pr

2012
Anticarcinogenic activity of nanoencapsulated quercetin in combating diethylnitrosamine-induced hepatocarcinoma in rats.
    European journal of cancer prevention : the official journal of the European Cancer Prevention Organisation (ECP), 2012, Volume: 21, Issue:1

    Topics: Alkylating Agents; Animals; Antioxidants; Blotting, Western; Capsules; Carcinoma, Hepatocellular; Cy

2012
Activity of tumor necrosis factor-α blocked by phytoglycoprotein (38 kDa) at initiation stage in N-nitrosodiethylamine-induced ICR mice.
    Molecular and cellular biochemistry, 2012, Volume: 362, Issue:1-2

    Topics: Alanine Transaminase; Animals; Anticarcinogenic Agents; Carcinoma, Hepatocellular; Catalase; Diethyl

2012
2-Amino-3-methylimidazo[4,5-f]quinoline (IQ) promotes mouse hepatocarcinogenesis by activating transforming growth factor-β and Wnt/β-catenin signaling pathways.
    Toxicological sciences : an official journal of the Society of Toxicology, 2012, Volume: 125, Issue:2

    Topics: Animals; beta Catenin; Blotting, Western; Body Weight; Carcinoma, Hepatocellular; Cell Adhesion; Cel

2012
Antagonistic effects of selenium and lipid peroxides on growth control in early hepatocellular carcinoma.
    Hepatology (Baltimore, Md.), 2012, Volume: 55, Issue:4

    Topics: Adult; Animals; Carcinoma, Hepatocellular; Case-Control Studies; Cell Line, Tumor; Cell Proliferatio

2012
Ameliorative effect of methanol extract of Rubia cordifolia in N-nitrosodiethylamine-induced hepatocellular carcinoma.
    Pharmaceutical biology, 2012, Volume: 50, Issue:3

    Topics: Animals; Antioxidants; Carcinoma, Hepatocellular; Diethylnitrosamine; Dose-Response Relationship, Dr

2012
STAT3 activation in monocytes accelerates liver cancer progression.
    BMC cancer, 2011, Dec-05, Volume: 11

    Topics: Aminosalicylic Acids; Analysis of Variance; Animals; Apoptosis; Benzenesulfonates; Carcinogens; Carc

2011
Ent-11α-hydroxy-15-oxo-kaur-16-en-19-oic-acid inhibits hepatocellular carcinoma in vitro and in vivo via stabilizing IkBα.
    Investigational new drugs, 2012, Volume: 30, Issue:6

    Topics: Animals; Antineoplastic Agents, Phytogenic; Apoptosis; bcl-2 Homologous Antagonist-Killer Protein; b

2012
Adaptive immunity suppresses formation and progression of diethylnitrosamine-induced liver cancer.
    Gut, 2012, Volume: 61, Issue:12

    Topics: Adaptive Immunity; Animals; B-Lymphocytes; Biomarkers; Carcinogens; Carcinoma, Hepatocellular; Chemo

2012
The protective effects of fish oil and artichoke on hepatocellular carcinoma in rats.
    European review for medical and pharmacological sciences, 2011, Volume: 15, Issue:12

    Topics: Animals; Carcinoma, Hepatocellular; Cynara scolymus; Diethylnitrosamine; Dose-Response Relationship,

2011
Preventive effect of caffeine and curcumin on hepato-carcinogenesis in diethylnitrosamine-induced rats.
    International journal of oncology, 2012, Volume: 40, Issue:6

    Topics: Animals; Anticarcinogenic Agents; Caffeine; Carcinoma, Hepatocellular; Curcumin; Diethylnitrosamine;

2012
Autologous bone marrow cell infusions suppress tumor initiation in hepatocarcinogenic mice with liver cirrhosis.
    Journal of gastroenterology and hepatology, 2012, Volume: 27 Suppl 2

    Topics: 8-Hydroxy-2'-Deoxyguanosine; Animals; Bone Marrow Transplantation; Carbon Tetrachloride; Carcinoma,

2012
Effect of prolyl hydroxylase domain-2 haplodeficiency on the hepatocarcinogenesis in mice.
    Journal of hepatology, 2012, Volume: 57, Issue:1

    Topics: Alkylating Agents; Animals; Bile Duct Neoplasms; Bile Ducts, Intrahepatic; Carcinoma, Hepatocellular

2012
Effect of two selenium sources on hepatocarcinogenesis and several angiogenic cytokines in diethylnitrosamine-induced hepatocarcinoma rats.
    Journal of trace elements in medicine and biology : organ of the Society for Minerals and Trace Elements (GMS), 2012, Volume: 26, Issue:4

    Topics: alpha-Fetoproteins; Animals; Carcinoma, Hepatocellular; Diethylnitrosamine; gamma-Glutamyltransferas

2012
The inhibitory effect of rapamycin on the oval cell response and development of preneoplastic foci in the rat.
    Experimental and molecular pathology, 2012, Volume: 93, Issue:1

    Topics: Animals; Antibiotics, Antineoplastic; Carcinoma, Hepatocellular; Cell Proliferation; Cell Shape; Cel

2012
Enhanced hepatocarcinogenesis in mouse models and human hepatocellular carcinoma by coordinate KLF6 depletion and increased messenger RNA splicing.
    Hepatology (Baltimore, Md.), 2012, Volume: 56, Issue:4

    Topics: Analysis of Variance; Animals; Carcinoma, Hepatocellular; Diethylnitrosamine; Disease Models, Animal

2012
A Sleeping Beauty mutagenesis screen reveals a tumor suppressor role for Ncoa2/Src-2 in liver cancer.
    Proceedings of the National Academy of Sciences of the United States of America, 2012, May-22, Volume: 109, Issue:21

    Topics: Alkylating Agents; Animals; Carcinoma, Hepatocellular; Diethylnitrosamine; Disease Models, Animal; D

2012
Efficient enrichment of hepatic cancer stem-like cells from a primary rat HCC model via a density gradient centrifugation-centered method.
    PloS one, 2012, Volume: 7, Issue:4

    Topics: Animals; Biomarkers; Carcinoma, Hepatocellular; Cell Differentiation; Cell Movement; Cell Proliferat

2012
Selenium supplementation reduced oxidative stress in diethylnitrosamine-induced hepatocellular carcinoma in rats.
    Pakistan journal of biological sciences : PJBS, 2011, Dec-01, Volume: 14, Issue:23

    Topics: Animals; Antioxidants; Carcinoma, Hepatocellular; Dietary Supplements; Diethylnitrosamine; Liver Neo

2011
Astrocyte elevated gene-1 promotes hepatocarcinogenesis: novel insights from a mouse model.
    Hepatology (Baltimore, Md.), 2012, Volume: 56, Issue:5

    Topics: Animals; Antineoplastic Agents; Carcinoma, Hepatocellular; Cell Adhesion Molecules; Cell Transformat

2012
Profound impact of gut homeostasis on chemically-induced pro-tumorigenic inflammation and hepatocarcinogenesis in rats.
    Journal of hepatology, 2012, Volume: 57, Issue:4

    Topics: Alkylating Agents; Animals; Anti-Bacterial Agents; Bifidobacterium; Carcinoma, Hepatocellular; Cytok

2012
Deletion of IFNγ enhances hepatocarcinogenesis in FXR knockout mice.
    Journal of hepatology, 2012, Volume: 57, Issue:5

    Topics: Animals; Carcinoma, Hepatocellular; Diethylnitrosamine; Disease Models, Animal; Gene Deletion; Genet

2012
In vivo bioluminescent imaging of α-fetoprotein-producing hepatocellular carcinoma in the diethylnitrosamine-treated mouse using recombinant adenoviral vector.
    The journal of gene medicine, 2012, Volume: 14, Issue:8

    Topics: Adenoviridae; alpha-Fetoproteins; Animals; Carcinoma, Hepatocellular; Cell Line, Tumor; Diethylnitro

2012
Myrtenal, a natural monoterpene, down-regulates TNF-α expression and suppresses carcinogen-induced hepatocellular carcinoma in rats.
    Molecular and cellular biochemistry, 2012, Volume: 369, Issue:1-2

    Topics: Animals; Bicyclic Monoterpenes; Carcinogens; Carcinoma, Hepatocellular; Diethylnitrosamine; Gene Exp

2012
Chemopreventive evaluation of Tephrosia purpurea against N-nitrosodiethylamine-induced hepatocarcinogenesis in Wistar rats.
    The Journal of pharmacy and pharmacology, 2012, Volume: 64, Issue:8

    Topics: alpha-Fetoproteins; Animals; Anticarcinogenic Agents; Carbon Tetrachloride; Carcinoembryonic Antigen

2012
Estrogen-sensitive PTPRO expression represses hepatocellular carcinoma progression by control of STAT3.
    Hepatology (Baltimore, Md.), 2013, Volume: 57, Issue:2

    Topics: Animals; Apoptosis; Carcinoma, Hepatocellular; Cell Proliferation; Diethylnitrosamine; Disease Progr

2013
Evaluation of chemopreventive effect of Fumaria indica against N-nitrosodiethylamine and CCl4-induced hepatocellular carcinoma in Wistar rats.
    Asian Pacific journal of tropical medicine, 2012, Volume: 5, Issue:8

    Topics: Animals; Antineoplastic Agents, Phytogenic; Biomarkers, Tumor; Body Weight; Carbon Tetrachloride; Ca

2012
Pomegranate phytoconstituents blunt the inflammatory cascade in a chemically induced rodent model of hepatocellular carcinogenesis.
    The Journal of nutritional biochemistry, 2013, Volume: 24, Issue:1

    Topics: Animals; Anticarcinogenic Agents; Carcinoma, Hepatocellular; Cyclooxygenase 2; Diethylnitrosamine; E

2013
Loss of immunity-supported senescence enhances susceptibility to hepatocellular carcinogenesis and progression in Toll-like receptor 2-deficient mice.
    Hepatology (Baltimore, Md.), 2013, Volume: 57, Issue:1

    Topics: Alkylating Agents; Animals; Autophagy; Carcinoma, Hepatocellular; Cell Transformation, Neoplastic; C

2013
Black currant anthocyanins abrogate oxidative stress through Nrf2- mediated antioxidant mechanisms in a rat model of hepatocellular carcinoma.
    Current cancer drug targets, 2012, Nov-01, Volume: 12, Issue:9

