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[ATP 依赖性钾通道开放剂二氮嗪对大鼠肝线粒体通透性转换孔开放的影响]

[The influence of ATP-dependent K(+)-channel diazoxide opener on the opening of mitochondrial permeability transition pore in rat liver mitochondria].

作者信息

Akopova O V

出版信息

Ukr Biokhim Zh (1999). 2011 May-Jun;83(3):37-47.

PMID:21888053
Abstract

The influence of mitochondrial ATP-dependent K(+)-channel (K+(ATP)-channel) opener, diazoxide (DZ) on the mitochondrial permeability transition pore (MPTP) opening in rat liver mitochondria is studied. In the absence of DZ the MPTP opening leads to the increase in the rate of K(+)- and Ca(2+)-cycling supported by the simultaneous functioning of K(+)-channels and K+/H(+)-antiporter, and also Ca(2+)-uniporter together with MPTP as the cations influx and efflux pathways. Independent of MPTP opening, the activation of both constitutes of K(+)-cycle, K(+)-uptake as well as K+/H(+)-exchange, by DZ is observed. It is shown that the activation of transmembrane exchange of K+, combined with MPTP opening, results in partial inhibition of the latter. A simple methodical approach for the estimation of DZ influence on the open state of mitochondrial pore is proposed. It is shown that MPTP closure followed by Ca2+ reentry to the matrix is accompanied by the K+/H(+)-exchange inhibition which takes place in the same timeframes as the increase in matrix Ca2+ content. Relevant to physiological conditions, an important physiological function of MPTP is revealed, that is the maintenance of relatively low matrix level of Ca2+ accompanied by the acceleration of transmembrane ion exchange (K+ and Ca2+) which could strongly influence the energy state and energy-dependent processes in mitochondria.

摘要

研究了线粒体ATP依赖性钾通道(K+(ATP)通道)开放剂二氮嗪(DZ)对大鼠肝线粒体中膜通透性转换孔(MPTP)开放的影响。在没有DZ的情况下,MPTP开放导致由K+通道和K+/H+反向转运体同时发挥作用所支持的K+和Ca2+循环速率增加,同时Ca2+单向转运体与MPTP一起作为阳离子流入和流出途径。观察到,与MPTP开放无关,DZ可激活K+循环的两个组成部分,即K+摄取以及K+/H+交换。结果表明,K+跨膜交换的激活与MPTP开放相结合,会导致后者受到部分抑制。提出了一种评估DZ对线粒体孔开放状态影响的简单方法。结果表明,MPTP关闭后Ca2+重新进入基质伴随着K+/H+交换的抑制,这与基质Ca2+含量增加发生在同一时间范围内。与生理条件相关,揭示了MPTP的一项重要生理功能,即维持基质中相对较低的Ca2+水平,同时加速跨膜离子交换(K+和Ca2+),这可能会强烈影响线粒体中的能量状态和能量依赖过程。

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