首页> 外文期刊>American Journal of Physiology >Glucose-induced mixed (Ca2+)c oscillations in mouse beta-cells are controlled by the membrane potential and the SERCA3 Ca2+-ATPase of the endoplasmic reticulum.
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Glucose-induced mixed (Ca2+)c oscillations in mouse beta-cells are controlled by the membrane potential and the SERCA3 Ca2+-ATPase of the endoplasmic reticulum.

机译:小鼠β细胞中葡萄糖诱导的混合(Ca2 +)c振荡受膜电位和内质网的SERCA3 Ca2 + -ATPase的控制。

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摘要

Stimulatory concentrations of glucose induce two patterns of cytosolic Ca2+ concentration ([Ca2+]c) oscillations in mouse islets: simple or mixed. In the mixed pattern, rapid oscillations are superimposed on slow ones. In the present study, we examined the role of the membrane potential in the mixed pattern and the impact of this pattern on insulin release. Simultaneous measurement of [Ca2+]c and insulin release from single islets revealed that mixed [Ca2+]c oscillations triggered synchronous oscillations of insulin secretion. Simultaneous recordings of membrane potential in a single beta-cell within an islet and of [Ca2+]c in the whole islet demonstrated that the mixed pattern resulted from compound bursting (i.e., clusters of membrane potential oscillations separated by prolonged silent intervals) that was synchronized in most beta-cells of the islet. Each slow [Ca2+]c increase during mixed oscillations was due to a progressive summation of rapid oscillations. Digital image analysis confirmed the good synchrony between subregions of an islet. By contrast, islets from sarco(endo)plasmic reticulum Ca2+-ATPase isoform 3 (SERCA3)-knockout mice did not display typical mixed [Ca2+]c oscillations in response to glucose. This results from a lack of progressive summation of rapid oscillations and from altered spontaneous electrical activity, i.e., lack of compound bursting, and membrane potential oscillations characterized by lower-frequency but larger-depolarization phases than observed in SERCA3+/+ beta-cells. We conclude that glucose-induced mixed [Ca2+]c oscillations result from compound bursting in all beta-cells of the islet. Disruption of SERCA3 abolishes mixed [Ca2+]c oscillations and augments beta-cell depolarization. This latter observation indicates that the endoplasmic reticulum participates in the control of the beta-cell membrane potential during glucose stimulation.
机译:刺激性葡萄糖浓度诱导小鼠胰岛中两种胞质Ca2 +浓度([Ca2 +] c)振荡模式:简单或混合。在混合模式中,快速振荡叠加在慢速振荡上。在本研究中,我们检查了混合模式中膜电位的作用以及该模式对胰岛素释放的影响。从单个胰岛同时测量[Ca2 +] c和胰岛素释放,发现混合的[Ca2 +] c振荡触发了胰岛素分泌的同步振荡。同时记录胰岛中单个β细胞的膜电位和整个胰岛中的[Ca2 +] c,表明混合模式是由化合物爆裂(即,膜电位振荡簇被延长的沉默间隔隔开)导致的,同步发生在胰岛的大多数β细胞中混合振荡期间每个[Ca2 +] c缓慢增加都是由于快速振荡的逐步累加所致。数字图像分析证实了小岛的各个子区域之间的良好同步性。相比之下,来自肌(内)质网Ca2 + -ATPase同工型3(SERCA3)-敲除小鼠的胰岛未显示出对葡萄糖的典型混合[Ca2 +] c振荡。这是由于缺乏快速振荡的逐步累加和自发的电活动改变,即缺乏化合物爆裂以及膜电位振荡所致,其特征是与SERCA3 + / +β细胞相比具有较低的频率但去极化阶段更大。我们得出的结论是,葡萄糖诱导的混合[Ca2 +] c振荡是由胰岛所有β细胞中的化合物爆裂引起的。 SERCA3的破坏消除了混合的[Ca2 +] c振荡,并增强了β细胞去极化作用。后一个观察结果表明,内质网参与了葡萄糖刺激过程中β细胞膜电位的控制。

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