    Topics: Alkylating Agents; Animals; Anthocyanins; Antioxidants; Blotting, Western; Carcinoma, Hepatocellular

2012
Combination treatment with bortezomib and thiostrepton is effective against tumor formation in mouse models of DEN/PB-induced liver carcinogenesis.
    Cell cycle (Georgetown, Tex.), 2012, Sep-15, Volume: 11, Issue:18

    Topics: Animals; Antineoplastic Combined Chemotherapy Protocols; Boronic Acids; Bortezomib; Carcinoma, Hepat

2012
Deficiency of G-protein-coupled bile acid receptor Gpbar1 (TGR5) enhances chemically induced liver carcinogenesis.
    Hepatology (Baltimore, Md.), 2013, Volume: 57, Issue:2

    Topics: Animals; Carcinoma, Hepatocellular; Cell Movement; Cell Proliferation; Diethylnitrosamine; Humans; L

2013
Serine 727 phosphorylation of STAT3: an early change in mouse hepatocarcinogenesis induced by neonatal treatment with diethylnitrosamine.
    Molecular carcinogenesis, 2014, Volume: 53, Issue:1

    Topics: Animals; Animals, Newborn; Carcinoma, Hepatocellular; Cell Line, Tumor; Cell Nucleus; Cell Prolifera

2014
Increased expression of chondroitin sulphate proteoglycans in rat hepatocellular carcinoma tissues.
    World journal of gastroenterology, 2012, Aug-14, Volume: 18, Issue:30

    Topics: Animals; Carcinoma, Hepatocellular; Chondroitin Sulfate Proteoglycans; Diethylnitrosamine; Liver Neo

2012
SJSZ glycoprotein (38 kDa) modulates macrophage type 1/2-related factors at hepatocarcinogenic stage in N-nitrosodiethylamine-treated Balb/c.
    Molecular and cellular biochemistry, 2013, Volume: 372, Issue:1-2

    Topics: Animals; Antineoplastic Agents, Phytogenic; Carcinoma, Hepatocellular; Diethylnitrosamine; Glycoprot

2013
Serum protein N-glycan alterations of diethylnitrosamine-induced hepatocellular carcinoma mice and their evolution after inhibition of the placental growth factor.
    Molecular and cellular biochemistry, 2013, Volume: 372, Issue:1-2

    Topics: Animals; Antibodies, Monoclonal, Murine-Derived; Antineoplastic Agents; Blood Proteins; Calcium Sign

2013
The placental growth factor as a target against hepatocellular carcinoma in a diethylnitrosamine-induced mouse model.
    Journal of hepatology, 2013, Volume: 58, Issue:2

    Topics: Animals; Antibodies, Monoclonal; Antineoplastic Agents; Carcinoma, Hepatocellular; Diethylnitrosamin

2013
Constitutive Notch2 signaling induces hepatic tumors in mice.
    Hepatology (Baltimore, Md.), 2013, Volume: 57, Issue:4

    Topics: Animals; Bile Duct Neoplasms; Bile Ducts, Intrahepatic; Carcinoma, Hepatocellular; Cell Differentiat

2013
Toll-like receptor 4 activity protects against hepatocellular tumorigenesis and progression by regulating expression of DNA repair protein Ku70 in mice.
    Hepatology (Baltimore, Md.), 2013, Volume: 57, Issue:5

    Topics: Animals; Antigens, Nuclear; Apoptosis; Carcinoma, Hepatocellular; Cell Transformation, Neoplastic; D

2013
Hepatocyte nuclear factor 4 alpha deletion promotes diethylnitrosamine-induced hepatocellular carcinoma in rodents.
    Hepatology (Baltimore, Md.), 2013, Volume: 57, Issue:6

    Topics: Animals; Carcinoma, Hepatocellular; Cell Proliferation; Diethylnitrosamine; Disease Progression; Gen

2013
Notch2 signaling and undifferentiated liver cancers: evidence of hepatic stem/progenitor cell origin.
    Hepatology (Baltimore, Md.), 2013, Volume: 58, Issue:3

    Topics: Acetaminophen; Animals; Carcinoma, Hepatocellular; Chemical and Drug Induced Liver Injury; Diethylni

2013
Immunopositivity for histone macroH2A1 isoforms marks steatosis-associated hepatocellular carcinoma.
    PloS one, 2013, Volume: 8, Issue:1

    Topics: Animals; Biomarkers; Carcinoma, Hepatocellular; Cell Nucleus; Diet, High-Fat; Diethylnitrosamine; Fa

2013
[Influence of bear bile on rat hepatocarcinoma induced by diethylnitrosamine].
    Yao xue xue bao = Acta pharmaceutica Sinica, 2012, Volume: 47, Issue:11

    Topics: Actins; Alanine Transaminase; Animals; Antineoplastic Agents; Aspartate Aminotransferases; Bile; Bil

2012
Overexpression of cyclin D1 is associated with the decondensation of chromatin during den-induced sequential hepatocarcinogenesis.
    Cell biology international, 2002, Volume: 26, Issue:8

    Topics: Animals; Carcinoma, Hepatocellular; Cell Transformation, Neoplastic; Chromatin; Cyclin D1; Diethylni

2002
Demonstration of direct lineage between hepatocytes and hepatocellular carcinoma in diethylnitrosamine-treated rats.
    Hepatology (Baltimore, Md.), 2002, Volume: 36, Issue:3

    Topics: Alkylating Agents; Animals; Animals, Genetically Modified; beta-Galactosidase; Carcinoma, Hepatocell

2002
Follistatin overexpression in rodent liver tumors: a possible mechanism to overcome activin growth control.
    Molecular carcinogenesis, 2002, Volume: 35, Issue:1

    Topics: Activins; Adenoma; Alternative Splicing; Animals; Blotting, Western; Carcinoma, Hepatocellular; Cell

2002
Dietary influence of selenium on the incidence of N-nitrosodiethylamine-induced hepatoma with reference to drug and glutathione metabolizing enzymes.
    Cell biochemistry and function, 2002, Volume: 20, Issue:4

    Topics: Animals; Anticarcinogenic Agents; Antioxidants; Aryl Hydrocarbon Hydroxylases; Carcinoma, Hepatocell

2002
A glycomic approach to hepatic tumors in N-acetylglucosaminyltransferase III (GnT-III) transgenic mice induced by diethylnitrosamine (DEN): identification of haptoglobin as a target molecule of GnT-III.
    Free radical research, 2002, Volume: 36, Issue:8

    Topics: Animals; Carbohydrate Sequence; Carcinogens; Carcinoma, Hepatocellular; Diethylnitrosamine; Electrop

2002
Relationship between the imaging features and pathologic alteration in hepatoma of rats.
    World journal of gastroenterology, 2003, Volume: 9, Issue:1

    Topics: Alkylating Agents; Angiography, Digital Subtraction; Animals; Carcinoma, Hepatocellular; Cell Transp

2003
Tumor promotion by metanil yellow and malachite green during rat hepatocarcinogenesis is associated with dysregulated expression of cell cycle regulatory proteins.
    Teratogenesis, carcinogenesis, and mutagenesis, 2003, Volume: Suppl 1

    Topics: Animals; Azo Compounds; Carcinoma, Hepatocellular; Cell Cycle Proteins; Cell Transformation, Neoplas

2003
Molecular profiling of hepatocellular carcinomas developing spontaneously in acyl-CoA oxidase deficient mice: comparison with liver tumors induced in wild-type mice by a peroxisome proliferator and a genotoxic carcinogen.
    Carcinogenesis, 2003, Volume: 24, Issue:5

    Topics: Acyl Coenzyme A; Acyl-CoA Oxidase; Animals; Biomarkers, Tumor; Blotting, Northern; Carcinoma, Hepato

2003
Influence of sodium selenite on glycoprotein contents in normal and N-nitrosodiethylamine initiated and phenobarbital promoted rat liver tumors.
    Pharmacological research, 2003, Volume: 48, Issue:2

    Topics: Animals; Biomarkers; Blood Proteins; Carcinoma, Hepatocellular; Diethylnitrosamine; Glycoproteins; H

2003
Spectrum of molecular changes during hepatocarcinogenesis induced by DEN and other chemicals in Fisher 344 male rats [Mechanisms of Ageing and Development 123 (2002) 1665-1680].
    Mechanisms of ageing and development, 2003, Volume: 124, Issue:5

    Topics: Aging; Alkylating Agents; Animals; Carcinoma, Hepatocellular; Cell Cycle; Cyclin-Dependent Kinase In

2003
Selective accumulation of ALA-induced PpIX and photodynamic effect in chemically induced hepatocellular carcinoma.
    British journal of cancer, 2003, Aug-18, Volume: 89, Issue:4

    Topics: Alkylating Agents; Aminolevulinic Acid; Animals; Carcinoma, Hepatocellular; Cell Division; Diethylni

2003
STAT-3 activity in chemically-induced hepatocellular carcinoma.
    European journal of cancer (Oxford, England : 1990), 2003, Volume: 39, Issue:14

    Topics: 2-Acetylaminofluorene; Alkylating Agents; Animals; Antineoplastic Agents, Hormonal; Blotting, Northe

2003
Sustained hepatic expression of FoxM1B in transgenic mice has minimal effects on hepatocellular carcinoma development but increases cell proliferation rates in preneoplastic and early neoplastic lesions.
    Oncogene, 2003, Sep-18, Volume: 22, Issue:40

    Topics: Animals; Carcinogens; Carcinoma, Hepatocellular; Cell Division; Diethylnitrosamine; DNA-Binding Prot

2003
[The histogenesis and cytogenesis of liver carcinoma in the rat due to diethylnitrosamine in the light microscopic picture].
    Beitrage zur pathologischen Anatomie und zur allgemeinen Pathologie, 1962, Volume: 126

    Topics: Animals; Carcinoma, Hepatocellular; Cytogenetics; Diethylnitrosamine; Liver Neoplasms; Microscopy; R

1962
HISTOLOGICAL AND ENZYMATIC CHANGES IN THE LIVERS OF RATS FED THE HEPATIC CARCINOGEN DIETHYLNITROSAMINE.
    Biochemical pharmacology, 1963, Volume: 12

