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瞬时受体电位通道蛋白4(TRPM4)调控胰腺β细胞中的胰岛素分泌。

TRPM4 controls insulin secretion in pancreatic beta-cells.

作者信息

Cheng Henrique, Beck Andreas, Launay Pierre, Gross Stefan A, Stokes Alexander J, Kinet Jean-Pierre, Fleig Andrea, Penner Reinhold

机构信息

Laboratory of Cell and Molecular Signaling, Center for Biomedical Research at The Queen's Medical Center and John A. Burns School of Medicine at the University of Hawaii, 1301 Punchbowl Street, UHT 8, Honolulu, HI 96813, USA.

出版信息

Cell Calcium. 2007 Jan;41(1):51-61. doi: 10.1016/j.ceca.2006.04.032. Epub 2006 Jun 27.

Abstract

TRPM4 is a calcium-activated non-selective cation channel that is widely expressed and proposed to be involved in cell depolarization. In excitable cells, TRPM4 may regulate calcium influx by causing the depolarization that drives the activation of voltage-dependent calcium channels. We here report that insulin-secreting cells of the rat pancreatic beta-cell line INS-1 natively express TRPM4 proteins and generate large depolarizing membrane currents in response to increased intracellular calcium. These currents exhibit the characteristics of TRPM4 and can be suppressed by expressing a dominant negative TRPM4 construct, resulting in significantly decreased insulin secretion in response to a glucose stimulus. Reduced insulin secretion was also observed with arginine vasopressin stimulation, a Gq-coupled receptor agonist in beta-cells. Moreover, the recruitment of TRPM4 currents was biphasic in both INS-1 cells as well as HEK-293 cells overexpressing TRPM4. The first phase is due to activation of TRPM4 channels localized within the plasma membrane followed by a slower secondary phase, which is caused by the recruitment of TRPM4-containing vesicles to the plasma membrane during exocytosis. The secondary phase can be observed during perfusion of cells with increasing Ca(2+), replicated with agonist stimulation, and coincides with an increase in cell capacitance, loss of FM1-43 dye, and vesicle fusion. Our data suggest that TRPM4 may play a key role in the control of membrane potential and electrical activity of electrically excitable secretory cells and the dynamic translocation of TRPM4 from a vesicular pool to the plasma membrane via Ca(2+)-dependent exocytosis may represent a key short- and midterm regulatory mechanism by which cells regulate electrical activity.

摘要

瞬时受体电位通道蛋白4(TRPM4)是一种钙激活的非选择性阳离子通道,广泛表达,并被认为参与细胞去极化过程。在可兴奋细胞中,TRPM4可能通过引起去极化来调节钙内流,而去极化会驱动电压依赖性钙通道的激活。我们在此报告,大鼠胰腺β细胞系INS-1的胰岛素分泌细胞天然表达TRPM4蛋白,并在细胞内钙增加时产生大的去极化膜电流。这些电流表现出TRPM4的特征,并且可以通过表达显性负性TRPM4构建体来抑制,从而导致在葡萄糖刺激下胰岛素分泌显著减少。在精氨酸加压素刺激下也观察到胰岛素分泌减少,精氨酸加压素是β细胞中一种与Gq偶联的受体激动剂。此外,在INS-1细胞以及过表达TRPM4的HEK-293细胞中,TRPM4电流的募集都是双相的。第一阶段是由于质膜内定位的TRPM4通道的激活,随后是较慢的第二阶段,这是由胞吐过程中含TRPM4的囊泡募集到质膜引起的。在细胞内[Ca(2+)]增加的灌注过程中可以观察到第二阶段,用激动剂刺激可重现该阶段,并且与细胞电容增加、FM1-43染料丢失和囊泡融合同时发生。我们的数据表明,TRPM4可能在电可兴奋分泌细胞的膜电位和电活动控制中起关键作用,并且TRPM4通过钙依赖性胞吐作用从囊泡池向质膜的动态转运可能代表细胞调节电活动的关键短期和中期调节机制。

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