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线粒体蛋白激酶Cε与线粒体ATP敏感性钾通道共同纯化并重新构建,在蛋白脂质体中形成一个起作用的信号模块。

Mitochondrial PKC epsilon and mitochondrial ATP-sensitive K+ channel copurify and coreconstitute to form a functioning signaling module in proteoliposomes.

作者信息

Jabůrek Martin, Costa Alexandre D T, Burton Jana R, Costa Cinthia L, Garlid Keith D

机构信息

Department of Biology, Portland State University, PO Box 751, Portland, Oregon 97207, USA.

出版信息

Circ Res. 2006 Oct 13;99(8):878-83. doi: 10.1161/01.RES.0000245106.80628.d3. Epub 2006 Sep 7.

DOI:10.1161/01.RES.0000245106.80628.d3
PMID:16960097
Abstract

Mitochondria are key mediators of the cardioprotective signal and the mitochondrial ATP-sensitive K+ channel (mitoK(ATP)) plays a crucial role in originating and transmitting that signal. Recently, protein kinase C epsilon (PKC epsilon) has been identified as a component of the mitoK(ATP) signaling cascade. We hypothesized that PKC epsilon and mitoK(ATP) interact directly to form functional signaling modules in the inner mitochondria membrane. To examine this possibility, we studied K+ flux in liposomes containing partially purified mitoK(ATP). The reconstituted proteins were obtained after detergent extraction of isolated mitochondria, 200-fold purification by ion exchange chromatography, and reconstitution into lipid vesicles. Immunoblot analysis revealed the presence of PKC epsilon in the reconstitutively active fraction. Addition of the PKC activators 12-phorbol 13-myristate acetate, hydrogen peroxide, and the specific PKC epsilon peptide agonist, psi epsilonRACK, each activated mitoK(ATP)-dependent K+ flux in the reconstituted system. This effect of PKC epsilon was prevented by chelerythrine, by the specific PKC epsilon peptide antagonist, epsilonV(1-2), and by the specific mitoK(ATP) inhibitor 5-hydroxydecanoate. In addition, the activating effect of PKC agonists was reversed by exogenous protein phosphatase 2A. These results demonstrate persistent, functional association of mitochondrial PKC epsilon and mitoK(ATP).

摘要

线粒体是心脏保护信号的关键介质,而线粒体ATP敏感性钾通道(mitoK(ATP))在该信号的产生和传递中起关键作用。最近,蛋白激酶Cε(PKCε)已被确定为mitoK(ATP)信号级联的一个组成部分。我们假设PKCε和mitoK(ATP)直接相互作用,在内线粒体膜中形成功能性信号模块。为了检验这种可能性,我们研究了含有部分纯化的mitoK(ATP)的脂质体中的钾离子通量。重组蛋白是在对分离的线粒体进行去污剂提取、通过离子交换色谱法进行200倍纯化并重组到脂质小泡后获得的。免疫印迹分析显示在重组活性组分中存在PKCε。添加PKC激活剂12-佛波醇13-肉豆蔻酸酯、过氧化氢以及特异性PKCε肽激动剂psi epsilonRACK,均可在重组系统中激活依赖mitoK(ATP)的钾离子通量。PKCε的这种作用被白屈菜红碱、特异性PKCε肽拮抗剂epsilonV(1-2)以及特异性mitoK(ATP)抑制剂5-羟基癸酸所阻断。此外,PKC激动剂的激活作用可被外源性蛋白磷酸酶2A逆转。这些结果表明线粒体PKCε和mitoK(ATP)之间存在持续的功能性关联。

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