    Topics: Carboxy-Lyases; Carcinogens; Carcinoma, Hepatocellular; Diethylnitrosamine; Dopa Decarboxylase; Hist

1963
[ON THE MORPHOLOGY OF DIETHYLNITROSAMINE-INDUCED LIVER TUMORS IN MICE AND GUINEA PIGS].
    Zeitschrift fur Krebsforschung, 1963, Oct-04, Volume: 65

    Topics: Animals; Carcinoma, Hepatocellular; Diethylnitrosamine; Guinea Pigs; Hemangioendothelioma; Liver Neo

1963
[CHANGES IN METABOLIC PARAMETERS AND GLYCOLYTIC ENZYME ACTIVITIES DURING THE CANCERIZATION OF RAT LIVERS BY DIETHYLNITROSAMINE].
    Experimental cell research, 1964, Volume: 33

    Topics: Carbohydrate Metabolism; Carcinogens; Carcinoma, Hepatocellular; Diethylnitrosamine; Glucose-6-Phosp

1964
[THE HEXOKINASE ACTIVITY IN THE MITOCHONDRIA OF THE PRECANCEROUS RAT LIVER AND TRANSPLANTED DIETHYLNITROSAMINE HEPATOMA].
    Acta biologica et medica Germanica, 1964, Volume: 13

    Topics: Carcinogens; Carcinoma, Hepatocellular; Chemical and Drug Induced Liver Injury; Diethylnitrosamine;

1964
[QUANTITATIVE ANALYSIS OF THE CARCINOGENIC EFFECT OF DIETHYLNITROSAMINE].
    Arzneimittel-Forschung, 1963, Volume: 13

    Topics: Carcinogens; Carcinoma, Hepatocellular; Diethylnitrosamine; DNA; DNA, Neoplasm; Esophageal Neoplasms

1963
[ON ANTIGENIC CHARACTERISTICS OF HEPATOMAS PRODUCED IN RATS WITH N-NITROSODIETHYLAMINE].
    Voprosy onkologii, 1964, Volume: 10

    Topics: Antigens; Carcinoma, Hepatocellular; Diethylnitrosamine; Ethylamines; Liver Neoplasms; Neoplasms; Ne

1964
TNP-470 inhibits oxidative stress, nitric oxide production and nuclear factor kappa B activation in a rat model of hepatocellular carcinoma.
    Free radical research, 2003, Volume: 37, Issue:8

    Topics: Animals; Antibiotics, Antineoplastic; Blotting, Western; Body Weight; Carcinoma, Hepatocellular; Cyc

2003
Delayed liver regeneration and increased susceptibility to chemical hepatocarcinogenesis in transgenic mice expressing a dominant-negative mutant of connexin32 only in the liver.
    Carcinogenesis, 2004, Volume: 25, Issue:4

    Topics: Amino Acid Substitution; Animals; Base Sequence; Carcinoma, Hepatocellular; Connexins; Diethylnitros

2004
Transgenic mice expressing hepatitis B virus X protein are more susceptible to carcinogen induced hepatocarcinogenesis.
    Experimental and molecular pathology, 2004, Volume: 76, Issue:1

    Topics: Adenoma, Liver Cell; Animals; Carcinogenicity Tests; Carcinogens; Carcinoma, Hepatocellular; Diethyl

2004
Inhibition of liver carcinogenesis in Wistar rats by consumption of an aqueous extract from leaves of Ardisia compressa.
    Food and chemical toxicology : an international journal published for the British Industrial Biological Research Association, 2004, Volume: 42, Issue:3

    Topics: 2-Acetylaminofluorene; Adenoma, Liver Cell; Animals; Antineoplastic Agents; Ardisia; Carcinogens; Ca

2004
Preventive effect of Ganfujian granule on experimental hepatocarcinoma in rats.
    World journal of gastroenterology, 2004, Mar-01, Volume: 10, Issue:5

    Topics: Alkylating Agents; Animals; Bromodeoxyuridine; Carcinoma, Hepatocellular; Cell Division; Diethylnitr

2004
Alterations of the M6p/Igf2 receptor gene in hepatocellular carcinomas induced by N-nitrosodiethylamine and a choline-deficient L-amino acid-defined diet in rats.
    Molecular carcinogenesis, 2004, Volume: 39, Issue:4

    Topics: Alkylating Agents; Animals; Carcinoma, Hepatocellular; Cell Cycle; Choline Deficiency; Codon; Colchi

2004
Heterozygous p53-deficient (+/-) mice develop fewer p53-negative preneoplastic focal liver lesions in response to treatment with diethylnitrosamine than do wild-type (+/+) mice.
    Cancer letters, 2004, Apr-30, Volume: 207, Issue:2

    Topics: Animals; Carcinogens; Carcinoma, Hepatocellular; CDC2-CDC28 Kinases; Cyclin-Dependent Kinase 2; Cycl

2004
A modified rat model for hepatocellular carcinoma.
    Hepatobiliary & pancreatic diseases international : HBPD INT, 2004, Volume: 3, Issue:4

    Topics: Animals; Body Weight; Carcinoma, Hepatocellular; Diethylnitrosamine; Disease Models, Animal; Laparot

2004
Gefitinib, an EGFR inhibitor, prevents hepatocellular carcinoma development in the rat liver with cirrhosis.
    Hepatology (Baltimore, Md.), 2005, Volume: 41, Issue:2

    Topics: Alkylating Agents; Animals; Antineoplastic Agents; Carcinoma, Hepatocellular; Diethylnitrosamine; Er

2005
Interferon-gamma-mediated hepatocarcinogenesis in mice treated with diethylnitrosamine.
    Laboratory investigation; a journal of technical methods and pathology, 2005, Volume: 85, Issue:5

    Topics: 8-Hydroxy-2'-Deoxyguanosine; Animals; Biomarkers, Tumor; Carcinogens; Carcinoma, Hepatocellular; Cyt

2005
Efficacy of Terminalia arjuna (Roxb.) on N-nitrosodiethylamine induced hepatocellular carcinoma in rats.
    Indian journal of experimental biology, 2005, Volume: 43, Issue:3

    Topics: Animals; Carbohydrate Metabolism; Carcinoma, Hepatocellular; Diethylnitrosamine; Ethanol; Liver; Liv

2005
Farnesyltransferase inhibitor, ABT-100, is a potent liver cancer chemopreventive agent.
    Clinical cancer research : an official journal of the American Association for Cancer Research, 2005, Jun-01, Volume: 11, Issue:11

    Topics: Alkyl and Aryl Transferases; Animals; Carcinoma, Hepatocellular; Carrier Proteins; Cell Line, Tumor;

2005
Decreased density of beta1-adrenergic receptors in preneoplastic and neoplastic liver lesions of F344 rats.
    Histology and histopathology, 2005, Volume: 20, Issue:3

    Topics: Animals; Carcinoma, Hepatocellular; Diethylnitrosamine; Female; Immunohistochemistry; Liver Neoplasm

2005
In vivo detection of metabolic changes by 1H-MRS in the DEN-induced hepatocellular carcinoma in Wistar rat.
    Journal of cancer research and clinical oncology, 2005, Volume: 131, Issue:9

    Topics: Animals; Carcinogens; Carcinoma, Hepatocellular; Choline; Diethylnitrosamine; Disease Models, Animal

2005
Suppression of beta-catenin mutation by dietary exposure of auraptene, a citrus antioxidant, in N,N-diethylnitrosamine-induced hepatocellular carcinomas in rats.
    Oncology reports, 2005, Volume: 14, Issue:2

    Topics: Animals; Antioxidants; beta Catenin; Carcinoma, Hepatocellular; Citrus; Coumarins; Cytoskeletal Prot

2005
Doxorubicin coupled to lactosaminated albumin inhibits the growth of hepatocellular carcinomas induced in rats by diethylnitrosamine.
    Journal of hepatology, 2005, Volume: 43, Issue:4

    Topics: Animals; Body Weight; Carcinoma, Hepatocellular; Diethylnitrosamine; Disease Models, Animal; Doxorub

2005
Roxithromycin inhibits constitutive activation of nuclear factor {kappa}B by diminishing oxidative stress in a rat model of hepatocellular carcinoma.
    Clinical cancer research : an official journal of the American Association for Cancer Research, 2005, Aug-01, Volume: 11, Issue:15

    Topics: Animals; Anti-Bacterial Agents; Antineoplastic Agents; Carcinogens; Carcinoma, Hepatocellular; Cell

2005
Melatonin modulates the oxidant-antioxidant imbalance during N-nitrosodiethylamine induced hepatocarcinogenesis in rats.
    Journal of pharmacy & pharmaceutical sciences : a publication of the Canadian Society for Pharmaceutical Sciences, Societe canadienne des sciences pharmaceutiques, 2005, Aug-12, Volume: 8, Issue:2

    Topics: Animals; Antioxidants; Carcinoma, Hepatocellular; Diethylnitrosamine; Liver Neoplasms; Liver Neoplas

2005
Overexpression of insulin receptor substrate-2 in human and murine hepatocellular carcinoma.
    The American journal of pathology, 2005, Volume: 167, Issue:3

    Topics: Alkylating Agents; Animals; Antigens, Polyomavirus Transforming; Carcinoma, Hepatocellular; Cell Lin

2005
Modification of an in vivo lung metastasis model of hepatocellular carcinoma by low dose N-nitrosomorpholine and diethylnitrosamine.
    Clinical & experimental metastasis, 2005, Volume: 22, Issue:5

    Topics: Alkylating Agents; Animals; Carcinogens; Carcinoma, Hepatocellular; Diethylnitrosamine; Disease Mode

2005
Essential contribution of a chemokine, CCL3, and its receptor, CCR1, to hepatocellular carcinoma progression.
    International journal of cancer, 2006, Apr-15, Volume: 118, Issue:8

    Topics: Alkylating Agents; Animals; Carcinoma, Hepatocellular; Chemokine CCL3; Chemokine CCL4; Diethylnitros

2006
Antioxidant activity of Terminalia arjuna bark extract on N-nitrosodiethylamine induced hepatocellular carcinoma in rats.
    Molecular and cellular biochemistry, 2006, Volume: 281, Issue:1-2

