Loss of α<sub>2</sub>δ-1 Calcium Channel Subunit Function Increases the Susceptibility for Diabetes.

Mastrolia, Vincenzo; Flucher, Sylvia M; Obermair, Gerald J; Drach, Mathias; Hofer, Helene; Renström, Erik; Schwartz, Arnold; Striessnig, Jörg et al. · Diabetes · 2017

basic_science · Level V

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Abstract

Reduced pancreatic β-cell function or mass is the critical problem in developing diabetes. Insulin release from β-cells depends on Ca<sup>2+</sup> influx through high voltage-gated Ca<sup>2+</sup> channels (HVCCs). Ca<sup>2+</sup> influx also regulates insulin synthesis and insulin granule priming and contributes to β-cell electrical activity. The HVCCs are multisubunit protein complexes composed of a pore-forming α<sub>1</sub> and auxiliary β and α<sub>2</sub>δ subunits. α<sub>2</sub>δ is a key regulator of membrane incorporation and function of HVCCs. Here we show that genetic deletion of α<sub>2</sub>δ-1, the dominant α<sub>2</sub>δ subunit in pancreatic islets, results in glucose intolerance and diabetes without affecting insulin sensitivity. Lack of the α<sub>2</sub>δ-1 subunit reduces the Ca<sup>2+</sup> currents through all HVCC isoforms expressed in β-cells equally in male and female mice. The reduced Ca<sup>2+</sup> influx alters the kinetics and amplitude of the global Ca<sup>2+</sup> response to glucose in pancreatic islets and significantly reduces insulin release in both sexes. The progression of diabetes in males is aggravated by a selective loss of β-cell mass, while a stronger basal insulin release alleviates the diabetes symptoms in most α<sub>2</sub>δ-1<sup>-/-</sup> female mice. Together, these findings demonstrate that the loss of the Ca<sup>2+</sup> channel α<sub>2</sub>δ-1 subunit function increases the susceptibility for developing diabetes in a sex-dependent manner.

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