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电压非依赖性钙通道介导胰岛β细胞中胞质钙的缓慢振荡,这种振荡依赖于葡萄糖。

Voltage-independent calcium channels mediate slow oscillations of cytosolic calcium that are glucose dependent in pancreatic beta-cells.

作者信息

Leech C A, Holz G G, Habener J F

机构信息

Laboratory of Molecular Endocrinology, Massachusetts General Hospital, Howard Hughes Medical Institute, Harvard Medical School, Boston 02114.

出版信息

Endocrinology. 1994 Jul;135(1):365-72. doi: 10.1210/endo.135.1.8013370.

Abstract

Pancreatic beta-cells and HIT-T15 cells exhibit oscillations of cytosolic calcium ([Ca2+]i) that are dependent on glucose metabolism and appear to trigger pulsatile insulin secretion. Significantly, differences in the pattern of this [Ca2+]i oscillatory activity may have important implications for our understanding of how glucose homeostasis is achieved during the feeding and fasting states. When single beta-cells are exposed to a stepwise increase in glucose concentration that mimics the transition from fasting to feeding states, fast irregular oscillations of [Ca2+]i are observed. Alternatively, when single beta-cells are equilibrated in a steady state concentration of glucose that mimics the fasting state, slow periodic oscillations of [Ca2+]i are noted. Here we report a fundamental difference in the mechanism by which glucose induces these two types of [Ca2+]i oscillatory activity. In agreement with previous studies, we substantiate a role for L-type voltage-dependent Ca2+ channels as mediators of the fast oscillations of [Ca2+]i observed after a stepwise increase in glucose concentration. In marked contrast, we report that voltage-independent calcium channels (VICCs) mediate slow oscillations of [Ca2+]i that occur when beta-cells are equilibrated in steady state concentrations of glucose. Slow [Ca2+]i oscillations are mediated by VICCs which are pharmacologically and biophysically distinguishable from voltage-dependent Ca2+ channels that mediate fast oscillations. Specifically, slow [Ca2+]i oscillations are blocked by extracellular La3+, but not by nifedipine, and are independent of changes in membrane potential. Measurement of membrane conductance also indicate an important role for VICCs, as demonstrated by a steady state inward Ca2+ current that is blocked by La3+. The steady state Ca2+ current appears to generate slow [Ca2+]i oscillations by triggering Ca(2+)-induced Ca2+ release from intracellular Ca2+ stores, a process that is mimicked by extracellular application of caffeine, a sensitizer of the ryanodine receptor/Ca2+ release channel. Depletion of intracellular Ca2+ stores with thapsigargin stimulated Mn2+ influx, suggesting the presence of Ca(2+)-release-activated Ca2+ channels. Taken together, these observations are consistent with a role for VICCs (possibly G-type channels) and/or Ca(2+)-release-activated Ca2+ channels as mediators of slow [Ca2+]i oscillations in beta-cells. We propose that slow oscillations of [Ca2+]i probably serve as important initiators of insulin secretion under conditions in which tight control of glucose homeostasis is necessary, as is the case during the fasting normoglycemic state.

摘要

胰腺β细胞和HIT-T15细胞表现出胞质钙([Ca2+]i)振荡,这种振荡依赖于葡萄糖代谢,并且似乎触发了脉冲式胰岛素分泌。重要的是,这种[Ca2+]i振荡活动模式的差异可能对我们理解在进食和禁食状态下如何实现葡萄糖稳态具有重要意义。当单个β细胞暴露于模拟从禁食到进食状态转变的葡萄糖浓度逐步增加的环境中时,会观察到[Ca2+]i的快速不规则振荡。或者,当单个β细胞在模拟禁食状态的稳定葡萄糖浓度中达到平衡时,会注意到[Ca2+]i的缓慢周期性振荡。在这里,我们报告了葡萄糖诱导这两种类型的[Ca2+]i振荡活动的机制存在根本差异。与先前的研究一致,我们证实L型电压依赖性Ca2+通道在葡萄糖浓度逐步增加后观察到的[Ca2+]i快速振荡中起介导作用。与之形成鲜明对比的是,我们报告电压非依赖性钙通道(VICC)介导β细胞在稳定葡萄糖浓度中达到平衡时发生的[Ca2+]i缓慢振荡。缓慢的[Ca2+]i振荡由VICC介导,VICC在药理学和生物物理学上与介导快速振荡的电压依赖性Ca2+通道不同。具体而言,缓慢的[Ca2+]i振荡被细胞外La3+阻断,但不被硝苯地平阻断,并且与膜电位变化无关。膜电导的测量也表明VICC起重要作用,如被La3+阻断的稳定内向Ca2+电流所证明。稳定状态的Ca2+电流似乎通过触发细胞内Ca2+储存库中的Ca(2+)诱导的Ca2+释放来产生缓慢的[Ca2+]i振荡,这一过程可通过细胞外应用咖啡因(一种ryanodine受体/Ca2+释放通道的敏化剂)来模拟。用毒胡萝卜素耗尽细胞内Ca2+储存库会刺激Mn2+内流,表明存在Ca(2+)释放激活的Ca2+通道。综上所述,这些观察结果与VICC(可能是G型通道)和/或Ca(2+)释放激活的Ca2+通道在β细胞中作为缓慢[Ca2+]i振荡的介导因子的作用一致。我们提出,在需要严格控制葡萄糖稳态的情况下,如在禁食正常血糖状态下,[Ca2+]i的缓慢振荡可能是胰岛素分泌的重要启动因素。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2617/2922863/2c5edb17ba00/nihms226411f1.jpg

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