Beta-cell specific Insr deletion promotes insulin hypersecretion and improves glucose tolerance prior to global insulin resistance

Author:

Skovsø Søs,Panzhinskiy Evgeniy,Kolic Jelena,Cen Haoning Howard,Dionne Derek A.,Dai Xiao-Qing,Sharma Rohit B.,Elghazi Lynda,Ellis Cara E.,Faulkner Katharine,Marcil Stephanie A.M.,Overby Peter,Noursadeghi Nilou,Hutchinson Daria,Hu Xiaoke,Li Hong,Modi Honey,Wildi Jennifer S.,Botezelli J. Diego,Noh Hye Lim,Suk Sujin,Gablaski Brian,Bautista Austin,Kim Ryekjang,Cras-Méneur CorentinORCID,Flibotte Stephane,Sinha Sunita,Luciani Dan S.,Nislow Corey,Rideout Elizabeth J.,Cytrynbaum Eric N.,Kim Jason K.,Bernal-Mizrachi Ernesto,Alonso Laura C.,MacDonald Patrick E.,Johnson James D.ORCID

Abstract

AbstractInsulin receptor (Insr) protein can be found at higher levels in pancreatic β-cells than in most other tissues, but the consequences of β-cell insulin resistance remain enigmatic. Ins1cre allele was used to delete Insr specifically in β-cells of both female and male mice. Experimental mice were compared to Ins1cre-containing littermate controls at multiple ages and on multiple diets. RNA-seq of purified recombined β-cells revealed transcriptomic consequences of Insr loss, which differed between female and male mice. Action potential and calcium oscillation frequencies were increased in Insr knockout β- cells from female, but not male mice, whereas only male βInsrKO mice had reduced ATP-coupled oxygen consumption rate and reduced expression of genes involved in ATP synthesis. Female βInsrKO and βInsrHET mice exhibited elevated insulin release in perifusion experiments, during hyperglycemic clamps, and following i.p. glucose challenge. Deletion of Insr did not alter β-cell area up to 9 months of age, nor did it impair hyperglycemia-induced proliferation. Based on our data, we adapted a mathematical model to include β-cell insulin resistance, which predicted that β-cell Insr knockout would improve glucose tolerance depending on the degree of whole-body insulin resistance. Indeed, glucose tolerance was significantly improved in female βInsrKO and βInsrHET mice when compared to controls at 9, 21 and 39 weeks, and also in insulin-sensitive 4-week old males. We did not observe improved glucose tolerance in older male mice or in high fat diet-fed mice, corroborating the prediction that global insulin resistance obscures the effects of β-cell specific insulin resistance. The propensity for hyperinsulinemia was associated with mildly reduced fasting glucose and increased body weight. We further validated our main in vivo findings using the Ins1-CreERT transgenic line and found that male mice had improved glucose tolerance 4 weeks after tamoxifen-mediated Insr deletion. Collectively, our data show that loss of β-cell Insr contributes to glucose-induced hyperinsulinemia, thereby improving glucose homeostasis in otherwise insulin sensitive dietary and age contexts.

Publisher

Cold Spring Harbor Laboratory

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