nadp has been researched along with Pancreatic Neoplasms in 15 studies
Timeframe | Studies, this research(%) | All Research% |
---|---|---|
pre-1990 | 1 (6.67) | 18.7374 |
1990's | 1 (6.67) | 18.2507 |
2000's | 4 (26.67) | 29.6817 |
2010's | 5 (33.33) | 24.3611 |
2020's | 4 (26.67) | 2.80 |
Authors | Studies |
---|---|
Boutros, PC; Brown, KR; Chung, S; Dhavarasa, P; Dvorkin-Gheva, A; Hedley, D; Jain, P; Jang, GH; Jessa, F; Koritzinsky, M; Malbeteau, L; Moffat, J; Mollen, E; Notta, F; Vora, P; Wouters, BG; Xie, M | 1 |
Fang, J; Guo, D; Jiang, Y; Li, L; Li, M; Liang, J; Lin, SH; Lu, Z; Ma, C; Shao, F; Tong, Y; Yang, D; Yu, Q; Yu, R | 1 |
Shang, H; Sun, L; Wu, Y; Xin, X | 1 |
Asara, JM; Blenis, J; Dephoure, N; Gomes, AP; Low, V; McReynolds, MR; Piskounova, E; Rabinowitz, JD; Schaffer, BE; Schild, T; Shea, C | 1 |
Cantley, LC; Kimmelman, AC; Lyssiotis, CA; Son, J | 1 |
Cheng, JK; Gao, X; Huang, X; Lei, QY; Liu, YB; Wang, J; Wang, TS; Wang, YP; Xu, YY; Zhou, W; Zou, SW; Zuo, Y | 1 |
Achreja, A; Baddour, J; Chang, E; Chen, A; DePinho, RA; Dey, P; Draetta, G; Fleming, J; Genovese, G; Gutschner, T; Kang, Y; Lan, Z; Lee, J; Liao, WT; Maitra, A; Muller, F; Nagrath, D; Satani, N; Viale, A; Wang, H; Wang, YA; Wu, CC; Yang, L; Ying, H; Zhao, D | 1 |
Achreja, A; Chen, G; Chiao, PJ; DePinho, RA; Fu, J; Huang, P; Hung, MC; Ju, HQ; Ling, J; Lu, Y; Nagrath, D; Tian, T; Wang, H; Wu, M; Xu, RH; Yang, L; Yao, J; Ying, H; Zhuang, Z | 1 |
Binker, MG; Binker-Cosen, AA; Cosen-Binker, LI; Oliver, B; Richards, D | 1 |
Binker, MG; Binker-Cosen, AA; Cosen-Binker, LI; de Cosen, RH; Gaisano, HY; Richards, D | 1 |
Chaffard, G; Maechler, P; Merglen, A; Rubi, B; Theander, S; Wollheim, CB | 1 |
Asbury, CR; Aykin-Burns, N; Coleman, MC; Cullen, JJ; Daniels, D; Du, J; Li, L; Smith, BJ; Spitz, DR | 1 |
Ashford, ML; Hales, CN; Reale, V | 1 |
Chen, SC; Kolar, C; Lawson, TA; Mirvish, SS; Wang, X; Zhou, L | 1 |
Blachier, F; Malaisse, WJ; Sener, A | 1 |
15 other study(ies) available for nadp and Pancreatic Neoplasms
Article | Year |
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NOX4 links metabolic regulation in pancreatic cancer to endoplasmic reticulum redox vulnerability and dependence on PRDX4.
Topics: Endoplasmic Reticulum; Humans; Hydrogen Peroxide; NADP; NADPH Oxidase 4; Oxidation-Reduction; Pancreatic Neoplasms; Peroxiredoxins; Reactive Oxygen Species | 2021 |
SUCLA2-coupled regulation of GLS succinylation and activity counteracts oxidative stress in tumor cells.
Topics: Animals; Carcinoma, Pancreatic Ductal; Cell Line, Tumor; Cell Proliferation; Gene Expression Regulation, Neoplastic; Glutaminase; Glutamine; Glutathione; Heterografts; Humans; Male; Mice; Mice, Nude; NADP; Oxidative Stress; p38 Mitogen-Activated Protein Kinases; Pancreatic Neoplasms; Phosphorylation; Prognosis; Protein Processing, Post-Translational; Signal Transduction; Succinate-CoA Ligases; Succinic Acid; Survival Analysis | 2021 |
Hypericin-mediated photodynamic therapy enhances gemcitabine induced Capan-2 cell apoptosis via inhibiting NADPH level.
Topics: Anthracenes; Apoptosis; Cell Line, Tumor; Cell Proliferation; Deoxycytidine; Gemcitabine; Humans; NADP; Pancreatic Neoplasms; Perylene; Photochemotherapy; Reactive Oxygen Species | 2022 |
NADK is activated by oncogenic signaling to sustain pancreatic ductal adenocarcinoma.
Topics: Adenocarcinoma; Animals; Biosynthetic Pathways; Carcinogenesis; Carcinoma, Pancreatic Ductal; Cell Line, Tumor; Cell Proliferation; Female; HEK293 Cells; Humans; Male; Mice, Inbred C57BL; Mice, Nude; NADP; Pancreatic Neoplasms; Phosphorylation; Phosphoserine; Phosphotransferases (Alcohol Group Acceptor); Protein Kinase C; Proto-Oncogene Proteins p21(ras); Signal Transduction | 2021 |
Pancreatic cancers rely on a novel glutamine metabolism pathway to maintain redox balance.
