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线粒体氧化磷酸化复合物中的内在蛋白激酶活性。

Intrinsic protein kinase activity in mitochondrial oxidative phosphorylation complexes.

机构信息

Laboratory of Cardiac Energetics, National Heart, Lung and Blood Institute, National Institutes of Health, Department of Health and Human Services, Bethesda, Maryland 20892, United States.

出版信息

Biochemistry. 2011 Apr 5;50(13):2515-29. doi: 10.1021/bi101434x. Epub 2011 Mar 8.

Abstract

Mitochondrial protein phosphorylation is a well-recognized metabolic control mechanism, with the classical example of pyruvate dehydrogenase (PDH) regulation by specific kinases and phosphatases of bacterial origin. However, despite the growing number of reported mitochondrial phosphoproteins, the identity of the protein kinases mediating these phosphorylation events remains largely unknown. The detection of mitochondrial protein kinases is complicated by the low concentration of kinase relative to that of the target protein, the lack of specific antibodies, and contamination from associated, but nonmatrix, proteins. In this study, we use blue native gel electrophoresis (BN-PAGE) to isolate rat and porcine heart mitochondrial complexes for screening of protein kinase activity. To detect kinase activity, one-dimensional BN-PAGE gels were exposed to [γ-(32)P]ATP and then followed by sodium dodecyl sulfate gel electrophoresis. Dozens of mitochondrial proteins were labeled with (32)P in this setting, including all five complexes of oxidative phosphorylation and several citric acid cycle enzymes. The nearly ubiquitous (32)P protein labeling demonstrates protein kinase activity within each mitochondrial protein complex. The validity of this two-dimensional BN-PAGE method was demonstrated by detecting the known PDH kinases and phosphatases within the PDH complex band using Western blots and mass spectrometry. Surprisingly, these same approaches detected only a few additional conventional protein kinases, suggesting a major role for autophosphorylation in mitochondrial proteins. Studies on purified Complex V and creatine kinase confirmed that these proteins undergo autophosphorylation and, to a lesser degree, tenacious (32)P-metabolite association. In-gel Complex IV activity was shown to be inhibited by ATP, and partially reversed by phosphatase activity, consistent with an inhibitory role for protein phosphorylation in this complex. Collectively, this study proposes that many of the mitochondrial complexes contain an autophosphorylation mechanism, which may play a functional role in the regulation of these multiprotein units.

摘要

线粒体蛋白磷酸化是一种公认的代谢控制机制,其经典示例是特定激酶和细菌来源的磷酸酶对丙酮酸脱氢酶(PDH)的调节。然而,尽管已报道的线粒体磷酸化蛋白数量不断增加,但介导这些磷酸化事件的蛋白激酶的身份在很大程度上仍未知。由于激酶相对于靶蛋白的浓度较低、缺乏特异性抗体以及与非基质相关蛋白的污染,因此检测线粒体蛋白激酶变得复杂。在这项研究中,我们使用蓝色非变性凝胶电泳(BN-PAGE)分离大鼠和猪心脏线粒体复合物,以筛选蛋白激酶活性。为了检测激酶活性,一维 BN-PAGE 凝胶暴露于 [γ-(32)P]ATP 后,接着进行十二烷基硫酸钠凝胶电泳。在这种情况下,数十种线粒体蛋白被 (32)P 标记,包括氧化磷酸化的所有五个复合物和几种柠檬酸循环酶。在每个线粒体蛋白复合物中均观察到几乎普遍存在的 (32)P 蛋白标记,证明存在蛋白激酶活性。通过使用 Western blot 和质谱法在 PDH 复合物带中检测到已知的 PDH 激酶和磷酸酶,证明了这种二维 BN-PAGE 方法的有效性。令人惊讶的是,这些相同的方法仅检测到少数其他常规蛋白激酶,这表明在线粒体蛋白中自磷酸化起着主要作用。对纯化的复合物 V 和肌酸激酶的研究证实,这些蛋白质会发生自磷酸化,并且在较小程度上,与坚韧的 (32)P 代谢物结合。凝胶中复合物 IV 的活性被 ATP 抑制,并被磷酸酶活性部分逆转,这与该复合物中蛋白磷酸化的抑制作用一致。总的来说,这项研究表明,许多线粒体复合物都包含一种自磷酸化机制,该机制可能在这些多蛋白单元的调节中发挥功能作用。

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