glucaric acid has been researched along with Disease Models, Animal in 17 studies
Timeframe | Studies, this research(%) | All Research% |
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pre-1990 | 0 (0.00) | 18.7374 |
1990's | 1 (5.88) | 18.2507 |
2000's | 2 (11.76) | 29.6817 |
2010's | 13 (76.47) | 24.3611 |
2020's | 1 (5.88) | 2.80 |
Authors | Studies |
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Abrams, G; Adolfsson, E; Agarwal, PK; Akkan, AG; Al Alhareth, NS; Alves, VGL; Armentano, R; Bahroos, E; Baig, M; Baldridge, KK; Barman, S; Bartolucci, C; Basit, A; Bertoli, SV; Bian, L; Bigatti, G; Bobenko, AI; Boix, PP; Bokulic, T; Bolink, HJ; Borowiec, J; Bulski, W; Burciaga, J; Butt, NS; Cai, AL; Campos, AM; Cao, G; Cao, Y; Čapo, I; Caruso, ML; Chao, CT; Cheatum, CM; Chelminski, K; Chen, AJW; Chen, C; Chen, CH; Chen, D; Chen, G; Chen, H; Chen, LH; Chen, R; Chen, RX; Chen, X; Cherdtrakulkiat, R; Chirvony, VS; Cho, JG; Chu, K; Ciurlino, D; Coletta, S; Contaldo, G; Crispi, F; Cui, JF; D'Esposito, M; de Biase, S; Demir, B; Deng, W; Deng, Z; Di Pinto, F; Domenech-Ximenos, B; Dong, G; Drácz, L; Du, XJ; Duan, LJ; Duan, Y; Ekendahl, D; Fan, W; Fang, L; Feng, C; Followill, DS; Foreman, SC; Fortunato, G; Frew, R; Fu, M; Gaál, V; Ganzevoort, W; Gao, DM; Gao, X; Gao, ZW; Garcia-Alvarez, A; Garza, MS; Gauthier, L; Gazzaz, ZJ; Ge, RS; Geng, Y; Genovesi, S; Geoffroy, V; Georg, D; Gigli, GL; Gong, J; Gong, Q; Groeneveld, J; Guerra, V; Guo, Q; Guo, X; Güttinger, R; Guyo, U; Haldar, J; Han, DS; Han, S; Hao, W; Hayman, A; He, D; Heidari, A; Heller, S; Ho, CT; Ho, SL; Hong, SN; Hou, YJ; Hu, D; Hu, X; Hu, ZY; Huang, JW; Huang, KC; Huang, Q; Huang, T; Hwang, JK; Izewska, J; Jablonski, CL; Jameel, T; Jeong, HK; Ji, J; Jia, Z; Jiang, W; Jiang, Y; Kalumpha, M; Kang, JH; Kazantsev, P; Kazemier, BM; Kebede, B; Khan, SA; Kiss, J; Kohen, A; Kolbenheyer, E; Konai, MM; Koniarova, I; Kornblith, E; Krawetz, RJ; Kreouzis, T; Kry, SF; Laepple, T; Lalošević, D; Lan, Y; Lawung, R; Lechner, W; Lee, KH; Lee, YH; Leonard, C; Li, C; Li, CF; Li, CM; Li, F; Li, J; Li, L; Li, S; Li, X; Li, Y; Li, YB; Li, Z; Liang, C; Lin, J; Lin, XH; Ling, M; Link, TM; Liu, HH; Liu, J; Liu, M; Liu, W; Liu, YP; Lou, H; Lu, G; Lu, M; Lun, SM; Ma, Z; Mackensen, A; Majumdar, S; Martineau, C; Martínez-Pastor, JP; McQuaid, JR; Mehrabian, H; Meng, Y; Miao, T; Miljković, D; Mo, J; Mohamed, HSH; Mohtadi, M; Mol, BWJ; Moosavi, L; Mosdósi, B; Nabu, S; Nava, E; Ni, L; Novakovic-Agopian, T; Nyamunda, BC; Nyul, Z; Önal, B; Özen, D; Özyazgan, S; Pajkrt, E; Palazon, F; Park, HW; Patai, Á; Patai, ÁV; Patzke, GR; Payette, G; Pedoia, V; Peelen, MJCS; Pellitteri, G; Peng, J; Perea, RJ; Pérez-Del-Rey, D; Popović, DJ; Popović, JK; Popović, KJ; Posecion, L; Povall, J; Prachayasittikul, S; Prachayasittikul, V; Prat-González, S; Qi, B; Qu, B; Rakshit, S; Ravelli, ACJ; Ren, ZG; Rivera, SM; Salo, P; Samaddar, S; Samper, JLA; Samy El