Literature DB >> 33172888

Agonist-independent Gαz activity negatively regulates beta-cell compensation in a diet-induced obesity model of type 2 diabetes.

Michael D Schaid1, Cara L Green2, Darby C Peter2, Shannon J Gallagher2, Erin Guthery2, Kathryn A Carbajal2, Jeffrey M Harrington2, Grant M Kelly2, Austin Reuter2, Molly L Wehner2, Allison L Brill2, Joshua C Neuman3, Dudley W Lamming1, Michelle E Kimple4.   

Abstract

The inhibitory G protein alpha-subunit (Gαz) is an important modulator of beta-cell function. Full-body Gαz-null mice are protected from hyperglycemia and glucose intolerance after long-term high-fat diet (HFD) feeding. In this study, at a time point in the feeding regimen where WT mice are only mildly glucose intolerant, transcriptomics analyses reveal islets from HFD-fed Gαz KO mice have a dramatically altered gene expression pattern as compared with WT HFD-fed mice, with entire gene pathways not only being more strongly upregulated or downregulated versus control-diet fed groups but actually reversed in direction. Genes involved in the "pancreatic secretion" pathway are the most strongly differentially regulated: a finding that correlates with enhanced islet insulin secretion and decreased glucagon secretion at the study end. The protection of Gαz-null mice from HFD-induced diabetes is beta-cell autonomous, as beta cell-specific Gαz-null mice phenocopy the full-body KOs. The glucose-stimulated and incretin-potentiated insulin secretion response of islets from HFD-fed beta cell-specific Gαz-null mice is significantly improved as compared with islets from HFD-fed WT controls, which, along with no impact of Gαz loss or HFD feeding on beta-cell proliferation or surrogates of beta-cell mass, supports a secretion-specific mechanism. Gαz is coupled to the prostaglandin EP3 receptor in pancreatic beta cells. We confirm the EP3γ splice variant has both constitutive and agonist-sensitive activity to inhibit cAMP production and downstream beta-cell function, with both activities being dependent on the presence of beta-cell Gαz.
Copyright © 2021. Published by Elsevier Inc.

Entities:  

Keywords:  G protein; G protein–coupled receptor (GPCR); cAMP; cell signaling; diabetes; insulin resistance; insulin secretion

Year:  2020        PMID: 33172888      PMCID: PMC7948463          DOI: 10.1074/jbc.RA120.015585

Source DB:  PubMed          Journal:  J Biol Chem        ISSN: 0021-9258            Impact factor:   5.157


  4 in total

1.  Human Islet Expression Levels of Prostaglandin E2 Synthetic Enzymes, But Not Prostaglandin EP3 Receptor, Are Positively Correlated with Markers of β-Cell Function and Mass in Nondiabetic Obesity.

Authors:  Nathan A Truchan; Rachel J Fenske; Harpreet K Sandhu; Alicia M Weeks; Chinmai Patibandla; Benjamin Wancewicz; Samantha Pabich; Austin Reuter; Jeffrey M Harrington; Allison L Brill; Darby C Peter; Randall Nall; Michael Daniels; Margaret Punt; Cecilia E Kaiser; Elizabeth D Cox; Ying Ge; Dawn B Davis; Michelle E Kimple
Journal:  ACS Pharmacol Transl Sci       Date:  2021-06-16

Review 2.  Effects of Arachidonic Acid and Its Metabolites on Functional Beta-Cell Mass.

Authors:  Karin J Bosma; Cecilia E Kaiser; Michelle E Kimple; Maureen Gannon
Journal:  Metabolites       Date:  2022-04-12

3.  Prostaglandin EP3 receptor signaling is required to prevent insulin hypersecretion and metabolic dysfunction in a non-obese mouse model of insulin resistance.

Authors:  Jaclyn A Wisinski; Austin Reuter; Darby C Peter; Michael D Schaid; Rachel J Fenske; Michelle E Kimple
Journal:  Am J Physiol Endocrinol Metab       Date:  2021-07-06       Impact factor: 4.310

4.  Rat prostaglandin EP3 receptor is highly promiscuous and is the sole prostanoid receptor family member that regulates INS-1 (832/3) cell glucose-stimulated insulin secretion.

Authors:  Harpreet K Sandhu; Joshua C Neuman; Michael D Schaid; Sarah E Davis; Kelsey M Connors; Romith Challa; Erin Guthery; Rachel J Fenske; Chinmai Patibandla; Richard M Breyer; Michelle E Kimple
Journal:  Pharmacol Res Perspect       Date:  2021-04
  4 in total

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