PeptidePedia The community reference

Glucagon (revision 9)

Old revision·12:06, 1 Nov 2024·TirzTaxonomist

This is an old revision of this page, as it stood at 12:06, 1 Nov 2024, saved by TirzTaxonomist with the summary give the isoelectric point with the method it was determined by. It may differ substantially from the current revision, and any error it contains may since have been corrected.
For the precursor from which glucagon is derived, see Proglucagon.
Glucagon
HAEGTFTSDVSSN-terminusC-terminus
SourcePancreatic islet alpha cell
PrecursorProglucagon (gene GCG)
ReceptorGlucagon receptor (GCGR), class B GPCR
Molecular data
Residues29
Molecular formulaC153H225N43O49S
Monoisotopic mass≈3,483 Da
Plasma half-life4–6 minutes
Compound infobox · conventions

Glucagon is a 29-residue peptide hormone secreted by the alpha cells of the pancreatic islets and processed from proglucagon by prohormone convertase 2. Its principal physiological role is counter-regulatory: falling blood glucose stimulates its release, and it acts on hepatocytes to mobilise glycogen and increase gluconeogenesis.[1]

Glucagon has been used clinically for decades as rescue treatment for severe hypoglycaemia and as a smooth-muscle relaxant for gastrointestinal imaging. Its more recent interest to this wiki is as a deliberate pharmacological target: agonism at the glucagon receptor increases energy expenditure and hepatic fat oxidation, and several investigational peptides combine it with GLP-1 agonism so that the glycaemic penalty is offset.[2]

Hyperglucagonaemia is a feature of type 2 diabetes and contributes to fasting hyperglycaemia through unrestrained hepatic glucose output. Suppression of glucagon secretion is one of the mechanisms by which incretin-based therapies lower fasting glucose, and it is glucose-dependent — suppression relaxes as glucose falls, which is part of why those therapies do not by themselves cause hypoglycaemia.[1]

Secretion and its control

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Alpha cells constitute roughly 30–40% of the human islet and are distributed throughout it rather than confined to a mantle as in rodents. Secretion is stimulated by hypoglycaemia, by adrenergic input during stress and exercise, and by amino acids — a protein meal raises both insulin and glucagon, which is teleologically sensible since the insulin response would otherwise produce hypoglycaemia.[1]

Suppression of glucagon is mediated by several converging signals: direct glucose sensing by the alpha cell, paracrine inhibition by insulin, somatostatin and zinc from neighbouring cells, and incretin action. GLP-1 suppresses glucagon secretion; GIP, in contrast, stimulates it at euglycaemia while remaining neutral or suppressive at hyperglycaemia. This difference is one of the more interesting unresolved points in the pharmacology of dual agonists.[3]

In type 1 diabetes the alpha-cell response to hypoglycaemia is lost early, which removes the first line of defence against insulin-induced hypoglycaemia and is a principal reason that condition is harder to manage than the pathophysiology alone would suggest.

Receptor and signalling

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The glucagon receptor is a class B GPCR with the same two-domain architecture as the GLP-1 receptor and roughly 45% sequence identity to it in the transmembrane region. It couples principally to Gs; hepatic cAMP activates protein kinase A, which phosphorylates glycogen phosphorylase kinase and the transcriptional machinery driving gluconeogenic gene expression.[1]

References

  1. ^ a b c d Sandoval DA, D'Alessio DA. "Physiology of proglucagon peptides: role of glucagon and GLP-1 in health and disease." Physiological Reviews 95(2):513–548 (2015). PMID 25834231.
  2. ^ Coskun T, Urva S, Roell WC, et al. "LY3437943, a novel triple glucagon, GIP, and GLP-1 receptor agonist for glycemic control and weight loss." Cell Metabolism 34(9):1234–1247 (2022). DOI:10.1016/j.cmet.2022.07.013. PMID 35985340.
  3. ^ Campbell JE, Drucker DJ. "Pharmacology, physiology, and mechanisms of incretin hormone action." Cell Metabolism 17(6):819–837 (2013). PMID 23684623.