量化人类线粒体DNA中穆勒棘轮引起的基因组衰变悖论。

Laurence Loewe
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引用次数: 81

摘要

在人类谱系中观察到的高线粒体突变率引发了这样一个问题:这样一个无性遗传系统是如何在穆勒棘轮引起的轻微有害突变积累中存活下来的?我定义了一个零模型,以前所未有的细节量化穆勒棘轮造成的灭绝威胁。该模型具有足够的通用性,可以在怀疑穆勒棘轮作用的各种物种中探索其生物学意义。为了在广泛的参数空间范围内提高精度,我使用了由evolution@home运行的基于个体的模拟,这是进化生物学的第一个全球计算系统。在编译了人类线粒体DNA (mtDNA)关键参数的真实值之后,我发现,如果关于mtDNA和穆勒棘轮的公认智慧是正确的,那么令人惊讶的大范围生物学上真实的参数组合将导致人类在2000万年的时间内灭绝。由此产生的基因组衰变悖论补充了核DNA突变积累导致的类似灭绝威胁,并建议对长期持久性的非常规解释进行评估。给出了大量潜在的解决方案,包括补偿性回突变,突变率异质性和mtDNA的偶尔重组。未来的工作将不得不探索哪一种方法真正解决了这个悖论。尽管如此,这里提出的结果提供了另一个减少人为突变率增加的理由。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Quantifying the genomic decay paradox due to Muller's ratchet in human mitochondrial DNA.

The observation of high mitochondrial mutation rates in human pedigrees has led to the question of how such an asexual genetic system can survive the accumulation of slightly deleterious mutations caused by Muller's ratchet. I define a null model to quantify in unprecedented detail the threat from extinction caused by Muller's ratchet. This model is general enough to explore the biological significance of Muller's ratchet in various species where its operation has been suspected. For increased precision over a wide range of parameter space I employ individual-based simulations run by evolution@home, the first global computing system for evolutionary biology. After compiling realistic values for the key parameters in human mitochondrial DNA (mtDNA) I find that a surprisingly large range of biologically realistic parameter combinations would lead to the extinction of the human line over a period of 20 million years - if accepted wisdom about mtDNA and Muller's ratchet is correct. The resulting genomic decay paradox complements a similar threat from extinction due to mutation accumulation in nuclear DNA and suggests evaluation of unconventional explanations for long-term persistence. A substantial list of potential solutions is given, including compensatory back mutations, mutation rate heterogeneity and occasional recombination in mtDNA. Future work will have to explore which of these actually solves the paradox. Nonetheless, the results presented here provide yet another reason to minimize anthropogenic increase of mutation rates.

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