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遗传搭便车、线粒体-细胞核共适应与线粒体DNA条形码间隙的起源

Genetic hitchhiking, mitonuclear coadaptation, and the origins of mt DNA barcode gaps.

作者信息

Hill Geoffrey E

机构信息

Department of Biological Science Auburn University Auburn AL USA.

出版信息

Ecol Evol. 2020 Aug 3;10(17):9048-9059. doi: 10.1002/ece3.6640. eCollection 2020 Sep.

DOI:10.1002/ece3.6640
PMID:32953045
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC7487244/
Abstract

DNA barcoding based on mitochondrial (mt) nucleotide sequences is an enigma. Neutral models of mt evolution predict DNA barcoding cannot work for recently diverged taxa, and yet, mt DNA barcoding accurately delimits species for many bilaterian animals. Meanwhile, mt DNA barcoding often fails for plants and fungi. I propose that because mt gene products must cofunction with nuclear gene products, the evolution of mt genomes is best understood with full consideration of the two environments that impose selective pressure on mt genes: the external environment and the internal genomic environment. Moreover, it is critical to fully consider the potential for adaptive evolution of not just protein products of mt genes but also of mt transfer RNAs and mt ribosomal RNAs. The tight linkage of genes on mt genomes that do not engage in recombination could facilitate selective sweeps whenever there is positive selection on any element in the mt genome, leading to the purging of mt genetic diversity within a population and to the rapid fixation of novel mt DNA sequences. Accordingly, the most important factor determining whether or not mt DNA sequences diagnose species boundaries may be the extent to which the mt chromosomes engage in recombination.

摘要

基于线粒体(mt)核苷酸序列的DNA条形码技术是一个谜。线粒体进化的中性模型预测,DNA条形码技术对最近分化的分类群不起作用,然而,线粒体DNA条形码技术却能准确地界定许多两侧对称动物的物种。与此同时,线粒体DNA条形码技术对植物和真菌常常失效。我认为,由于线粒体基因产物必须与核基因产物共同发挥作用,因此,只有充分考虑对线粒体基因施加选择压力的两种环境,即外部环境和内部基因组环境,才能最好地理解线粒体基因组的进化。此外,至关重要的是,不仅要充分考虑线粒体基因蛋白质产物的适应性进化潜力,还要充分考虑线粒体转移RNA和线粒体核糖体RNA的适应性进化潜力。线粒体基因组上不参与重组的基因紧密连锁,每当线粒体基因组中的任何元件受到正选择时,都可能促进选择性清除,导致种群内线粒体遗传多样性的清除以及新线粒体DNA序列的快速固定。因此,决定线粒体DNA序列能否诊断物种界限的最重要因素可能是线粒体染色体参与重组的程度。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6bff/7487244/98bfb9def96d/ECE3-10-9048-g001.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6bff/7487244/98bfb9def96d/ECE3-10-9048-g001.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6bff/7487244/98bfb9def96d/ECE3-10-9048-g001.jpg

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