    Topics: Alkylating Agents; Animals; Antioxidants; Carcinoma, Hepatocellular; Diethylnitrosamine; Lipid Perox

2006
[Ratio of low- and high-spin cytochrome P-450 in liver microsomes of N-nitrosodiethylamine-induced hepatomas].
    Fiziolohichnyi zhurnal (Kiev, Ukraine : 1994), 2005, Volume: 51, Issue:5

    Topics: Animals; Carcinogens; Carcinoma, Hepatocellular; Cytochrome P-450 CYP2E1; Cytochrome P-450 Enzyme Sy

2005
High volume hydrodynamic injection of plasmid DNA via the hepatic artery results in a high level of gene expression in rat hepatocellular carcinoma induced by diethylnitrosamine.
    The journal of gene medicine, 2006, Volume: 8, Issue:8

    Topics: Alkylating Agents; Animals; beta-Galactosidase; Carcinogens; Carcinoma, Hepatocellular; Cytomegalovi

2006
Loss of hepatic NF-kappa B activity enhances chemical hepatocarcinogenesis through sustained c-Jun N-terminal kinase 1 activation.
    Proceedings of the National Academy of Sciences of the United States of America, 2006, Jul-11, Volume: 103, Issue:28

    Topics: Alkylating Agents; Animals; Carcinoma, Hepatocellular; Diethylnitrosamine; Enzyme Activation; I-kapp

2006
Chemopreventive activity of a macrofungus Phellinus rimosus against N-nitrosodiethylamine induced hepatocellular carcinoma in rat.
    Journal of experimental therapeutics & oncology, 2006, Volume: 5, Issue:4

    Topics: Animals; Anticarcinogenic Agents; Antioxidants; Carcinoma, Hepatocellular; Diethylnitrosamine; Fungi

2006
Overexpression of cyclin D1 is associated with elevated levels of MAP kinases, Akt and Pak1 during diethylnitrosamine-induced progressive liver carcinogenesis.
    Cell biology international, 2007, Volume: 31, Issue:1

    Topics: Animals; Carcinogens; Carcinoma, Hepatocellular; Cyclin D1; Diethylnitrosamine; Disease Progression;

2007
In vivo 1H MR spectroscopy in the evaluation of the serial development of hepatocarcinogenesis in an experimental rat model.
    Academic radiology, 2006, Volume: 13, Issue:12

    Topics: Alkylating Agents; Animals; Carcinoma, Hepatocellular; Choline; Diethylnitrosamine; Disease Models,

2006
Gene expression analysis on the dicyclanil-induced hepatocellular tumors in mice.
    Toxicologic pathology, 2006, Volume: 34, Issue:6

    Topics: Animals; Apoptosis; Body Weight; Carcinoma, Hepatocellular; Cocarcinogenesis; Diethylnitrosamine; DN

2006
Coupling of lactose molecules to the carrier protein hinders the spleen and bone marrow uptake of doxorubicin conjugated with human albumin.
    European journal of pharmaceutical sciences : official journal of the European Federation for Pharmaceutical Sciences, 2007, Volume: 30, Issue:2

    Topics: Animals; Antibiotics, Antineoplastic; Bone Marrow; Carbon Radioisotopes; Carcinoma, Hepatocellular;

2007
Effect of Bauhinia racemosa stem bark on N-nitrosodiethylamine-induced hepatocarcinogenesis in rats.
    The American journal of Chinese medicine, 2007, Volume: 35, Issue:1

    Topics: Alanine Transaminase; Alkylating Agents; Animals; Antioxidants; Aspartate Aminotransferases; Bauhini

2007
Expression of ErbB receptor proteins and TGF-alpha during diethylnitrosamine-induced hepatocarcinogenesis in the rat liver.
    The Korean journal of hepatology, 2007, Volume: 13, Issue:1

    Topics: Adenoma, Liver Cell; Animals; Carcinoma, Hepatocellular; Diethylnitrosamine; ErbB Receptors; Glutath

2007
Prevention of hepatocarcinogenesis with phosphatidylcholine and menaquinone-4: in vitro and in vivo experiments.
    Journal of hepatology, 2007, Volume: 47, Issue:1

    Topics: Animals; Apoptosis; Carcinoma, Hepatocellular; Cell Line, Tumor; Cell Proliferation; Cell Transforma

2007
Expression and DNA methylation patterns of Tslc1 and Dal-1 genes in hepatocellular carcinomas induced by N-nitrosodiethylamine in rats.
    Cancer science, 2007, Volume: 98, Issue:7

    Topics: Animals; Carcinoma, Hepatocellular; Cell Adhesion Molecules; Cell Adhesion Molecules, Neuronal; Diet

2007
The PPARgamma agonist pioglitazone inhibits early neoplastic occurrence in the rat liver.
    European journal of cancer (Oxford, England : 1990), 2007, Volume: 43, Issue:11

    Topics: 2-Acetylaminofluorene; Animals; Anticarcinogenic Agents; Apoptosis; Blotting, Western; Carcinogens;

2007
Different mutation patterns of mitochondrial DNA displacement-loop in hepatocellular carcinomas induced by N-nitrosodiethylamine and a choline-deficient l-amino acid-defined diet in rats.
    Biochemical and biophysical research communications, 2007, Oct-12, Volume: 362, Issue:1

    Topics: Amino Acids; Animal Feed; Animals; Carcinoma, Hepatocellular; Choline; Diethylnitrosamine; DNA Mutat

2007
Changes in the antioxidant system by TNP-470 in an in vivo model of hepatocarcinoma.
    Translational research : the journal of laboratory and clinical medicine, 2007, Volume: 150, Issue:3

    Topics: Angiogenesis Inhibitors; Animals; Antioxidants; Carcinogens; Carcinoma, Hepatocellular; Cyclohexanes

2007
Prevention by melatonin of hepatocarcinogenesis in rats injected with N-nitrosodiethylamine.
    Journal of pineal research, 2007, Volume: 43, Issue:3

    Topics: Alanine Transaminase; Animals; Aspartate Aminotransferases; Carcinoma, Hepatocellular; Cell Transfor

2007
RB loss abrogates cell cycle control and genome integrity to promote liver tumorigenesis.
    Gastroenterology, 2007, Volume: 133, Issue:3

    Topics: Animals; Carcinoma, Hepatocellular; Cell Cycle; Chromosomal Instability; Diethylnitrosamine; Disease

2007
Inhibition of early preneoplastic events in the rat liver by the somatostatin analog lanreotide.
    Cancer science, 2007, Volume: 98, Issue:12

    Topics: Animals; Antineoplastic Agents; Carcinoma, Hepatocellular; Cell Division; Diethylnitrosamine; Liver

2007
Attenuation of N-nitrosodiethylamine-induced hepatocellular carcinogenesis by a novel flavonol-Morin.
    Chemico-biological interactions, 2008, Jan-10, Volume: 171, Issue:1

    Topics: alpha-Fetoproteins; Animals; Antioxidants; Body Weight; Carcinoembryonic Antigen; Carcinoma, Hepatoc

2008
Both early and late stages of hepatocarcinogenesis are enhanced in Cx32 dominant negative mutant transgenic rats with disrupted gap junctional intercellular communication.
    The Journal of membrane biology, 2007, Volume: 218, Issue:1-3

    Topics: Animals; Animals, Genetically Modified; Carcinogens; Carcinoma, Hepatocellular; Cell Communication;

2007
Targeting MEK is effective chemoprevention of hepatocellular carcinoma in TGF-alpha-transgenic mice.
    Journal of gastrointestinal surgery : official journal of the Society for Surgery of the Alimentary Tract, 2008, Volume: 12, Issue:1

    Topics: Alkylating Agents; Animals; Apoptosis; Benzamides; Carcinoma, Hepatocellular; Cell Proliferation; Ch

2008
Hepatocellular carcinoma and sex.
    The New England journal of medicine, 2007, Nov-08, Volume: 357, Issue:19

    Topics: Alanine Transaminase; Animals; Carcinoma, Hepatocellular; Diethylnitrosamine; Disease Models, Animal

2007
Role of CYP2E1 in diethylnitrosamine-induced hepatocarcinogenesis in vivo.
    Cancer research, 2007, Dec-01, Volume: 67, Issue:23

    Topics: Animals; Apoptosis; bcl-2-Associated X Protein; Blotting, Western; Carcinogens; Carcinoma, Hepatocel

2007
Sodium selenite enhances glutathione peroxidase activity and DNA strand breaks in hepatoma induced by N-nitrosodiethylamine and promoted by phenobarbital.
    Molecular and cellular biochemistry, 2008, Volume: 310, Issue:1-2

    Topics: Alanine Transaminase; Animals; Body Weight; Carcinoma, Hepatocellular; Comet Assay; Diethylnitrosami

2008
Anti-tumor effects of cimetidine on hepatocellular carcinomas in diethylnitrosamine-treated rats.
    Oncology reports, 2008, Volume: 19, Issue:2

    Topics: Animals; Anticarcinogenic Agents; Carcinoma, Hepatocellular; Cell Transformation, Neoplastic; Cimeti

2008
Effect of in vivo loss of GDF-15 on hepatocellular carcinogenesis.
    Journal of cancer research and clinical oncology, 2008, Volume: 134, Issue:7

    Topics: Alkylating Agents; Animals; Carcinoma, Hepatocellular; Cytokines; Diethylnitrosamine; Growth Differe

2008
Anti-tumor effect of pegylated interferon in the rat hepatocarcinogenesis model.
    International journal of oncology, 2008, Volume: 32, Issue:3

    Topics: 2-Acetylaminofluorene; Algorithms; Animals; Antineoplastic Agents; Carcinoma, Hepatocellular; Diethy

2008
24-hour rhythms in oxidative stress during hepatocarcinogenesis in rats: effect of melatonin or alpha-ketoglutarate.
    Redox report : communications in free radical research, 2008, Volume: 13, Issue:2

    Topics: Alanine Transaminase; alpha-Fetoproteins; Animals; Antioxidants; Aspartate Aminotransferases; Carcin

2008
Silymarin downregulates COX-2 expression and attenuates hyperlipidemia during NDEA-induced rat hepatocellular carcinoma.
    Molecular and cellular biochemistry, 2008, Volume: 313, Issue:1-2

