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bioRxiv · 10.1101/2020.10.15.338160

Beta-cell specific insulin resistance promotes glucose-stimulated insulin hypersecretion

Abstract

Abstract Insulin receptor (Insr) protein can be found at higher levels in pancreatic {beta}-cells than in most other tissues, but the consequences of {beta}-cell insulin resistance remain enigmatic. Ins1cre allele was used to delete Insr specifically in {beta}-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 {beta}-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 {beta}- cells from female, but not male mice, whereas only male {beta}InsrKO mice had reduced ATP-coupled oxygen consumption rate and reduced expression of genes involved in ATP synthesis. Female {beta}InsrKO and {beta}InsrHET mice exhibited elevated insulin release in perifusion experiments, during hyperglycemic clamps, and following i.p. glucose challenge. Deletion of Insr did not alter {beta}-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 {beta}-cell insulin resistance, which predicted that {beta}-cell Insr knockout would improve glucose tolerance depending on the degree of whole-body insulin resistance. Indeed, glucose tolerance was significantly improved in female {beta}InsrKO and {beta}InsrHET 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 {beta}-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 {beta}-cell Insr contributes to glucose-induced hyperinsulinemia, thereby improving glucose homeostasis in otherwise insulin sensitive dietary and age contexts.

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BibTeXRIS

Skovso, S., Panzhinskiy, E., Kolic, J., Dionne, D. A., Dai, X.-Q., Sharma, R. B., Elghazi, L., Cen, H. H., Ellis, C. E., Faulkner, K., Marcil, S. A. M., Overby, P., Noursadeghi, N., Hutchinson, D., Hu, X., Modi, H., Wildi, J., Botezelli, J. D., Noh, H. L., Suk, S., Gablaski, B., Bautista, A., Kim, R., Cras-Meneur, C., Flibotte, S., Sinha, S., Luciani, D. S., Nislow, C., Rideout, E. J., Cytrynbaum, E. N., Kim, J., Bernal-Mizrachi, E., Alonso, L. C., MacDonald, P. E., Johnson, J. D.. 2020-10-15. Beta-cell specific insulin resistance promotes glucose-stimulated insulin hypersecretion. https://doi.org/10.1101/2020.10.15.338160

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