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开放线粒体ATP敏感性钾通道保护缺血心脏的机制。

Mechanisms by which opening the mitochondrial ATP- sensitive K(+) channel protects the ischemic heart.

作者信息

Dos Santos Pierre, Kowaltowski Alicia J, Laclau Muriel N, Seetharaman Subramanian, Paucek Petr, Boudina Sihem, Thambo Jean-Benoit, Tariosse Liliane, Garlid Keith D

机构信息

Unité 441 Athérosclérose and IFR 4, Institut National de la Santé et de la Recherche Médicale, 33600 Pessac, France.

出版信息

Am J Physiol Heart Circ Physiol. 2002 Jul;283(1):H284-95. doi: 10.1152/ajpheart.00034.2002.

Abstract

Diazoxide opening of the mitochondrial ATP-sensitive K(+) (mitoK(ATP)) channel protects the heart against ischemia-reperfusion injury by unknown mechanisms. We investigated the mechanisms by which mitoK(ATP) channel opening may act as an end effector of cardioprotection in the perfused rat heart model, in permeabilized fibers, and in rat heart mitochondria. We show that diazoxide pretreatment preserves the normal low outer membrane permeability to nucleotides and cytochrome c and that these beneficial effects are abolished by the mitoK(ATP) channel inhibitor 5-hydroxydecanoate. We hypothesize that an open mitoK(ATP) channel during ischemia maintains the tight structure of the intermembrane space that is required to preserve the normal low outer membrane permeability to ADP and ATP. This hypothesis is supported by findings in mitochondria showing that small decreases in intermembrane space volume, induced by either osmotic swelling or diazoxide, increased the half-saturation constant for ADP stimulation of respiration and sharply reduced ATP hydrolysis. These effects are proposed to lead to preservation of adenine nucleotides during ischemia and efficient energy transfer upon reperfusion.

摘要

二氮嗪开启线粒体ATP敏感性钾通道(mitoK(ATP))可保护心脏免受缺血再灌注损伤,但其机制尚不清楚。我们研究了在灌注大鼠心脏模型、透化纤维和大鼠心脏线粒体中,mitoK(ATP)通道开放作为心脏保护终效应器的作用机制。我们发现,二氮嗪预处理可维持线粒体外膜对核苷酸和细胞色素c的正常低通透性,而mitoK(ATP)通道抑制剂5-羟基癸酸可消除这些有益作用。我们推测,缺血期间开放的mitoK(ATP)通道可维持膜间隙的紧密结构,而这是保持线粒体外膜对ADP和ATP正常低通透性所必需的。线粒体的研究结果支持了这一假说,即渗透压肿胀或二氮嗪诱导的膜间隙体积小幅减小,会增加ADP刺激呼吸的半饱和常数,并大幅降低ATP水解。这些效应被认为可在缺血期间保存腺嘌呤核苷酸,并在再灌注时实现高效的能量转移。

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