Towards understanding the evolutionary dynamics of mtDNA.

Samuel G Towarnicki, J William O Ballard
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引用次数: 1

Abstract

Historically, mtDNA was considered a selectively neutral marker that was useful for estimating the population genetic history of the maternal lineage. Over time there has been an increasing appreciation of mtDNA and mitochondria in maintaining cellular and organismal health. Beyond energy production, mtDNA and mitochondria have critical cellular roles in signalling. Here we briefly review the structure of mtDNA and the role of the mitochondrion in energy production. We then discuss the predictions that can be obtained from quaternary structure modelling and focus on mitochondrial complex I. Complex I is the primary entry point for electrons into the electron transport system is the largest respiratory complex of the chain and produces about 40% of the proton flux used to synthesize ATP. A focus of the review is Drosophila's utility as a model organism to study the selective advantage of specific mutations. However, we note that the incorporation of insights from a multitude of systems is necessary to fully understand the range of roles that mtDNA has in organismal fitness. We speculate that dietary changes can illicit stress responses that influence the selective advantage of specific mtDNA mutations and cause spatial and temporal fluctuations in the frequencies of mutations. We conclude that developing our understanding of the roles mtDNA has in determining organismal fitness will enable increased evolutionary insight and propose we can no longer assume it is evolving as a strictly neutral marker without testing this hypothesis.

了解mtDNA的进化动力学。
历史上,mtDNA被认为是一种选择性中性标记,可用于估计母系的群体遗传史。随着时间的推移,人们越来越重视mtDNA和线粒体在维持细胞和机体健康方面的作用。除了产生能量外,mtDNA和线粒体在细胞信号传导中也起着关键作用。在这里,我们简要地回顾了线粒体dna的结构和线粒体在能量产生中的作用。然后,我们讨论了可以从四级结构建模中获得的预测,并将重点放在线粒体复合体I上。复合体I是电子进入电子传递系统的主要入口,是链中最大的呼吸复合体,产生用于合成ATP的约40%的质子通量。这篇综述的一个重点是果蝇作为研究特定突变的选择优势的模式生物的效用。然而,我们注意到,整合来自众多系统的见解对于充分理解mtDNA在生物体适应性中的作用范围是必要的。我们推测,饮食的改变可以抑制应激反应,从而影响特定mtDNA突变的选择优势,并导致突变频率的时空波动。我们的结论是,发展我们对mtDNA在决定生物体适应性方面的作用的理解将使我们能够增加对进化的洞察力,并提出我们不能再假设它是作为一个严格中立的标记进化而没有测试这一假设。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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