Gendy, NM; Schmitt, N; Sekerbayev, KS; Sepúlveda-Martínez, Á; Sessolo, M; Severi, S; Sha, Y; Shen, FF; Shen, X; Shen, Y; Singh, P; Sinthupoom, N; Siri, S; Sitges, M; Slovak, JE; Solymosi, N; Song, H; Song, J; Song, M; Spingler, B; Stewart, I; Su, BL; Su, JF; Suming, L; Sun, JX; Tantimavanich, S; Tashkandi, JM; Taurbayev, TI; Tedgren, AC; Tenhunen, M; Thwaites, DI; Tibrewala, R; Tomsejm, M; Triana, CA; Vakira, FM; Valdez, M; Valente, M; Valentini, AM; Van de Winckel, A; van der Lee, R; Varga, F; Varga, M; Villarino, NF; Villemur, R; Vinatha, SP; Vincenti, A; Voskamp, BJ; Wang, B; Wang, C; Wang, H; Wang, HT; Wang, J; Wang, M; Wang, N; Wang, NC; Wang, Q; Wang, S; Wang, X; Wang, Y; Wang, Z; Wen, N; Wesolowska, P; Willis, M; Wu, C; Wu, D; Wu, L; Wu, X; Wu, Z; Xia, JM; Xia, X; Xia, Y; Xiao, J; Xiao, Y; Xie, CL; Xie, LM; Xie, S; Xing, Z; Xu, C; Xu, J; Yan, D; Yan, K; Yang, S; Yang, X; Yang, XW; Ye, M; Yin, Z; Yoon, N; Yoon, Y; Yu, H; Yu, K; Yu, ZY; Zhang, B; Zhang, GY; Zhang, H; Zhang, J; Zhang, M; Zhang, Q; Zhang, S; Zhang, W; Zhang, X; Zhang, Y; Zhang, YW; Zhang, Z; Zhao, D; Zhao, F; Zhao, P; Zhao, W; Zhao, Z; Zheng, C; Zhi, D; Zhou, C; Zhou, FY; Zhu, D; Zhu, J; Zhu, Q; Zinyama, NP; Zou, M; Zou, Z | 1 |
Awasthi, V; Gali, H; Houson, H; Mdzinarishvili, A; Sidorov, E | 1 |
Barea-Mendoza, J; Brashears, SL; Cortés-Puch, I; Kim-Shapiro, DB; Klein, HG; Natanson, C; Perlegas, A; Solomon, SB; Suffredini, DA; Sun, J; Xu, W | 1 |
Awasthi, V; Hedrick, AF; Houson, HA; Nkepang, GN | 1 |
Bohl, JA; Grinchuk, V; Notari, L; Qin, B; Sesaki, H; Shea-Donohue, T; Smith, A; Sun, R; Urban, JF; Yang, Z; Zhang, Z; Zhao, A | 1 |
Aleksandrov, VA; Bespalov, VG | 1 |
Frostad, KB; Johnson, AC; Zager, RA | 1 |
Aleman, T; Bhuyan, RK; Dunaief, JL; Kanu, LN; Kelly, KL; Li, Y; Morgan, JI; Song, D | 1 |
Donpunha, W; Kukongviriyapan, U; Kukongviriyapan, V; Pakdeechote, P; Sangartit, W; Shibahara, S | 1 |
Hanausek, M; Kowalczyk, MC; Kowalczyk, P; Slaga, TJ; Tolstykh, O; Walaszek, Z | 1 |
Becker, K; Johnson, AC; Zager, RA | 1 |
Alonso, O; Cabral, P; Deutscher, SL; Figueroa, SD; Gambini, JP; Ma, L; Quinn, TP; Savio, E; Zhang, X | 1 |
Bach, V; Gay-Quéheillard, J; Khorsi-Cauet, H; Villegier, AS; Vu'o'ng Lê, B | 1 |
Angerosa, M; Cao, G; Oliveri, L; Toblli, JE | 1 |
Barrett, HH; Bettan, M; Furenlid, LR; Kastis, GA; Liu, Z; Pak, KY; Stevenson, GD; Wilson, DW | 1 |
Eriguchi, M; Fujii, Y; Hasumi, K; Hirai, J; Iwasa, H; Takahama, Y | 1 |
Abou-Issa, H; Koolemans-Beynen, A; Meredith, TA; Webb, TE | 1 |
1 review(s) available for glucaric acid and Disease Models, Animal
16 other study(ies) available for glucaric acid and Disease Models, Animal
Article | Year |
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PET Detection of Cerebral Necrosis Using an Infarct-Avid Agent 2-Deoxy-2-[
Topics: Animals; Biomarkers; Brain; Cerebral Infarction; Cytokines; Disease Models, Animal; Glucaric Acid; Inflammation Mediators; Male; Necrosis; Neutrophils; Oxidation-Reduction; Perfusion; Positron-Emission Tomography; Stroke; Tomography, Emission-Computed, Single-Photon | 2020 |
Parenteral irons versus transfused red blood cells for treatment of anemia during canine experimental bacterial pneumonia.