    Topics: Animals; Arachidonic Acid; Carcinoma, Hepatocellular; Cholesterol, HDL; Cyclooxygenase 2; Diethylnit

2008
TIS21 negatively regulates hepatocarcinogenesis by disruption of cyclin B1-Forkhead box M1 regulation loop.
    Hepatology (Baltimore, Md.), 2008, Volume: 47, Issue:5

    Topics: Animals; Carcinoma, Hepatocellular; Cell Cycle Proteins; Cell Division; Cell Line, Tumor; Cyclin B;

2008
Transplanted bone marrow stromal cells are not cellular origin of hepatocellular carcinomas in a mouse model of carcinogenesis.
    World journal of gastroenterology, 2008, May-21, Volume: 14, Issue:19

    Topics: Animals; Bone Marrow Cells; Bone Marrow Transplantation; Carcinoma, Hepatocellular; Cell Differentia

2008
[Ultrastructure of human hepatic carcinomas compared with ultrastructural findings in hepatomas induced by chemical agents in Wistar rats and the golden hamster].
    Revista espanola de oncologia, 1983, Volume: 30, Issue:3

    Topics: 9,10-Dimethyl-1,2-benzanthracene; Adenoma, Bile Duct; Animals; Carcinoma, Hepatocellular; Cricetinae

1983
Absence of the ether lipid tumour marker in diethylnitrosamine-induced rat liver cell cancer.
    Cancer letters, 1981, Volume: 11, Issue:3

    Topics: Animals; Carcinoma, Hepatocellular; Diethylnitrosamine; Ethers; Lipids; Liver; Liver Neoplasms; Male

1981
Role of estrogens as promoters of hepatic neoplasia.
    Laboratory investigation; a journal of technical methods and pathology, 1982, Volume: 46, Issue:3

    Topics: Animals; Carcinoma, Hepatocellular; Diethylnitrosamine; Diethylstilbestrol; Dose-Response Relationsh

1982
Expression of fibronectin and laminin in the rat liver after partial hepatectomy, during carcinogenesis, and in transplantable hepatocellular carcinomas.
    Journal of the National Cancer Institute, 1982, Volume: 69, Issue:5

    Topics: 2-Acetylaminofluorene; Animals; Carcinoma, Hepatocellular; Diethylnitrosamine; Fibronectins; Glycopr

1982
A histological study of the promotive effect of diethylstilbestrol on diethylnitrosamine initiated carcinogenesis of liver in rat.
    Pathology, research and practice, 1984, Volume: 178, Issue:4

    Topics: Animals; Carcinoma, Hepatocellular; Cocarcinogenesis; Diethylnitrosamine; Diethylstilbestrol; Female

1984
Cytokeratin patterns of liver carcinomas induced by diethylnitrosamine in monkeys.
    Laboratory investigation; a journal of technical methods and pathology, 1995, Volume: 72, Issue:6

    Topics: Animals; Antibodies, Monoclonal; Carcinoma, Hepatocellular; Chlorocebus aethiops; Diethylnitrosamine

1995
Enhanced hepatocyte colony growth in soft agar after in vivo treatment with a genotoxic carcinogen: a potential assay for hepatocarcinogens?
    Cancer letters, 1995, Jun-29, Volume: 93, Issue:1

    Topics: Agar; Animals; Carcinogenicity Tests; Carcinoma, Hepatocellular; Cells, Cultured; Contact Inhibition

1995
Hepatocarcinogenesis in p53-deficient mice.
    Molecular carcinogenesis, 1995, Volume: 12, Issue:3

    Topics: Animals; Carcinoma, Hepatocellular; Diethylnitrosamine; Gene Dosage; Genes, p53; Liver Neoplasms; Ma

1995
Number of simultaneously expressed enzyme alterations correlates with progression of N-ethyl-N-hydroxyethylnitrosamine-induced hepatocarcinogenesis in rats.
    Japanese journal of cancer research : Gann, 1993, Volume: 84, Issue:12

    Topics: Adenosine Triphosphatases; Animals; Biomarkers; Bromodeoxyuridine; Carcinoma, Hepatocellular; Cell D

1993
Constitutive expression of functional P-glycoprotein in rat hepatoma cells.
    European journal of biochemistry, 1994, Jan-15, Volume: 219, Issue:1-2

    Topics: Animals; ATP Binding Cassette Transporter, Subfamily B, Member 1; Carcinoma, Hepatocellular; Carrier

1994
Non-linearity of neoplastic conversion induced in rat liver by low exposures to diethylnitrosamine.
    Carcinogenesis, 1993, Volume: 14, Issue:10

    Topics: Adenoma; Animals; Carcinoma, Hepatocellular; Diethylnitrosamine; Dose-Response Relationship, Drug; D

1993
Immunohistochemical characterization of a monoclonal antibody to hyperplastic nodules induced in rat liver by chemical carcinogens.
    Journal of gastroenterology, 1994, Volume: 29, Issue:1

    Topics: 2-Acetylaminofluorene; Animals; Antibodies, Monoclonal; Antigens, Neoplasm; Carcinoma, Hepatocellula

1994
Decreased dimethylnitrosamine-induced O6- and N7-methyldeoxyguanosine levels correlate with development and progression of lesions in rat hepatocarcinogenesis.
    Japanese journal of cancer research : Gann, 1993, Volume: 84, Issue:12

    Topics: Animals; Carcinoma, Hepatocellular; Cell Transformation, Neoplastic; Deoxyguanosine; Diethylnitrosam

1993
Comparison in C3H and C3B6F1 mice of the sensitivity to diethylnitrosamine-initiation and phenobarbital-promotion to the extent of cell proliferation.
    Carcinogenesis, 1993, Volume: 14, Issue:2

    Topics: Adenoma; Animals; Carcinoma, Hepatocellular; Cell Division; Diethylnitrosamine; Female; Liver; Liver

1993
High sensitivity of LEC rats with chronic hepatitis to hepatocarcinogenesis: decreases in unscheduled and replicative DNA synthesis of the hepatocytes.
    Japanese journal of cancer research : Gann, 1993, Volume: 84, Issue:9

    Topics: Animals; Carcinoma, Hepatocellular; Cell Division; Chronic Disease; Diethylnitrosamine; DNA; Epiderm

1993
Erythrocyte uroporphyrinogen I synthase in rats treated with the hepatic carcinogen diethylnitrosamine.
    Acta physiologica, pharmacologica et therapeutica latinoamericana : organo de la Asociacion Latinoamericana de Ciencias Fisiologicas y [de] la Asociacion Latinoamericana de Farmacologia, 1995, Volume: 45, Issue:1

    Topics: Animals; Carcinoma, Hepatocellular; Diethylnitrosamine; Erythrocytes; Female; Hydroxymethylbilane Sy

1995
Down-regulation of metallothionein expression in human and murine hepatocellular tumors: association with the tumor-necrotizing and antineoplastic effects of cadmium in mice.
    The Journal of pharmacology and experimental therapeutics, 1996, Volume: 277, Issue:2

    Topics: Animals; Antineoplastic Agents; Cadmium; Carcinoma, Hepatocellular; Diethylnitrosamine; Down-Regulat

1996
Sinusoidal capillarization and arterial blood supply continuously proceed with the advance of the stages of hepatocarcinogenesis in the rat.
    Japanese journal of cancer research : Gann, 1996, Volume: 87, Issue:5

    Topics: Animals; Capillaries; Carcinoma, Hepatocellular; Diethylnitrosamine; Factor VIII; Hyperplasia; Liver

1996
c-myc amplification in pre-malignant and malignant lesions induced in rat liver by the resistant hepatocyte model.
    International journal of cancer, 1996, Sep-27, Volume: 68, Issue:1

    Topics: Adenoma; Animals; Blotting, Northern; Blotting, Southern; Carcinoma, Hepatocellular; Deoxyribonuclea

1996
Gene transfer and therapy with adenoviral vector in rats with diethylnitrosamine-induced hepatocellular carcinoma.
    Human gene therapy, 1997, Feb-10, Volume: 8, Issue:3

    Topics: Adenoviridae; Animals; Carcinoma, Hepatocellular; Diethylnitrosamine; Ganciclovir; Gene Transfer Tec

1997
Correlation of repressed transcription of alpha-tocopherol transfer protein with serum alpha-tocopherol during hepatocarcinogenesis.
    International journal of cancer, 1997, May-16, Volume: 71, Issue:4

    Topics: Aged; Animals; Carcinogens; Carcinoma, Hepatocellular; Carrier Proteins; Cholesterol; Diethylnitrosa

1997
Correlation between Bcl-2 expression and histopathology in diethylnitrosamine-induced mouse hepatocellular tumors.
    The American journal of pathology, 1997, Volume: 151, Issue:4

    Topics: Animals; Carcinogens; Carcinoma, Hepatocellular; Diethylnitrosamine; Immunohistochemistry; Liver Neo

1997
Chronic liver injury promotes hepatocarcinogenesis of the LEC rat.
    Carcinogenesis, 1998, Volume: 19, Issue:2

    Topics: Alanine Transaminase; Animals; Aspartate Aminotransferases; Carcinoma, Hepatocellular; Copper; Dieth

1998
Enhanced expression of a new class of liver-enriched b-Zip transcription factors, hepatocarcinogenesis-related transcription factor, in hepatocellular carcinomas of rats and humans.
    Cell growth & differentiation : the molecular biology journal of the American Association for Cancer Research, 1998, Volume: 9, Issue:4

    Topics: Animals; Basic-Leucine Zipper Transcription Factors; Carcinogens; Carcinoma, Hepatocellular; Cell Di

1998
Differential expression of the polyspecific drug transporter OCT1 in rat hepatocarcinoma cells.
    Cancer letters, 1998, Apr-24, Volume: 126, Issue:2

    Topics: Animals; Biological Transport; Carcinogens; Carcinoma, Hepatocellular; Carrier Proteins; Diethylnitr

1998
The outcome of liver transplantation at various times (70, 120, and 134 days) after the initiation of carcinogenesis in rats.
    Cancer detection and prevention, 1998, Volume: 22, Issue:3

    Topics: Animals; Carcinogens; Carcinoma, Hepatocellular; Diethylnitrosamine; Disease Models, Animal; Liver N

