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锌诱导的克隆大鼠胰腺β细胞离子电流变化:ATP敏感性钾通道的激活

Zinc-induced changes in ionic currents of clonal rat pancreatic -cells: activation of ATP-sensitive K+ channels.

作者信息

Bloc A, Cens T, Cruz H, Dunant Y

机构信息

Apsic-Pharmacologie, Centre Medical Universitaire, 1 rue Michel-Servet, 1211 Geneva 4, Switzerland.

出版信息

J Physiol. 2000 Dec 15;529 Pt 3(Pt 3):723-34. doi: 10.1111/j.1469-7793.2000.00723.x.

Abstract

The effects of zinc (Zn2+) on excitability and ionic conductances were analysed on RINm5F insulinoma cells under whole-cell and outside-out patch-clamp recording conditions. We found that extracellular application of 10-20 microM Zn2+ induced a reversible abolition of Ca2+ action potential firing, which was accompanied by an hyperpolarisation of the resting membrane potential. Higher concentrations of Zn2+, in the tens to hundreds micromolar range, induced a reversible reduction of voltage-gated Ca2+ and, to a lesser extent, K+ currents. Low-voltage-activated Ca2+ currents were more sensitive to Zn2+ block than high voltage-activated Ca2+ currents. The Zn2+-induced hyperpolarisation arose from a dose-dependent increase in a voltage-independent K+ conductance that was pharmacologically identified as an ATP-sensitive K+ (KATP) conductance. The effect was rapid in onset, readily reversible, voltage independent, and related to intracellular ATP concentration. In the presence of 1 mM intracellular ATP, half-maximal activation of KATP channels was obtained with extracellular application of 1.7 microM Zn2+. Single channel analysis revealed that extracellular Zn2+ increased the KATP channel open-state probability with no change in the single channel conductance. Our data support the hypothesis that Zn2+ binding to KATP protein subunits results in an activation of the channels, therefore regulating the resting membrane potential and decreasing the excitability of RINm5F cells. Taken together, our results suggest that Zn2+ can influence insulin secretion in pancreatic beta-cells through a negative feedback loop, involving both KATP and voltage-gated conductances.

摘要

在全细胞和外向膜片钳记录条件下,分析了锌离子(Zn2+)对RINm5F胰岛素瘤细胞兴奋性和离子电导的影响。我们发现,细胞外施加10-20微摩尔/升的Zn2+可导致Ca2+动作电位发放的可逆性消失,并伴有静息膜电位的超极化。更高浓度的Zn2+,在数十至数百微摩尔范围内,可导致电压门控Ca2+电流以及程度较轻的K+电流的可逆性降低。低电压激活的Ca2+电流比高电压激活的Ca2+电流对Zn2+阻断更敏感。Zn2+诱导的超极化源于一种电压非依赖性K+电导的剂量依赖性增加,药理学上鉴定为ATP敏感性K+(KATP)电导。该效应起效迅速,易于逆转,与电压无关,且与细胞内ATP浓度有关。在存在1毫摩尔/升细胞内ATP的情况下,细胞外施加1.7微摩尔/升的Zn2+可使KATP通道达到半数最大激活。单通道分析显示,细胞外Zn2+增加了KATP通道的开放概率,而单通道电导没有变化。我们的数据支持这样的假设,即Zn2+与KATP蛋白亚基结合导致通道激活,从而调节静息膜电位并降低RINm5F细胞的兴奋性。综上所述,我们的结果表明,Zn2+可通过一个负反馈回路影响胰腺β细胞中的胰岛素分泌,该回路涉及KATP和电压门控电导。

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