Dryselius S, Grapengiesser E, Hellman B, Gylfe E
Department of Medical Cell Biology, Uppsala University, Biomedical Center, S-751 23 Uppsala, Sweden.
Am J Physiol. 1999 Mar;276(3):E512-8. doi: 10.1152/ajpendo.1999.276.3.E512.
The role of voltage-dependent Ca2+ entry for glucose generation of slow oscillations of the cytoplasmic Ca2+ concentration ([Ca2+]i) was evaluated in individual mouse pancreatic beta-cells. Like depolarization with K+, a rise of the glucose concentration resulted in an enhanced influx of Mn2+, which was inhibited by nifedipine. This antagonist of L-type Ca2+ channels also blocked the slow oscillations of [Ca2+]i induced by glucose. The slow oscillations occurred in synchrony with variations in Mn2+ influx and bursts of action currents, with the elevation of [Ca2+]i being proportional to the frequency of the action currents. A similar relationship was obtained when Ca2+ was replaced with Sr2+. Occasionally, the slow [Ca2+]i oscillations were superimposed with pronounced spikes temporarily arresting the action currents. It is concluded that the glucose-induced slow oscillations of [Ca2+]i are caused by periodic depolarization with Ca2+ influx through L-type channels. Ca2+ spiking, due to intracellular mobilization, may be important for chopping the slow oscillations of [Ca2+]i into shorter ones characterizing beta-cells situated in pancreatic islets.
在单个小鼠胰腺β细胞中评估了电压依赖性Ca2+内流对细胞质Ca2+浓度([Ca2+]i)缓慢振荡产生葡萄糖的作用。与用K+进行去极化一样,葡萄糖浓度升高导致Mn2+内流增加,这被硝苯地平抑制。这种L型Ca2+通道拮抗剂也阻断了葡萄糖诱导的[Ca2+]i缓慢振荡。缓慢振荡与Mn2+内流变化和动作电流爆发同步发生,[Ca2+]i升高与动作电流频率成正比。当Ca2+被Sr2+取代时也得到了类似的关系。偶尔,缓慢的[Ca2+]i振荡会叠加明显的尖峰,暂时阻止动作电流。得出的结论是,葡萄糖诱导的[Ca2+]i缓慢振荡是由通过L型通道的Ca2+内流引起的周期性去极化所致。由于细胞内动员导致的Ca2+尖峰对于将[Ca2+]i的缓慢振荡切割成更短的振荡可能很重要,这些更短的振荡是胰岛中β细胞的特征。