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将线粒体转录机制与人类疾病联系起来。

Coupling the mitochondrial transcription machinery to human disease.

作者信息

Shadel Gerald S

机构信息

Department of Pathology, Yale University School of Medicine, 300 Cedar Street, PO Box 208023, New Haven, CT 06520-8023, USA.

出版信息

Trends Genet. 2004 Oct;20(10):513-9. doi: 10.1016/j.tig.2004.08.005.

Abstract

Mitochondria are the central processing units for cellular energy metabolism and, in addition to carrying out oxidative phosphorylation, regulate important processes such as apoptosis and calcium homeostasis. Because mitochondria possess a genome that is central to their multiple functions, an understanding of the mechanism of mitochondrial gene expression is required to decipher the many ways mitochondrial dysfunction contributes to human disease. Towards this end, two human transcription factors that are related to rRNA methyltransferases have recently been characterized, providing new insight into the mechanism of mitochondrial transcription and a novel link to maternally inherited deafness. Furthermore, studies in the Saccharomyces cerevisiae model system have revealed a functional coupling of transcription and translation at the inner mitochondrial membrane, where assembly of the oxidative phosphorylation system commences. Defects in an analogous coupling mechanism in humans might underlie the cytochrome oxidase deficiency that causes a form of Leigh Syndrome.

摘要

线粒体是细胞能量代谢的核心处理单元,除了进行氧化磷酸化外,还调节细胞凋亡和钙稳态等重要过程。由于线粒体拥有对其多种功能至关重要的基因组,因此需要了解线粒体基因表达机制,以解读线粒体功能障碍导致人类疾病的多种方式。为此,最近鉴定了两种与rRNA甲基转移酶相关的人类转录因子,为线粒体转录机制提供了新见解,并与母系遗传性耳聋建立了新联系。此外,在酿酒酵母模型系统中的研究揭示了线粒体内膜上转录与翻译的功能偶联,氧化磷酸化系统的组装在此开始。人类中类似偶联机制的缺陷可能是导致一种 Leigh 综合征的细胞色素氧化酶缺乏的基础。

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