myristic acid has been researched along with palmitoyl coenzyme a in 7 studies
Timeframe | Studies, this research(%) | All Research% |
---|---|---|
pre-1990 | 1 (14.29) | 18.7374 |
1990's | 0 (0.00) | 18.2507 |
2000's | 3 (42.86) | 29.6817 |
2010's | 3 (42.86) | 24.3611 |
2020's | 0 (0.00) | 2.80 |
Authors | Studies |
---|---|
Schmidt, MF | 1 |
Corkey, BE; Korchak, HM; Yaney, GC | 1 |
Capito, K; Thams, P | 1 |
Danielsson, KN; Fogelstrand, L; HÃ¥versen, L; Wiklund, O | 1 |
Cowart, LA; Futerman, AH; Russo, SB; Tidhar, R | 1 |
Cheng, DH; DeRisi, JL; Greninger, AL; Kao, J; Knudsen, GM; Kuypers, FA; Soupene, E; Wang, D | 1 |
El-Kabbani, O; Endo, S; Hara, A; Matsunaga, T; Miura, T; Nishinaka, T; Terada, T | 1 |
7 other study(ies) available for myristic acid and palmitoyl coenzyme a
Article | Year |
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The transfer of myristic and other fatty acids on lipid and viral protein acceptors in cultured cells infected with Semliki Forest and influenza virus.
Topics: Acyl Coenzyme A; Animals; Chick Embryo; Cricetinae; Hydroxylamine; Hydroxylamines; Lipid Metabolism; Membrane Proteins; Myristic Acid; Myristic Acids; Orthomyxoviridae Infections; Palmitic Acid; Palmitic Acids; Palmitoyl Coenzyme A; Semliki forest virus; Togaviridae Infections; Viral Proteins | 1984 |
Long-chain acyl CoA regulation of protein kinase C and fatty acid potentiation of glucose-stimulated insulin secretion in clonal beta-cells.
Topics: Acyl Coenzyme A; Blotting, Western; Cell Line; Clone Cells; Drug Synergism; Enzyme Inhibitors; Fatty Acids; Glucose; Insulin; Insulin Secretion; Islets of Langerhans; Myristic Acid; Oleic Acid; Palmitic Acid; Palmitoyl Coenzyme A; Protein Kinase C | 2000 |
Differential mechanisms of glucose and palmitate in augmentation of insulin secretion in mouse pancreatic islets.
Topics: Adenosine Triphosphate; Animals; Biological Transport; Calcium; Colforsin; Culture Techniques; Enzyme Inhibitors; Glucose; Insulin; Insulin Secretion; Islets of Langerhans; Male; Mice; Myristic Acid; Naphthalenes; Palmitates; Palmitoyl Coenzyme A; Potassium Channels; Protein Kinase C; Tetradecanoylphorbol Acetate | 2001 |
Induction of proinflammatory cytokines by long-chain saturated fatty acids in human macrophages.
Topics: Cell Line, Tumor; Ceramides; Cytokines; Fatty Acids; Humans; Interleukin-1beta; Interleukin-8; JNK Mitogen-Activated Protein Kinases; Lauric Acids; Leukemia; Linoleic Acid; Monocytes; Myeloid Differentiation Factor 88; Myristic Acid; p38 Mitogen-Activated Protein Kinases; Palmitic Acid; Palmitoyl Coenzyme A; RNA, Messenger; RNA, Small Interfering; Stearic Acids; Transcription Factor AP-1; Tumor Necrosis Factor-alpha | 2009 |
Myristate-derived d16:0 sphingolipids constitute a cardiac sphingolipid pool with distinct synthetic routes and functional properties.
Topics: Acyl Coenzyme A; Animals; Autophagy; Biosynthetic Pathways; Cats; Cell Line; Cell Survival; Diet, High-Fat; Gene Expression; Gene Expression Regulation, Enzymologic; Heart Ventricles; Isoenzymes; Kinetics; Lipid Metabolism; Male; Mice; Mice, Inbred C57BL; Muscle, Skeletal; Myocardium; Myocytes, Cardiac; Myristic Acid; Palmitoyl Coenzyme A; Rats; Serine C-Palmitoyltransferase; Sphingolipids; Sphingosine N-Acyltransferase; Substrate Specificity | 2013 |
Association of NMT2 with the acyl-CoA carrier ACBD6 protects the N-myristoyltransferase reaction from palmitoyl-CoA.
Topics: Acyl Coenzyme A; Acylation; Acyltransferases; ATP-Binding Cassette Transporters; Carrier Proteins; Coenzyme A; Fatty Acids; Humans; Membrane Lipids; Myristic Acid; Palmitoyl Coenzyme A; Phospholipids; Protein Interaction Domains and Motifs; Substrate Specificity | 2016 |
Human carbonyl reductase 1 participating in intestinal first-pass drug metabolism is inhibited by fatty acids and acyl-CoAs.
Topics: Acyl Coenzyme A; Alcohol Oxidoreductases; Binding Sites; Binding, Competitive; Cell Line, Tumor; Drug Resistance, Neoplasm; Fatty Acids, Nonesterified; Food-Drug Interactions; Humans; Intestinal Mucosa; Mutation; Myristic Acid; Neoplasm Proteins; Oxidoreductases; Palmitic Acid; Palmitoyl Coenzyme A; Recombinant Proteins; Stearic Acids; Sugar Alcohol Dehydrogenases | 2017 |