1998
Aberrant expression of double-stranded RNA-dependent protein kinase in hepatocytes of chronic hepatitis and differentiated hepatocellular carcinoma.
    Cancer research, 1998, Oct-01, Volume: 58, Issue:19

    Topics: Animals; Antibodies, Monoclonal; Apoptosis; Biopsy, Needle; Carcinoma, Hepatocellular; Diethylnitros

1998
Enhanced in vivo adenovirus-mediated gene transfer to rat hepatocarcinomas by selective administration into the hepatic artery.
    Gene therapy, 1998, Volume: 5, Issue:7

    Topics: Adenoviridae; Animals; beta-Galactosidase; Carcinoma, Hepatocellular; Diethylnitrosamine; Gene Expre

1998
Hepatocellular carcinoma is induced by a subnecrogenic dose of diethylnitrosamine in previously fasted-refed rats.
    Nutrition and cancer, 1998, Volume: 32, Issue:1

    Topics: Animals; Carcinogens; Carcinoma, Hepatocellular; Diethylnitrosamine; Dose-Response Relationship, Dru

1998
Environmental complex mixture toxicity assessment.
    Environmental health perspectives, 1998, Volume: 106 Suppl 6

    Topics: Adenoma, Liver Cell; Animals; Carcinogenicity Tests; Carcinogens; Carcinoma, Hepatocellular; Chromat

1998
Beta-catenin mutations are frequent in hepatocellular carcinomas but absent in adenomas induced by diethylnitrosamine in B6C3F1 mice.
    Cancer research, 1999, Apr-15, Volume: 59, Issue:8

    Topics: Adenoma; Animals; beta Catenin; Carcinoma, Hepatocellular; Cytoskeletal Proteins; Diethylnitrosamine

1999
Hepatocellular carcinoma cell lines from diethylnitrosamine phenobarbital-treated rats. Characterization and sensitivity to endothall, a protein serine/threonine phosphatase-2A inhibitor.
    Hepatology (Baltimore, Md.), 1999, Volume: 29, Issue:5

    Topics: Animals; Apoptosis; Carcinogens; Carcinoma, Hepatocellular; Cell Cycle; Chick Embryo; Colonic Neopla

1999
Immunohistochemical localization of inducible nitric oxide synthase and 3-nitrotyrosine in rat liver tumors induced by N-nitrosodiethylamine.
    Carcinogenesis, 1999, Volume: 20, Issue:7

    Topics: Adenoma, Bile Duct; Animals; Apoptosis; Carcinoma, Hepatocellular; Diethylnitrosamine; Immunohistoch

1999
Analysis of loss of heterozygosity in neoplastic nodules induced by diethylnitrosamine in the resistant BFF1 rat strain.
    Carcinogenesis, 1999, Volume: 20, Issue:7

    Topics: 2-Acetylaminofluorene; Animals; Carcinoma, Hepatocellular; Chromosome Mapping; Diethylnitrosamine; G

1999
Effects of dietary iron overload on progression in chemical hepatocarcinogenesis.
    Liver, 1999, Volume: 19, Issue:4

    Topics: 2-Acetylaminofluorene; Animals; Apoptosis; Carcinogens; Carcinoma, Hepatocellular; Cell Division; Ch

1999
Establishment of an in vivo highly metastatic rat hepatocellular carcinoma model.
    Japanese journal of cancer research : Gann, 1999, Volume: 90, Issue:11

    Topics: Animals; Cadherins; Carcinogens; Carcinoma, Hepatocellular; Diethylnitrosamine; Disease Models, Anim

1999
Bile acid secretion during rat liver carcinogenesis.
    Life sciences, 2000, Feb-11, Volume: 66, Issue:12

    Topics: 2-Acetylaminofluorene; Animals; Antibodies, Monoclonal; Bile; Carcinoma, Hepatocellular; Cell Differ

2000
Genome-wide loss of heterozygosity analysis of chemically induced rat hepatocellular carcinomas reveals elevated frequency of allelic imbalances on chromosomes 1, 6, 8, 11, 15, 17, and 20.
    Molecular carcinogenesis, 2000, Volume: 28, Issue:1

    Topics: Alleles; Animals; Carcinoma, Hepatocellular; Diethylnitrosamine; Gene Expression Regulation, Neoplas

2000
Enhancement of chemical hepatocarcinogenesis by the HIV-1 tat gene.
    The American journal of pathology, 2000, Volume: 157, Issue:4

    Topics: Adenoma, Liver Cell; Animals; Basophils; Carcinogens; Carcinoma, Hepatocellular; Diethylnitrosamine;

2000
Phyllanthus amarus extract administration increases the life span of rats with hepatocellular carcinoma.
    Journal of ethnopharmacology, 2000, Volume: 73, Issue:1-2

    Topics: Alkylating Agents; Animals; Carcinoma, Hepatocellular; Diethylnitrosamine; gamma-Glutamyltransferase

2000
Inhibition by curcumin of diethylnitrosamine-induced hepatic hyperplasia, inflammation, cellular gene products and cell-cycle-related proteins in rats.
    Food and chemical toxicology : an international journal published for the British Industrial Biological Research Association, 2000, Volume: 38, Issue:11

    Topics: Animals; Blotting, Western; Carcinoma, Hepatocellular; CDC2 Protein Kinase; Cell Cycle Proteins; Che

2000
Early exposure to restraint stress enhances chemical carcinogenesis in rat liver.
    Cancer letters, 2000, Dec-20, Volume: 161, Issue:2

    Topics: Animals; Body Weight; Carcinogens; Carcinoma, Hepatocellular; Diethylnitrosamine; Glutathione Transf

2000
Gene therapy of orthotopic hepatocellular carcinoma in rats using adenovirus coding for interleukin 12.
    Hepatology (Baltimore, Md.), 2001, Volume: 33, Issue:1

    Topics: Adenoviridae; Animals; Carcinogens; Carcinoma, Hepatocellular; Cell Line; Diethylnitrosamine; Geneti

2001
Alterations of the transforming growth factor-beta signaling pathway in hepatocellular carcinomas induced endogenously and exogenously in rats.
    Japanese journal of cancer research : Gann, 2001, Volume: 92, Issue:1

    Topics: Alkylating Agents; Animals; Carcinoma, Hepatocellular; Choline; Diethylnitrosamine; DNA-Binding Prot

2001
Long-term dehydroepiandrosterone and 16alpha-fluoro-5-androsten-17-one administration enhances DNA synthesis and induces expression of c-fos and c-Ha-ras in a selected population of preneoplastic lesions in liver of diethylnitrosamine-initiated rats.
    Carcinogenesis, 2001, Volume: 22, Issue:2

    Topics: Animals; Carcinoma, Hepatocellular; Dehydroepiandrosterone; Diet; Diethylnitrosamine; DNA; DNA Repli

2001
Effect of selenium on N-nitrosodiethylamine-induced multistage hepatocarcinogenesis with reference to lipid peroxidation and enzymic antioxidants.
    Cell biochemistry and function, 2001, Volume: 19, Issue:1

    Topics: Alkylating Agents; Animals; Antioxidants; Carcinoma, Hepatocellular; Catalase; Cell Membrane; Diethy

2001
Establishment of rat hepatocellular carcinoma cell lines with differing metastatic potential in nude mice.
    International journal of cancer, 2001, Mar-15, Volume: 91, Issue:6

    Topics: Animals; Blotting, Northern; Carcinoma, Hepatocellular; Diethylnitrosamine; DNA Primers; Female; Hum

2001
Chemopreventive effects of scordinin on diethylnitrosamine and phenobarbital-induced hepatocarcinogenesis in male F344 rats.
    Japanese journal of cancer research : Gann, 2001, Volume: 92, Issue:6

    Topics: Adenoma, Liver Cell; Animals; Anticarcinogenic Agents; Body Weight; Carcinogens; Carcinoma, Hepatoce

2001
Preventive effect of FK143, a 5alpha-reductase inhibitor, on chemical hepatocarcinogenesis in rats.
    Clinical cancer research : an official journal of the American Association for Cancer Research, 2001, Volume: 7, Issue:7

    Topics: 5-alpha Reductase Inhibitors; Animals; Apoptosis; Carcinoma, Hepatocellular; Cell Division; Diethyln

2001
Role of Atp7b gene in spontaneous and N-diethylnitrosamine-induced carcinogenesis in a new congenic strain, WKAH.C-Atp7b rats.
    Japanese journal of cancer research : Gann, 2001, Volume: 92, Issue:8

    Topics: Adenosine Triphosphatases; Animals; Body Weight; Carcinogenicity Tests; Carcinoma, Hepatocellular; C

2001
Efficient and cancer-selective gene transfer to hepatocellular carcinoma in a rat using adenovirus vector with iodized oil esters.
    Cancer gene therapy, 2001, Volume: 8, Issue:10

    Topics: Adenoviridae; Alkylating Agents; Animals; Anticonvulsants; beta-Galactosidase; Carcinoma, Hepatocell

2001
The little mutation suppresses DEN-induced hepatocarcinogenesis in mice and abrogates genetic and hormonal modulation of susceptibility.
    Carcinogenesis, 2001, Volume: 22, Issue:11

    Topics: Animals; Bromodeoxyuridine; Carcinogens; Carcinoma, Hepatocellular; Diethylnitrosamine; Female; Gene

2001
Anticarcinogenic effect of red ginseng on the development of liver cancer induced by diethylnitrosamine in rats.
    Journal of Korean medical science, 2001, Volume: 16 Suppl

    Topics: Animals; Anticarcinogenic Agents; Carcinoma, Hepatocellular; Data Interpretation, Statistical; Dieth

2001
Decreased expression of Bcl-x protein during hepatocarcinogenesis induced exogenously and endogenously in rats.
    Japanese journal of cancer research : Gann, 2001, Volume: 92, Issue:12

    Topics: Alkylating Agents; Animals; Apoptosis; bcl-X Protein; Carcinoma, Hepatocellular; Cell Division; Chol

2001
Effects of fasting and intermittent fasting on rat hepatocarcinogenesis induced by diethylnitrosamine.
    Teratogenesis, carcinogenesis, and mutagenesis, 2002, Volume: 22, Issue:2