Topics: Cell Proliferation; Glutamine; Humans; Metabolic Networks and Pathways; NADP; Oxidation-Reduction; Pancreatic Neoplasms | 2013 |
Arginine Methylation of MDH1 by CARM1 Inhibits Glutamine Metabolism and Suppresses Pancreatic Cancer.
Topics: Arginine; Carcinoma, Pancreatic Ductal; Cell Line, Tumor; Cell Proliferation; Gene Expression Regulation, Neoplastic; Glutamine; HEK293 Cells; Humans; Malate Dehydrogenase (NADP+); Methylation; Mitochondria; Models, Molecular; NADP; Oxidation-Reduction; Pancreatic Neoplasms; Protein Multimerization; Protein Structure, Secondary; Protein-Arginine N-Methyltransferases; RNA, Small Interfering; Signal Transduction | 2016 |
Genomic deletion of malic enzyme 2 confers collateral lethality in pancreatic cancer.
Topics: Amino Acids, Branched-Chain; AMP-Activated Protein Kinases; Animals; Biocatalysis; Carcinoma, Pancreatic Ductal; Gene Deletion; Humans; Ketoglutaric Acids; Malate Dehydrogenase; Male; Mice; Minor Histocompatibility Antigens; Mitochondria; NADP; Pancreatic Neoplasms; Pregnancy Proteins; Reactive Oxygen Species; Sterol Regulatory Element Binding Protein 1; Transaminases | 2017 |
Mutant Kras- and p16-regulated NOX4 activation overcomes metabolic checkpoints in development of pancreatic ductal adenocarcinoma.
Topics: Animals; Carcinoma, Pancreatic Ductal; Cell Line, Tumor; Cell Proliferation; Cyclin-Dependent Kinase Inhibitor p16; Enzyme Assays; Gene Expression Profiling; Gene Expression Regulation, Neoplastic; Glycolysis; Humans; Male; Mice; Mice, Inbred C57BL; Mice, Transgenic; Mutation; NADP; NADPH Oxidase 4; NADPH Oxidases; NF-kappa B; Oxidation-Reduction; Pancreas; Pancreatic Neoplasms; Proto-Oncogene Proteins p21(ras); RNA, Small Interfering; Signal Transduction; Up-Regulation; Xenograft Model Antitumor Assays | 2017 |
EGF promotes invasion by PANC-1 cells through Rac1/ROS-dependent secretion and activation of MMP-2.
Topics: Cell Line, Tumor; Enzyme Activation; Epidermal Growth Factor; Humans; Matrix Metalloproteinase 2; Matrix Metalloproteinase Inhibitors; NADP; Neoplasm Invasiveness; Pancreatic Neoplasms; Phosphatidylinositol 3-Kinases; rac1 GTP-Binding Protein; Reactive Oxygen Species; src-Family Kinases | 2009 |
Hypoxia-reoxygenation increase invasiveness of PANC-1 cells through Rac1/MMP-2.
Topics: Cell Hypoxia; Cell Line, Tumor; Humans; Matrix Metalloproteinase 2; NADP; Neoplasm Invasiveness; Oxygen; Pancreatic Neoplasms; Phosphatidylinositol 3-Kinases; rac1 GTP-Binding Protein; Reactive Oxygen Species | 2010 |
Glucose sensitivity and metabolism-secretion coupling studied during two-year continuous culture in INS-1E insulinoma cells.
Topics: Adenosine Triphosphate; Animals; Calcium; Cell Differentiation; Cell Division; Cytosol; Diazoxide; Electric Conductivity; Electrophysiology; Glucose; Insulin; Insulin Secretion; Insulinoma; Islets of Langerhans; Membrane Potentials; Mitochondria; NADP; Pancreatic Neoplasms; Patch-Clamp Techniques; Potassium Chloride; Rats; Tolbutamide; Tumor Cells, Cultured | 2004 |
2-deoxy-D-glucose causes cytotoxicity, oxidative stress, and radiosensitization in pancreatic cancer.
Topics: Acetylcysteine; Animals; Antineoplastic Agents; Cell Line, Tumor; Deoxyglucose; Free Radical Scavengers; Glucose; Humans; Mice; Mice, Inbred Strains; NADP; Oxidative Stress; Pancreatic Neoplasms; Radiation Tolerance; Radiation-Sensitizing Agents; Radiation, Ionizing; Sulfhydryl Compounds | 2008 |
The effects of pyridine nucleotides on the activity of a calcium-activated nonselective cation channel in the rat insulinoma cell line, CRI-G1.
Topics: Animals; Calcium; Insulinoma; Ion Channels; Islets of Langerhans; Kinetics; Membrane Potentials; NAD; NADP; Pancreatic Neoplasms; Patch-Clamp Techniques; Rats; Tumor Cells, Cultured | 1994 |
Metabolism of the hamster pancreatic carcinogen methyl-2-oxopropylnitrosamine by hamster liver and pancreas.
Topics: Animals; Carcinogens; Cricetinae; Cytosol; In Vitro Techniques; Liver; Male; Mesocricetus; Microsomes, Liver; NAD; NADP; Nitrosamines; Pancreas; Pancreatic Neoplasms; Rats; Rats, Sprague-Dawley | 2000 |
Crabtree effect in tumoral pancreatic islet cells.
Topics: Adenine Nucleotides; Adenoma, Islet Cell; Animals; Glucose; Glutamine; Lactates; Lactic Acid; Lipids; NAD; NADP; Oxidation-Reduction; Oxygen Consumption; Palmitic Acid; Palmitic Acids; Pancreatic Neoplasms; Tumor Cells, Cultured | 1988 |