Literature DB >> 23867214

Insulin hypersecretion in islets from diet-induced hyperinsulinemic obese female mice is associated with several functional adaptations in individual β-cells.

Alejandro Gonzalez1, Beatriz Merino, Laura Marroquí, Patricia Ñeco, Paloma Alonso-Magdalena, Ernesto Caballero-Garrido, Elaine Vieira, Sergi Soriano, Ramon Gomis, Angel Nadal, Ivan Quesada.   

Abstract

Insulin resistance and hyperinsulinemia are generally associated with obesity. Obese nondiabetic individuals develop a compensatory β-cell response to adjust insulin levels to the increased demand, maintaining euglycemia. Although several studies indicate that this compensation relies on structural changes, the existence of β-cell functional adaptations is incompletely understood. Here, we fed female mice with a high-fat diet (HFD) for 12 weeks. These animals became obese, hyperinsulinemic, insulin-resistant, and mildly glucose-intolerant while fed, and fasting glycemia was comparable in HFD and control mice. Islets from HFD animals exhibited increased β-cell mass and hypertrophy. Additionally, they had enhanced insulin gene expression and content and augmented glucose-induced insulin secretion. Electrophysiological examination of β-cells from both groups showed no differences in KATP channel open probability and conductance. However, action potentials elicited by glucose had larger amplitude in obese mice. Glucose-induced Ca²⁺ signals in intact islets, in isolated β-cells, and individual β-cells within islets were also increased in HFD mice. Additionally, a higher proportion of glucose-responsive cells was present in obese mice. In contrast, whole-cell Ca²⁺ current densities were similar in both groups. Capacitance measurements showed that depolarization-evoked exocytosis was enhanced in HFD β-cells compared with controls. Although this augment was not significant when capacitance increases of the whole β-cell population were normalized to cell size, the exocytotic output varied significantly when β-cells were distributed by size ranges. All these findings indicate that β-cell functional adaptations are present in the islet compensatory response to obesity.

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Year:  2013        PMID: 23867214     DOI: 10.1210/en.2013-1424

Source DB:  PubMed          Journal:  Endocrinology        ISSN: 0013-7227            Impact factor:   4.736


  27 in total

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Review 6.  Hormonal protection in acute pancreatitis by ghrelin, leptin and melatonin.

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7.  Interleukin-1 signaling contributes to acute islet compensation.

Authors:  Catherine Hajmrle; Nancy Smith; Aliya F Spigelman; Xiaoqing Dai; Laura Senior; Austin Bautista; Mourad Ferdaoussi; Patrick E MacDonald
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8.  Inhibition of pancreatic β-cell Ca2+/calmodulin-dependent protein kinase II reduces glucose-stimulated calcium influx and insulin secretion, impairing glucose tolerance.

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Journal:  J Biol Chem       Date:  2014-03-13       Impact factor: 5.157

9.  Altered pancreatic growth and insulin secretion in WSB/EiJ mice.

Authors:  Maggie M Ho; Xiaoke Hu; Subashini Karunakaran; James D Johnson; Susanne M Clee
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10.  Optogenetic control of insulin secretion in intact pancreatic islets with β-cell-specific expression of Channelrhodopsin-2.

Authors:  Thomas M Reinbothe; Fatemeh Safi; Annika S Axelsson; Inês G Mollet; Anders H Rosengren
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