    Topics: Alkylating Agents; Animals; Basophils; Carcinoma, Hepatocellular; Diethylnitrosamine; Disease Progre

2002
Hepatocyte growth factor promotes hepatocarcinogenesis through c-Met autocrine activation and enhanced angiogenesis in transgenic mice treated with diethylnitrosamine.
    Oncogene, 2002, Mar-14, Volume: 21, Issue:12

    Topics: Alkylating Agents; Animals; Autocrine Communication; Carcinoma, Hepatocellular; Diethylnitrosamine;

2002
Distinctive gene expression of receptor-type tyrosine kinase families during rat hepatocarcinogenesis.
    International journal of molecular medicine, 2002, Volume: 9, Issue:5

    Topics: Amino Acid Sequence; Animals; Blotting, Southern; Carcinoma, Hepatocellular; Cloning, Molecular; Die

2002
Rapid emergence of carcinogen-induced hyperplastic lesions in a new model for the sequential analysis of liver carcinogenesis.
    The American journal of pathology, 1977, Volume: 88, Issue:3

    Topics: 2-Acetylaminofluorene; Animals; Carcinoma, Hepatocellular; Diet; Diethylnitrosamine; Fluorenes; gamm

1977
The natural history of neoplasia. Newer insights into an old problem.
    The American journal of pathology, 1977, Volume: 89, Issue:2

    Topics: Adenosine Triphosphatases; Animals; Carcinoma, Hepatocellular; Cell Transformation, Neoplastic; Diet

1977
Gamma-glutamyltransferase in putative premalignant liver cell populations during hepatocarcinogenesis.
    Cancer research, 1978, Volume: 38, Issue:3

    Topics: 2-Acetylaminofluorene; Animals; Bile Ducts, Intrahepatic; Carcinoma, Hepatocellular; Diethylnitrosam

1978
Biochemical characterisation of stages of hepatocarcinogenesis after a single dose of diethylnitrosamine.
    Nature, 1978, Feb-02, Volume: 271, Issue:5644

    Topics: Adenosine Triphosphatases; Animals; Carcinoma, Hepatocellular; Diethylnitrosamine; Female; gamma-Glu

1978
Flow microfluorometric identification of liver cells with elevated gamma-glutamyltranspeptidase activity after carcinogen exposure.
    The journal of histochemistry and cytochemistry : official journal of the Histochemistry Society, 1979, Volume: 27, Issue:1

    Topics: Animals; Carcinoma, Hepatocellular; Cell Line; Diethylnitrosamine; Female; gamma-Glutamyltransferase

1979
Reduction of N-nitrosodiethylamine carcinogenesis in rats by lipotrope or amino acid supplementation of a marginally deficient diet.
    Cancer research, 1977, Volume: 37, Issue:1

    Topics: Amino Acids; Animals; Body Weight; Carcinoma, Hepatocellular; Choline; Diet; Dietary Fats; Diethylni

1977
In vitro alpha-fetoprotein synthesis by monkey hepatocellular carcinoma.
    Journal of the National Cancer Institute, 1978, Volume: 60, Issue:3

    Topics: alpha-Fetoproteins; Animals; Carcinoma, Hepatocellular; Diethylnitrosamine; Female; Haplorhini; In V

1978
Modification of diethylnitrosamine liver carcinogenesis with phenobarbital but not with immunosuppression.
    Journal of the National Cancer Institute, 1975, Volume: 54, Issue:5

    Topics: Animals; Antilymphocyte Serum; Carcinoma, Hepatocellular; Diethylnitrosamine; Hydroxyurea; Immunosup

1975
Protective tumor immunity induced by potassium chloride extracts of guinea pig hepatomas.
    Journal of the National Cancer Institute, 1975, Volume: 54, Issue:6

    Topics: Animals; Antigens, Neoplasm; Carcinoma, Hepatocellular; Diethylnitrosamine; Guinea Pigs; Immunizatio

1975
Effect of a single treatment with the alkylating carcinogens dimethynitrosamine, diethylnitrosamine and methyl methanesulphonate, on liver regenerating after partial hepatectomy. I. Test for induction of liver carcinomas.
    Chemico-biological interactions, 1975, Volume: 10, Issue:5

    Topics: Adenocarcinoma; Animals; Carcinoma, Hepatocellular; Diethylnitrosamine; Dimethylnitrosamine; Female;

1975
[The tumor-tetanus assay--experimental studies on the biological differentiation between carcinogenesis and organ regeneration of the rat (author's transl)].
    Archiv fur Geschwulstforschung, 1975, Volume: 45, Issue:1

    Topics: Agglutination Tests; Animals; Antibodies, Neoplasm; Antibody Formation; Carcinoma 256, Walker; Carci

1975
The phosphorylation of nuclear proteins in the regenerating and premalignant rat liver and its significance for cell proliferation.
    Cell and tissue kinetics, 1975, Volume: 8, Issue:5

    Topics: Animals; Binding Sites; Carcinoma, Hepatocellular; Cell Division; Cell Transformation, Neoplastic; C

1975
Histologic and electron microscopy observations on diethylnitrosamine-induced hepatomas in small aquarium fish (Oryzias latipes).
    Journal of the National Cancer Institute, 1975, Volume: 55, Issue:4

    Topics: Animals; Carcinoma, Hepatocellular; Diethylnitrosamine; Endoplasmic Reticulum; Fishes; Golgi Apparat

1975
[Studies on the influence of anticoagulants on metastase formation of autochthonic hepatomas in the rat (author's transl)].
    Arzneimittel-Forschung, 1975, Volume: 25, Issue:10

    Topics: Animals; Anticoagulants; Aspirin; Carcinoma, Hepatocellular; Coumarins; Diethylnitrosamine; Female;

1975
Kinetics of induction and growth of precancerous liver-cell foci, and liver tumour formation by diethylnitrosamine in the rat.
    European journal of cancer, 1975, Volume: 11, Issue:10

    Topics: Adenosine Triphosphatases; Animals; Carcinoma, Hepatocellular; Cell Count; Diethylnitrosamine; Dose-

1975
Proceedings: Glucocorticoid receptors and response in diethylnitrosamine-induced hepatomas.
    The Journal of endocrinology, 1975, Volume: 67, Issue:2

    Topics: Animals; Carcinoma, Hepatocellular; Dexamethasone; Diethylnitrosamine; Liver Neoplasms; Male; Neopla

1975
[Several properties of the nucleic acide of nuclei and mitochondria from hepatoma induced by N-nitroso-N-diethylamine].
    Voprosy onkologii, 1975, Volume: 21, Issue:12

    Topics: Animals; Carcinoma, Hepatocellular; Cell Nucleus; Diethylnitrosamine; DNA, Neoplasm; Genotype; Liver

1975
Kinetic properties of pyruvate kinase isolated from rat hepatic tumours.
    Biochemical and biophysical research communications, 1976, Jan-12, Volume: 68, Issue:1

    Topics: Adenosine Triphosphate; Alanine; Animals; Carcinoma, Hepatocellular; Diethylnitrosamine; Kinetics; L

1976
Studies on the terminal stages of antibody-complement-mediated killing of a tumor cell. I. Evidence for the existence of an intermediate, T.
    Journal of immunology (Baltimore, Md. : 1950), 1976, Volume: 116, Issue:5

    Topics: Animals; Antibodies; Carcinoma, Hepatocellular; Cell Line; Complement System Proteins; Cytotoxicity

1976
Studies on the terminal stages of antibody-complement-mediated killing of a tumor cell. II. Inhibition of transformation of T to dead cells by 3'5' cAMP.
    Journal of immunology (Baltimore, Md. : 1950), 1976, Volume: 116, Issue:5

    Topics: Animals; Antibodies; Carcinoma, Hepatocellular; Cell Nucleus; Cell Survival; Complement System Prote

1976
Pituitary growth hormone and somatotrophs in rats bearing chemically induced hepatomas.
    Virchows Archiv. B, Cell pathology, 1976, Apr-29, Volume: 20, Issue:3

    Topics: 2-Acetylaminofluorene; Animals; Carcinoma, Hepatocellular; Diethylnitrosamine; Growth Hormone; Liver

1976
Phalloidin tolerance in rats with liver carcinoma induced by diethylnitrosamine.
    Die Naturwissenschaften, 1976, Volume: 63, Issue:9

    Topics: Animals; Carcinoma, Hepatocellular; Diethylnitrosamine; Drug Tolerance; Lethal Dose 50; Liver Neopla

1976
Composition, associated tissue methyltransferase activity, and catabolic end products of transfer RNA from carcinogen-induced hepatoma and normal monkey livers.
    Cancer research, 1977, Volume: 37, Issue:1

    Topics: Animals; Carcinoma, Hepatocellular; Diethylnitrosamine; Female; Guanine; Guanosine; Haplorhini; Hypo

1977
Nucleic acids from subcellular fractions of N-nitrosodiethylamine-induced hepatoma in mice.
    Journal of the National Cancer Institute, 1976, Volume: 57, Issue:1

    Topics: Acridines; Animals; Carcinoma, Hepatocellular; Cell Nucleus; Dactinomycin; Diethylnitrosamine; DNA,

1976
Sequential hepatic histologic and histochemical changes produced by diethylnitrosamine in the rhesus monkey.
    Journal of the National Cancer Institute, 1976, Volume: 57, Issue:6

    Topics: Adenosine Triphosphatases; Animals; Carcinoma, Hepatocellular; Diethylnitrosamine; Glucose-6-Phospha

1976
[Polyadenylic acid rich RNA fractions in primary hepatomas induced with diethylnitrosamine].
    Voprosy onkologii, 1976, Volume: 22, Issue:9

    Topics: Animals; Carcinoma, Hepatocellular; Chemical Phenomena; Chemistry; Diethylnitrosamine; Liver Neoplas

1976
[Hyperplastic foci in chemical carcinogenesis].
    Tsitologiia, 1976, Volume: 18, Issue:9

    Topics: 2-Acetylaminofluorene; Animals; Carcinoma, Hepatocellular; Cell Transformation, Neoplastic; Diethyln

1976
Enhancement of diethylnitrosamine hepatocarcinogenesis in rats by exposure to polychlorinated biphenyls or phenobarbital.
    Cancer letters, 1976, Volume: 2, Issue:1

