Jacobson David A, Kuznetsov Andrey, Lopez James P, Kash Shera, Ammälä Carina E, Philipson Louis H
Department of Medicine, The University of Chicago, Chicago, IL 60637, USA.
Cell Metab. 2007 Sep;6(3):229-35. doi: 10.1016/j.cmet.2007.07.010.
Voltage-gated potassium currents (Kv), primarily due to Kv2.1 channels, are activated by glucose-stimulated pancreatic beta cell depolarization, but the exact role (or roles) of this channel in regulating insulin secretion remains uncertain. Here we report that, compared with controls, Kv2.1 null mice have reduced fasting blood glucose levels and elevated serum insulin levels. Glucose tolerance is improved and insulin secretion is enhanced compared to control animals, with similar results in isolated islets in vitro. Isolated Kv2.1(-/-) beta cells have residual Kv currents, which are decreased by 83% at +50 mV compared with control cells. The glucose-induced action potential (AP) duration is increased while the firing frequency is diminished, similar to the effect of specific toxins on control cells but substantially different from the effect of the less specific blocker tetraethylammonium. These results reveal the specific role of Kv2.1 in modulating glucose-stimulated APs of beta cells, exposing additional important currents involved in regulating physiological insulin secretion.
电压门控钾电流(Kv)主要由Kv2.1通道介导,由葡萄糖刺激胰腺β细胞去极化激活,但该通道在调节胰岛素分泌中的确切作用仍不确定。在此我们报告,与对照组相比,Kv2.1基因敲除小鼠空腹血糖水平降低,血清胰岛素水平升高。与对照动物相比,葡萄糖耐量得到改善,胰岛素分泌增强,体外分离胰岛也得到类似结果。分离的Kv2.1(-/-)β细胞有残余Kv电流,在+50 mV时与对照细胞相比减少了83%。葡萄糖诱导的动作电位(AP)持续时间增加,而发放频率降低,类似于特定毒素对对照细胞的作用,但与非特异性阻滞剂四乙铵的作用有很大不同。这些结果揭示了Kv2.1在调节β细胞葡萄糖刺激的动作电位中的特定作用,揭示了参与调节生理性胰岛素分泌的其他重要电流。