Topics: Anemia; Animals; Disease Models, Animal; Dogs; Erythrocyte Transfusion; Ferric Compounds; Ferric Oxide, Saccharated; Ferrosoferric Oxide; Glucaric Acid; Iron; Lung Injury; Mortality; Pneumonia, Bacterial; Pneumonia, Staphylococcal | 2017 |
Imaging of isoproterenol-induced myocardial injury with
Topics: Animals; Biological Transport; Cell Line; Disease Models, Animal; Dose-Response Relationship, Drug; Female; Fluorine Radioisotopes; Glucaric Acid; Isoproterenol; Isotope Labeling; Kinetics; Male; Mice; Myocardial Infarction; Positron-Emission Tomography; Rats; Tissue Distribution | 2018 |
Parasitic nematode-induced modulation of body weight and associated metabolic dysfunction in mouse models of obesity.
Topics: Adipose Tissue; Animals; Blood Glucose; Disease Models, Animal; Energy Metabolism; Glucaric Acid; GTP Phosphohydrolases; Homeostasis; Interleukin-13; Male; Mice; Mice, Inbred C57BL; Mice, Knockout; Nippostrongylus; Obesity; Receptor-Interacting Protein Serine-Threonine Kinase 2; Receptor-Interacting Protein Serine-Threonine Kinases; STAT6 Transcription Factor; Strongylida Infections; Weight Gain | 2013 |
[Anticarcinogenic effect of potassium salts of glucaric and glucuronic acid in induced models of cervical and esophageal tumors].
Topics: 9,10-Dimethyl-1,2-benzanthracene; Animals; Anticarcinogenic Agents; Calcium Compounds; Carcinogens; Cell Transformation, Neoplastic; Dimethylnitrosamine; Disease Models, Animal; Esophageal Neoplasms; Female; Glucaric Acid; Glucuronic Acid; Mice; Potassium Compounds; Salts; Uterine Cervical Neoplasms | 2012 |
Combined iron sucrose and protoporphyrin treatment protects against ischemic and toxin-mediated acute renal failure.
Topics: Acute Kidney Injury; alpha 1-Antitrypsin; Alpha-Globulins; Animals; Blood Urea Nitrogen; Creatinine; Disease Models, Animal; Drug Therapy, Combination; Ferric Compounds; Ferric Oxide, Saccharated; Glucaric Acid; Glycerol; Haptoglobins; Heme Oxygenase-1; Hemopexin; Hepcidins; Interleukin-10; Kidney; Male; Maleates; Metalloporphyrins; Mice; Protective Agents; Protoporphyrins; RNA, Messenger; Troponin C | 2016 |
AMD-like retinopathy associated with intravenous iron.
Topics: Animals; Apoferritins; Disease Models, Animal; Dose-Response Relationship, Drug; Ferric Compounds; Ferric Oxide, Saccharated; Gene Expression Regulation; Glucaric Acid; Injections, Intravenous; Iron; Macular Degeneration; Male; Mice; Mice, Inbred C57BL; Oxidative Stress; Real-Time Polymerase Chain Reaction; Receptors, Transferrin; Retinal Pigment Epithelium; RNA | 2016 |
Tetrahydrocurcumin in combination with deferiprone attenuates hypertension, vascular dysfunction, baroreflex dysfunction, and oxidative stress in iron-overloaded mice.
Topics: Administration, Oral; Animals; Baroreflex; Curcumin; Deferiprone; Disease Models, Animal; Drug Therapy, Combination; Ferric Compounds; Ferric Oxide, Saccharated; Glucaric Acid; Hypertension; Iron Chelating Agents; Iron Overload; Male; Mice; Mice, Inbred ICR; Nitric Oxide Synthase Type II; Nitric Oxide Synthase Type III; Oxidative Stress; Pyridones | 2016 |
Synergistic effects of combined phytochemicals and skin cancer prevention in SENCAR mice.
