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秀丽隐杆线虫 UCP4 蛋白通过琥珀酸转运控制复合物 II 介导的氧化磷酸化。

Caenorhabditis elegans UCP4 protein controls complex II-mediated oxidative phosphorylation through succinate transport.

机构信息

Department of Pharmacology and Toxicology, College of Pharmacy, University of Texas, Austin, Texas 78712, USA.

出版信息

J Biol Chem. 2011 Oct 28;286(43):37712-20. doi: 10.1074/jbc.M111.271452. Epub 2011 Aug 23.

Abstract

The novel uncoupling proteins (UCP2-5) are implicated in the mitochondrial control of oxidant production, insulin signaling, and aging. Attempts to understand their functions have been complicated by overlapping expression patterns in most organisms. Caenorhabditis elegans nematodes are unique because they express only one UCP ortholog, ceUCP4 (ucp4). Here, we performed detailed metabolic analyzes in genetically modified nematodes to define the function of the ceUCP4. The knock-out mutant ucp4 (ok195) exhibited sharply decreased mitochondrial succinate-driven (complex II) respiration. However, respiratory coupling and electron transport chain function were normal in ucp4 mitochondria. Surprisingly, isolated ucp4 mitochondria showed markedly decreased succinate uptake. Similarly, ceUCP4 inhibition blocked succinate respiration and import in wild type mitochondria. Genetic and pharmacologic inhibition of complex I function was selectively lethal to ucp4 worms, arguing that ceUCP4-regulated succinate transport is required for optimal complex II function in vivo. Additionally, ceUCP4 deficiency prolonged lifespan in the short-lived mev1 mutant that exhibits complex II-generated oxidant production. These results identify a novel function for ceUCP4 in the regulation of complex II-based metabolism through an unexpected mechanism involving succinate transport.

摘要

新型解偶联蛋白 (UCP2-5) 参与线粒体对氧化产物、胰岛素信号和衰老的控制。由于在大多数生物体中存在重叠的表达模式,因此尝试理解它们的功能变得复杂。秀丽隐杆线虫线虫是独特的,因为它们只表达一个 UCP 直系同源物,ceUCP4 (ucp4)。在这里,我们对经过基因改造的线虫进行了详细的代谢分析,以确定 ceUCP4 的功能。敲除突变体 ucp4 (ok195) 表现出明显降低的线粒体琥珀酸驱动 (复合物 II) 呼吸。然而,呼吸偶联和电子传递链功能在 ucp4 线粒体中是正常的。令人惊讶的是,分离的 ucp4 线粒体显示出明显降低的琥珀酸摄取。同样,ceUCP4 抑制阻断了野生型线粒体中的琥珀酸呼吸和摄取。复合物 I 功能的遗传和药理学抑制对 ucp4 线虫是选择性致死的,这表明 ceUCP4 调节的琥珀酸转运是体内复合物 II 功能所必需的。此外,ceUCP4 缺乏延长了表现出复合物 II 产生氧化产物的短命 mev1 突变体的寿命。这些结果确定了 ceUCP4 在通过涉及琥珀酸转运的意外机制调节基于复合物 II 的代谢中的新功能。

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