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Loss of Genetic Redundancy in Reductive Genome Evolution

机译:还原性基因组进化中的遗传冗余损失。

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摘要

Biological systems evolved to be functionally robust in uncertain environments, but also highly adaptable. Such robustness is partly achieved by genetic redundancy, where the failure of a specific component through mutation or environmental challenge can be compensated by duplicate components capable of performing, to a limited extent, the same function. Highly variable environments require very robust systems. Conversely, predictable environments should not place a high selective value on robustness. Here we test this hypothesis by investigating the evolutionary dynamics of genetic redundancy in extremely reduced genomes, found mostly in intracellular parasites and endosymbionts. By combining data analysis with simulations of genome evolution we show that in the extensive gene loss suffered by reduced genomes there is a selective drive to keep the diversity of protein families while sacrificing paralogy. We show that this is not a by-product of the known drivers of genome reduction and that there is very limited convergence to a common core of families, indicating that the repertoire of protein families in reduced genomes is the result of historical contingency and niche-specific adaptations. We propose that our observations reflect a loss of genetic redundancy due to a decreased selection for robustness in a predictable environment.
机译:生物系统在不确定的环境中发展为功能强大,但也具有高度适应性。这种鲁棒性部分是通过遗传冗余实现的,其中特定组件因突变或环境挑战而导致的失败可以通过能够在有限范围内执行相同功能的重复组件来补偿。高度可变的环境需要非常强大的系统。相反,可预测的环境不应在鲁棒性上赋予较高的选择价值。在这里,我们通过研究极度减少的基因组中遗传冗余的进化动力学来检验这一假设,该基因组主要存在于细胞内的寄生虫和共生共生体中。通过将数据分析与基因组进化模拟相结合,我们表明,在基因组减少的情况下遭受的广泛基因损失中,有选择地推动蛋白质家族保持多样性,同时牺牲寄生性。我们表明,这不是已知的基因组减少驱动因素的副产品,并且收敛到家族的共同核心非常有限,这表明减少的基因组中蛋白质家族的组成部分是历史偶然性和利基效应的结果。具体的改编。我们建议,我们的观察结果反映了由于在可预测的环境中对鲁棒性的选择减少而导致的遗传冗余的损失。

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