Topics: Administration, Topical; Animals; Anticarcinogenic Agents; Antineoplastic Agents, Phytogenic; Antineoplastic Combined Chemotherapy Protocols; Apoptosis; Cell Proliferation; Chemoprevention; Diet; Disease Models, Animal; Drug Synergism; Ellagic Acid; Female; Genes, ras; Glucaric Acid; Grape Seed Extract; Mice; Mice, Inbred SENCAR; Mutation; Phytotherapy; Resveratrol; Reverse Transcriptase Polymerase Chain Reaction; Skin Neoplasms; Stilbenes | 2010 |
Parenteral iron formulations differentially affect MCP-1, HO-1, and NGAL gene expression and renal responses to injury.
Topics: Acute Kidney Injury; Acute-Phase Proteins; Animals; Blood Urea Nitrogen; Cell Line; Cell Survival; Chemistry, Pharmaceutical; Chemokine CCL2; Disease Models, Animal; Endotoxins; Ferric Compounds; Ferric Oxide, Saccharated; Ferrosoferric Oxide; Gene Expression Regulation; Glucaric Acid; Gluconates; Glycerol; Heme Oxygenase-1; Humans; Injections, Intravenous; Kidney Tubules, Proximal; Lipocalin-2; Lipocalins; Membrane Proteins; Mice; Oncogene Proteins; Oxidative Stress; Proto-Oncogene Proteins; RNA, Messenger | 2010 |
Evaluation of 99mTc-glucarate as a breast cancer imaging agent in a xenograft animal model.
Topics: Animals; Breast Neoplasms; Cell Line, Tumor; Cell Transformation, Neoplastic; Diagnostic Imaging; Disease Models, Animal; Female; Glucaric Acid; Humans; Mice; Organotechnetium Compounds; Xenograft Model Antitumor Assays | 2011 |
New rat models of iron sucrose-induced iron overload.
Topics: Animals; Antimicrobial Cationic Peptides; Biomarkers; Disease Models, Animal; Dose-Response Relationship, Drug; Ferric Compounds; Ferric Oxide, Saccharated; Gene Expression; Glucaric Acid; Hepcidins; Humans; Inflammation; Iron; Iron Overload; Lipid Peroxidation; Liver; Oxidative Stress; Rats; Serum; Time Factors | 2011 |
Comparison of oxidative stress and inflammation induced by different intravenous iron sucrose similar preparations in a rat model.
Topics: Anemia, Iron-Deficiency; Animals; Disease Models, Animal; Female; Ferric Compounds; Ferric Oxide, Saccharated; Glucaric Acid; Inflammation; Male; Oxidative Stress; Rats; Rats, Sprague-Dawley | 2012 |
High-resolution imaging with (99m)Tc-glucarate for assessing myocardial injury in rat heart models exposed to different durations of ischemia with reperfusion.
Topics: Animals; Disease Models, Animal; Glucaric Acid; Heart; Image Enhancement; Male; Myocardial Ischemia; Myocardial Reperfusion Injury; Myocardium; Organotechnetium Compounds; Radiopharmaceuticals; Rats; Rats, Sprague-Dawley; Reproducibility of Results; Sensitivity and Specificity; Severity of Illness Index; Tomography, Emission-Computed, Single-Photon | 2004 |
Inhibition of liver metastases and tumor cell invasion in spontaneous liver metastasis model (LMFS) by sodium D-glucaro-delta-lactam (ND2001).
Topics: Animals; Antineoplastic Agents; Cell Count; Disease Models, Animal; Female; Glucaric Acid; Infusions, Intravenous; Injections, Subcutaneous; Liver Neoplasms; Matrix Metalloproteinase 9; Mice; Mice, Inbred BALB C; Neoplasm Invasiveness; Neoplasm Transplantation; Tumor Cells, Cultured | 2000 |
Antitumour synergism between non-toxic dietary combinations of isotretinoin and glucarate.
Topics: 9,10-Dimethyl-1,2-benzanthracene; Animals; Antineoplastic Combined Chemotherapy Protocols; Cell Division; Diet; Disease Models, Animal; Dose-Response Relationship, Drug; Drug Resistance; Drug Synergism; Female; Fenretinide; Glucaric Acid; Isotretinoin; Mammary Neoplasms, Experimental; Rats; Rats, Inbred Strains; Tretinoin | 1992 |