    Topics: Animals; Carcinoma, Hepatocellular; Diethylnitrosamine; Drug Synergism; Liver Neoplasms; Male; Neopl

1976
Comparison of the blood supply to diethylnitrosamine-induced hyperplastic nodules and hepatomas and to the surrounding liver.
    Cancer research, 1977, Volume: 37, Issue:6

    Topics: Animals; Carcinoma, Hepatocellular; Diethylnitrosamine; Hyperplasia; Liver Neoplasms; Lung; Male; Mi

1977
Comparability of histological alterations during carcinogenesis in animals and man, with special reference to hepatocarcinogenesis in fish.
    IARC scientific publications, 1977, Issue:16

    Topics: Adenoma, Bile Duct; Animals; Carcinoma, Hepatocellular; Diethylnitrosamine; Fish Diseases; Humans; H

1977
Altered cobalamin distribution in rat hepatomas and in the livers of rats treated with diethylnitrosamine.
    Cancer research, 1977, Volume: 37, Issue:9

    Topics: Animals; Carcinoma, Hepatocellular; Cobamides; Diethylnitrosamine; Female; Liver; Liver Neoplasms; N

1977
The induction of tumors in Rana temporaria with nitrosamines.
    Neoplasma, 1977, Volume: 24, Issue:3

    Topics: Adenoma; Animals; Anura; Carcinoma, Hepatocellular; Diethylnitrosamine; Dimethylnitrosamine; Hematop

1977
Discussion: some comments on the potential carcinogenicity of the clinically useful antitumor agents.
    Cancer, 1977, Volume: 40, Issue:4 Suppl

    Topics: Animals; Antineoplastic Agents; Carcinogens; Carcinoma, Hepatocellular; Diethylnitrosamine; Haplorhi

1977
Susceptibility to and escape from complement-mediated lysis of guinea-pig hepatoma line-10.
    International journal of cancer, 1977, Jul-15, Volume: 20, Issue:1

    Topics: Animals; Antibodies, Anti-Idiotypic; Antibodies, Neoplasm; Carcinoma, Hepatocellular; Cell Line; Chr

1977
Experimental carcinoma of liver in macaque monkeys exposed to diethylnitrosamine and hepatitis B virus.
    Journal of the National Cancer Institute, 1977, Volume: 59, Issue:5

    Topics: Animals; Animals, Newborn; Carcinoma, Hepatocellular; Diethylnitrosamine; Female; Haplorhini; Hepati

1977
Hepatic cell loss and proliferation induced by N-2-fluorenylacetamide, diethylnitrosamine, and aflatoxin B1 in relation to hepatoma induction.
    British journal of cancer, 1977, Volume: 36, Issue:2

    Topics: 2-Acetylaminofluorene; Aflatoxins; Animals; Carcinoma, Hepatocellular; Cell Division; Diethylnitrosa

1977
Tumor frequency and characteristics after a single dose of dimethylnitrosamine or diethylnitrosamine in partially hepatectomized rats.
    Zeitschrift fur Krebsforschung und klinische Onkologie. Cancer research and clinical oncology, 1977, Volume: 90, Issue:1

    Topics: Adenocarcinoma; Adenoma, Bile Duct; Animals; Carcinoma, Hepatocellular; Diethylnitrosamine; Dimethyl

1977
[Activity and isoenzymatic spectrum of hexokinase and pyruvate kinase during carcinogenesis in the liver and in primary hepatoma].
    Vestnik Akademii meditsinskikh nauk SSSR, 1978, Issue:1

    Topics: Animals; Carcinoma, Hepatocellular; Diethylnitrosamine; Hexokinase; Isoenzymes; Liver Neoplasms; Neo

1978
In vitro demonstration of Mallory body formation in liver cells from rats fed diethylnitrosamine.
    Laboratory investigation; a journal of technical methods and pathology, 1978, Volume: 38, Issue:3

    Topics: Animals; Carcinoma, Hepatocellular; Diethylnitrosamine; Female; In Vitro Techniques; Liver; Liver Ne

1978
Nucleic acids from subcellular fractions of N-nitrosodiethylamine-induced hepatoma in mice. II. Changes in gene expression during tumor progression.
    Neoplasma, 1978, Volume: 25, Issue:2

    Topics: Animals; Carcinoma, Hepatocellular; Diethylnitrosamine; DNA, Mitochondrial; DNA, Neoplasm; Liver Neo

1978
[Role of hyperplasia in hepatic carcinogenesis].
    Vestnik Akademii meditsinskikh nauk SSSR, 1978, Issue:2

    Topics: Animals; Carcinoma, Hepatocellular; Diethylnitrosamine; Hyperplasia; Liver; Liver Neoplasms; Mice; N

1978
Morphology and metastatic nature of induced hepatic nodular lesions in C57BL x C3H F1 mice.
    Cancer research, 1978, Volume: 38, Issue:7

    Topics: Animals; Benzidines; Benzopyrenes; Carcinoma, Hepatocellular; Diethylnitrosamine; Ethylnitrosourea;

1978
Different deviation patterns of carbohydrate-metabolizing enzymes in primary rat hepatomas induced by different chemical carcinogens.
    Cancer research, 1978, Volume: 38, Issue:9

    Topics: 2-Acetylaminofluorene; Animals; Carbohydrate Metabolism; Carcinogens; Carcinoma, Hepatocellular; Cel

1978
Carcinogenesis of N-nitrosodiethylamine (DENA) in chickens and domestic cats.
    International journal of cancer, 1978, Nov-15, Volume: 22, Issue:5

    Topics: Adenocarcinoma; Administration, Oral; Animals; Animals, Domestic; Carcinogens; Carcinoma, Hepatocell

1978
Guinea pig cell-mediated tumor immunity: the chromium release assay detects both cytolysis and serum blocking for syngeneic chemically-induced tumors.
    Immunological communications, 1979, Volume: 8, Issue:1

    Topics: Animals; Binding, Competitive; Carcinoma, Hepatocellular; Cell Transformation, Neoplastic; Chromium

1979
Sequential analysis of hepatic carcinogenesis: a comparative study of the ultrastructure of preneoplastic, malignant, prenatal, postnatal, and regenerating liver.
    Laboratory investigation; a journal of technical methods and pathology, 1979, Volume: 41, Issue:1

    Topics: Animals; Carcinoma, Hepatocellular; Cell Membrane; Cell Transformation, Neoplastic; Cytoskeleton; Di

1979
Histopathological studies on renal tubular cell tumors in rats treated with N-ethyl-N-hydroxyethylnitrosamine.
    Gan, 1979, Volume: 70, Issue:6

    Topics: Animals; Carcinogens; Carcinoma, Hepatocellular; Diethylnitrosamine; Kidney; Kidney Neoplasms; Kidne

1979
The onset of oncogene hypomethylation in the livers of rats fed methyl-deficient, amino acid-defined diets.
    Carcinogenesis, 1992, Volume: 13, Issue:10

    Topics: Amino Acids; Animals; Carcinoma, Hepatocellular; Cocarcinogenesis; Diet; Diethylnitrosamine; DNA Pro

1992
Influence of hepatic tumors caused by diethylnitrosamine on hexachlorobenzene-induced porphyria in rats.
    Cancer letters, 1991, Jul-04, Volume: 58, Issue:3

    Topics: 5-Aminolevulinate Synthetase; Aminolevulinic Acid; Animals; Carcinoma, Hepatocellular; Cytochrome P-

1991
Enhanced expression of ganglioside GD3 in human and rat hepatocellular carcinoma cells and NIH 3T3 cells transfected with human tumor DNAs.
    Cancer research, 1990, Dec-01, Volume: 50, Issue:23

    Topics: Animals; Antigens, Differentiation, T-Lymphocyte; Carcinoma, Hepatocellular; CD57 Antigens; Cell Lin

1990
The effects of alternating dietary restriction and ad libitum feeding of mice on the development of diethylnitrosamine-induced liver tumours and its correlation to insulinaemia.
    Carcinogenesis, 1991, Volume: 12, Issue:2

    Topics: Adenoma; Animals; Body Weight; Carcinoma, Hepatocellular; Diet; Diethylnitrosamine; Eating; Female;

1991
Synergy between hepatitis B virus expression and chemical hepatocarcinogens in transgenic mice.
    Cancer research, 1991, Feb-15, Volume: 51, Issue:4

    Topics: Adenoma; Aflatoxins; Animals; Carcinoma, Hepatocellular; Diethylnitrosamine; Female; Gene Expression

1991
Cytochrome P-450 isozyme pattern is related to individual susceptibility to diethylnitrosamine-induced liver cancer in rats.
    Japanese journal of cancer research : Gann, 1991, Volume: 82, Issue:2

    Topics: 7-Alkoxycoumarin O-Dealkylase; Animals; Antipyrine; Aryl Hydrocarbon Hydroxylases; Carcinoma, Hepato

1991
[Biological activity of hepatocellular carcinoma by analysing nuclear DNA ploidy patterns and using anti BrdU monoclonal antibody].
    Nihon Geka Gakkai zasshi, 1989, Volume: 90, Issue:2

    Topics: Aged; Animals; Antibodies, Monoclonal; Bromodeoxyuridine; Carcinoma, Hepatocellular; Cell Nucleus; D

1989
Effect of phenobarbital on the gamma-glutamyltranspeptidase activity and the remodeling of nodules induced by the initiation-selection model.
    Cancer letters, 1985, Volume: 27, Issue:2

    Topics: 2-Acetylaminofluorene; Animals; Carcinoma, Hepatocellular; Diethylnitrosamine; Disease Models, Anima

1985
Transplantable chemically-induced liver tumors in the viviparous fish Poeciliopsis.
    Experimental and molecular pathology, 1985, Volume: 42, Issue:3

    Topics: 9,10-Dimethyl-1,2-benzanthracene; Adenocarcinoma; Adenoma, Bile Duct; Animals; Carcinoma, Hepatocell

1985
The influence of metabolic liver defects on diethylnitrosamine (NDEA)-carcinogenesis in Gunn rats.
    Experimental pathology, 1985, Volume: 27, Issue:3

    Topics: Adenoma; Animals; Carcinoma, Hepatocellular; Diethylnitrosamine; Female; Hemangioendothelioma; Heman

1985