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人类衰老与长寿中的线粒体DNA突变:高通量技术引发的争议与新视角

mtDNA mutations in human aging and longevity: controversies and new perspectives opened by high-throughput technologies.

作者信息

Sevini Federica, Giuliani Cristina, Vianello Dario, Giampieri Enrico, Santoro Aurelia, Biondi Fiammetta, Garagnani Paolo, Passarino Giuseppe, Luiselli Donata, Capri Miriam, Franceschi Claudio, Salvioli Stefano

机构信息

Department of Experimental, Diagnostic and Specialty Medicine, University of Bologna, via S. Giacomo 12, 40126 Bologna, Italy; C.I.G. Interdepartmental Centre L. Galvani for Integrated Studies on Bioinformatics, Biophysics and Biocomplexity, University of Bologna, via S. Giacomo 12, 40126, Bologna, Italy.

Department of Biological, Geological and Environmental Sciences, Laboratory of Anthropology, University of Bologna, Via Selmi 3, 40126 Bologna, Italy; Department of Biological, Geological and Environmental Sciences, Centre for Genome Biology, University of Bologna, Via Selmi 3, 40126 Bologna, Italy.

出版信息

Exp Gerontol. 2014 Aug;56:234-44. doi: 10.1016/j.exger.2014.03.022. Epub 2014 Apr 5.

Abstract

The last 30 years of research greatly contributed to shed light on the role of mitochondrial DNA (mtDNA) variability in aging, although contrasting results have been reported, mainly due to bias regarding the population size and stratification, and to the use of analysis methods (haplogroup classification) that resulted to be not sufficiently adequate to grasp the complexity of the phenomenon. A 5-years European study (the GEHA EU project) collected and analyzed data on mtDNA variability on an unprecedented number of long-living subjects (enriched for longevity genes) and a comparable number of controls (matched for gender and ethnicity) in Europe. This very large study allowed a reappraisal of the role of both the inherited and the somatic mtDNA variability in aging, as an association with longevity emerged only when mtDNA variants in OXPHOS complexes co-occurred. Moreover, the availability of data from both nuclear and mitochondrial genomes on a large number of subjects paves the way for an evaluation at a very large scale of the epistatic interactions at a higher level of complexity. This scenario is expected to be even more clarified in the next future with the use of next generation sequencing (NGS) techniques, which are becoming applicable to evaluate mtDNA variability and, then, new mathematical/bioinformatic analysis methods are urgently needed. Recent advances of association studies on age-related diseases and mtDNA variability will also be discussed in this review, taking into account the bias hidden by population stratification. Finally, very recent findings in terms of mtDNA heteroplasmy (i.e. the coexistence of wild type and mutated copies of mtDNA) and aging as well as mitochondrial epigenetic mechanisms will also be discussed.

摘要

过去30年的研究极大地有助于阐明线粒体DNA(mtDNA)变异性在衰老中的作用,尽管报道的结果相互矛盾,这主要是由于人群规模和分层方面的偏差,以及所使用的分析方法(单倍群分类)不足以充分把握该现象的复杂性。一项为期5年的欧洲研究(GEHA欧盟项目)收集并分析了前所未有的大量长寿受试者(富含长寿基因)以及欧洲数量相当的对照组(按性别和种族匹配)的mtDNA变异性数据。这项规模极大的研究使得对遗传性和体细胞mtDNA变异性在衰老中的作用进行重新评估成为可能,因为只有当氧化磷酸化复合体中的mtDNA变异同时出现时,才会出现与长寿的关联。此外,大量受试者的核基因组和线粒体基因组数据的可得性为在更高复杂性水平上大规模评估上位相互作用铺平了道路。随着下一代测序(NGS)技术开始适用于评估mtDNA变异性,预计在不久的将来这种情况将更加清晰,因此迫切需要新的数学/生物信息学分析方法。本综述还将讨论年龄相关疾病与mtDNA变异性关联研究的最新进展,同时考虑到人群分层所隐藏的偏差。最后,还将讨论mtDNA异质性(即mtDNA野生型和突变型拷贝共存)与衰老以及线粒体表观遗传机制方面的最新发现。

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