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衰老相关的线粒体 DNA 突变改变了氧化磷酸化机制,导致线粒体功能障碍。

Aging-associated mitochondrial DNA mutations alter oxidative phosphorylation machinery and cause mitochondrial dysfunctions.

机构信息

Key Laboratory of Laboratory Medicine, Ministry of Education, Zhejiang Provincial Key Laboratory of Medical Genetics, College of Laboratory Medicine and Life Sciences, Wenzhou Medical University, Wenzhou, Zhejiang 325035, China.

Xuanwu Hospital, Capital Medical University, Beijing 100053, China.

出版信息

Biochim Biophys Acta Mol Basis Dis. 2017 Sep;1863(9):2266-2273. doi: 10.1016/j.bbadis.2017.05.022. Epub 2017 May 27.

Abstract

Our previous study generated a series of cybrids containing mitochondria of synaptosomes from mice at different ages. The following functional analysis on these cybrids revealed an age-dependent decline of mitochondrial function. To understand the underlying mechanisms that contribute to the age-related mitochondrial dysfunction, we focused on three cybrids carrying mitochondria derived from synaptosomes of the old mice that exhibited severe respiratory deficiencies. In particular, we started with a comprehensive analysis of mitochondrial genome by high resolution, high sensitive deep sequencing method. Compared with young control, we detected a significant accumulation of heteroplasmic mtDNA mutations. These mutations included six alterations in main control region that has been shown to regulate overall gene-expression, and four alterations in protein coding region, two of which led to significant changes in complex I subunit ND5 and complex III subunit CytB. Interestingly, a reduced mtDNA-encoded protein synthesis was associated with the changes in the main control region. Likewise, mutations in ND5 and CytB were associated with defects in assembly of respiratory complexes. Altogether, the identified age-dependent accumulation of mtDNA mutations in mouse brain likely contributes to the decline in mitochondrial function.

摘要

我们之前的研究生成了一系列含有来自不同年龄小鼠突触体线粒体的细胞杂种。对这些细胞杂种的以下功能分析显示,线粒体功能随年龄的增长而下降。为了了解导致与年龄相关的线粒体功能障碍的潜在机制,我们专注于三个携带来自老年小鼠突触体线粒体的细胞杂种,这些线粒体表现出严重的呼吸缺陷。特别是,我们开始通过高分辨率、高灵敏度的深度测序方法对线粒体基因组进行全面分析。与年轻对照组相比,我们检测到异质体 mtDNA 突变的显著积累。这些突变包括主要调控区的六个改变,该区域已被证明可调控整体基因表达,以及蛋白质编码区的四个改变,其中两个导致复合物 I 亚基 ND5 和复合物 III 亚基 CytB 的显著变化。有趣的是,与主要调控区变化相关的是 mtDNA 编码蛋白合成的减少。同样,ND5 和 CytB 的突变与呼吸复合物组装缺陷有关。总之,在小鼠大脑中鉴定到的与年龄相关的 mtDNA 突变的积累可能导致线粒体功能下降。

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