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仓鼠β细胞系胰岛素分泌过程中的钙依赖性和游离钙浓度

Calcium dependency and free calcium concentrations during insulin secretion in a hamster beta cell line.

作者信息

Boyd A E, Hill R S, Oberwetter J M, Berg M

出版信息

J Clin Invest. 1986 Mar;77(3):774-81. doi: 10.1172/JCI112374.

Abstract

Using a glucose-responsive beta cell line, we tested the hypothesis that the free cytosolic Ca2+ concentration ([Ca2+]i) is the primary signal that couples a stimulus to insulin secretion, and examined the involvement of the extracellular Ca2+ pool in this process. Glucose or depolarization of the beta cell with 40 mM K+ stimulated a monophasic release of insulin directly proportional to the extracellular Ca2+ concentration. 40 mM K+ increased 45Ca2+ uptake and increased [Ca2+]i, which was measured with quin 2, 4.7-fold, from 56 +/- 3 to 238 +/- 17 nM. With high glucose, 45Ca2+ uptake did not increase, and [Ca2+]i was unchanged or fell slightly. There was a striking correlation between inhibitory effects of verapamil, the Ca2+ channel blocker, on insulin secretion and the rise in [Ca2+]i evoked by K+. Higher concentrations of verapamil were required to inhibit glucose- than K+-stimulated insulin secretion (dose giving half-maximal effect of 1.4 X 10(-4) M vs. 6.0 X 10(-7) M). Incubation in Ca2+-free, 1 mM EGTA buffer for 30 min lowered [Ca2+]i to 14 +/- 2 nM, and inhibited acute insulin release to both secretagogues. If high glucose was present in the Ca2+-free period, reintroduction of 2.5 mM Ca2+ in high glucose restored insulin secretion only to the basal rate. However, if low glucose was present during the Ca2+-free period, high glucose and 2.5 mM Ca2+ triggered a full first-phase insulin response. These data suggest that high glucose generates a non-Ca2+ signal that turns over rapidly and provide direct evidence that K+ triggers insulin release by drawing extracellular Ca2+ into the beta cell through verapamil-sensitive Ca2+ channels. However, an increase [Ca2+]i is not the primary signal that evokes glucose-stimulated insulin release in this beta cell line.

摘要

利用葡萄糖反应性β细胞系,我们检验了以下假说:游离胞质Ca2+浓度([Ca2+]i)是将刺激与胰岛素分泌相偶联的主要信号,并研究了细胞外Ca2+库在此过程中的作用。葡萄糖或用40 mM K+使β细胞去极化,刺激胰岛素呈单相释放,且与细胞外Ca2+浓度成正比。40 mM K+增加了45Ca2+摄取并升高了[Ca2+]i,用喹啉2测量时,[Ca2+]i升高了4.7倍,从56±3 nM升至238±17 nM。在高葡萄糖条件下,45Ca2+摄取未增加,[Ca2+]i未改变或略有下降。钙通道阻滞剂维拉帕米对胰岛素分泌的抑制作用与K+诱发的[Ca2+]i升高之间存在显著相关性。抑制葡萄糖刺激的胰岛素分泌所需的维拉帕米浓度高于抑制K+刺激的胰岛素分泌所需的浓度(半数最大效应剂量分别为1.4×10-4 M和6.0×10-7 M)。在无Ca2+的1 mM EGTA缓冲液中孵育30分钟,可使[Ca2+]i降至14±2 nM,并抑制对两种促分泌剂的急性胰岛素释放。如果在无Ca2+期间存在高葡萄糖,在高葡萄糖中重新加入2.5 mM Ca2+仅使胰岛素分泌恢复到基础水平。然而,如果在无Ca2+期间存在低葡萄糖,高葡萄糖和2.5 mM Ca2+会触发完整的第一相胰岛素反应。这些数据表明,高葡萄糖产生一种快速周转的非Ca2+信号,并提供了直接证据,即K+通过维拉帕米敏感的Ca2+通道将细胞外Ca2+吸入β细胞来触发胰岛素释放。然而,[Ca2+]i升高并非此β细胞系中诱发葡萄糖刺激的胰岛素释放的主要信号。

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