Gastric Inhibitory Polypeptide
"Gastric Inhibitory Polypeptide" is a descriptor in the National Library of Medicine's controlled vocabulary thesaurus,
MeSH (Medical Subject Headings). Descriptors are arranged in a hierarchical structure,
which enables searching at various levels of specificity.
A gastrointestinal peptide hormone of about 43-amino acids. It is found to be a potent stimulator of INSULIN secretion and a relatively poor inhibitor of GASTRIC ACID secretion.
Descriptor ID |
D005749
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MeSH Number(s) |
D06.472.317.400 D06.472.699.275 D12.644.400.300 D12.644.548.275 D12.776.631.650.300
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Concept/Terms |
Gastric Inhibitory Polypeptide- Gastric Inhibitory Polypeptide
- Inhibitory Polypeptide, Gastric
- Polypeptide, Gastric Inhibitory
- Glucose-Dependent Insulin-Releasing Peptide
- Glucose Dependent Insulin Releasing Peptide
- Insulin-Releasing Peptide, Glucose-Dependent
- Peptide, Glucose-Dependent Insulin-Releasing
- Glucose Dependent Insulinotropic Peptide
- Glucose-Dependent Insulinotropic Peptide
- Insulinotropic Peptide, Glucose-Dependent
- Peptide, Glucose-Dependent Insulinotropic
- Gastric-Inhibitory Polypeptide
- Polypeptide, Gastric-Inhibitory
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Below are MeSH descriptors whose meaning is more general than "Gastric Inhibitory Polypeptide".
Below are MeSH descriptors whose meaning is more specific than "Gastric Inhibitory Polypeptide".
This graph shows the total number of publications written about "Gastric Inhibitory Polypeptide" by people in this website by year, and whether "Gastric Inhibitory Polypeptide" was a major or minor topic of these publications.
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Year | Major Topic | Minor Topic | Total |
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2019 | 1 | 2 | 3 | 2020 | 0 | 1 | 1 | 2022 | 0 | 1 | 1 | 2024 | 0 | 1 | 1 |
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Below are the most recent publications written about "Gastric Inhibitory Polypeptide" by people in Profiles.
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Garg SK, Akturk HK, Kaur G, Beatson C, Snell-Bergeon J. Efficacy and Safety of Tirzepatide in Overweight and Obese Adult Patients with Type 1 Diabetes. Diabetes Technol Ther. 2024 Jun; 26(6):367-374.
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Tall Bull S, Nuffer W, Trujillo JM. Tirzepatide: A novel, first-in-class, dual GIP/GLP-1 receptor agonist. J Diabetes Complications. 2022 12; 36(12):108332.
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Sherk VD, Schauer I, Shah VN. Update on the Acute Effects of Glucose, Insulin, and Incretins on Bone Turnover In Vivo. Curr Osteoporos Rep. 2020 08; 18(4):371-377.
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Idrovo JP, Shults JA, Curtis BJ, Chen MM, Kovacs EJ. Alcohol Intoxication and the Postburn Gastrointestinal Hormonal Response. J Burn Care Res. 2019 10 16; 40(6):785-791.
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M?ller TD, Finan B, Bloom SR, D'Alessio D, Drucker DJ, Flatt PR, Fritsche A, Gribble F, Grill HJ, Habener JF, Holst JJ, Langhans W, Meier JJ, Nauck MA, Perez-Tilve D, Pocai A, Reimann F, Sandoval DA, Schwartz TW, Seeley RJ, Stemmer K, Tang-Christensen M, Woods SC, DiMarchi RD, Tsch?p MH. Glucagon-like peptide 1 (GLP-1). Mol Metab. 2019 12; 30:72-130.
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Hutch CR, Roelofs K, Haller A, Sorrell J, Leix K, D'Alessio DD, Augustin R, Seeley RJ, Klein T, Sandoval DA. The role of GIP and pancreatic GLP-1 in the glucoregulatory effect of DPP-4 inhibition in mice. Diabetologia. 2019 10; 62(10):1928-1937.
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Park YM, Heden TD, Liu Y, Nyhoff LM, Thyfault JP, Leidy HJ, Kanaley JA. A high-protein breakfast induces greater insulin and glucose-dependent insulinotropic peptide responses to a subsequent lunch meal in individuals with type 2 diabetes. J Nutr. 2015 Mar; 145(3):452-8.
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Heden TD, Liu Y, Kearney ML, Park Y, Dellsperger KC, Thomas TR, Kanaley JA. Prior exercise and postprandial incretin responses in lean and obese individuals. Med Sci Sports Exerc. 2013 Oct; 45(10):1897-905.
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Runchey SS, Valsta LM, Schwarz Y, Wang C, Song X, Lampe JW, Neuhouser ML. Effect of low- and high-glycemic load on circulating incretins in a randomized clinical trial. Metabolism. 2013 Feb; 62(2):188-95.
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King DS, Staten MA, Kohrt WM, Dalsky GP, Elahi D, Holloszy JO. Insulin secretory capacity in endurance-trained and untrained young men. Am J Physiol. 1990 Aug; 259(2 Pt 1):E155-61.
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