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The Molecular Clock in the Evolution of Protein Structures

机译:蛋白质结构演化中的分子时钟

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The molecular clock hypothesis, which states that substitutions accumulate in protein sequences at a constant rate, plays a fundamental role in molecular evolution but it is violated when selective or mutational processes vary with time. Such violations of the molecular clock have been widely investigated for protein sequences, but not yet for protein structures. Here, we introduce a novel statistical test (Significant Clock Violations) and perform a large scale assessment of the molecular clock in the evolution of both protein sequences and structures in three large superfamilies. After validating our method with computer simulations, we find that clock violations are generally consistent in sequence and structure evolution, but they tend to be larger and more significant in structure evolution. Moreover, changes of function assessed through Gene Ontology and InterPro terms are associated with large and significant clock violations in structure evolution. We found that almost one third of significant clock violations are significant in structure evolution but not in sequence evolution, highlighting the advantage to use structure information for assessing accelerated evolution and gathering hints of positive selection. Clock violations between closely related pairs are frequently significant in sequence evolution, consistent with the observed time dependence of the substitution rate attributed to segregation of neutral and slightly deleterious polymorphisms, but not in structure evolution, suggesting that these substitutions do not affect protein structure although they may affect stability. These results are consistent with the view that natural selection, both negative and positive, constrains more strongly protein structures than protein sequences. Our code for computing clock violations is freely available at https://github.com/ugobas/Molecular_clock.
机译:分子时钟假设,其表示以恒定速率在蛋白质序列中积聚的替代,在分子演变中起着基本作用,但在选择性或突变过程随时间变化时违反了它。这些侵犯分子时钟的行为已被广泛研究蛋白质序列,但尚未用于蛋白质结构。在这里,我们介绍了一种新颖的统计测试(显着的时钟违规),并对三个大型超小心的蛋白质序列和结构的演化中的分子时钟进行大规模评估。在验证计算机仿真后,我们发现时钟违规通常在序列和结构演化中一致,但在结构演变中它们往往更大且更重要。此外,通过基因本体和域名评估的功能的变化与结构演化中的大而显着的时钟违规有关。我们发现,在结构演变中,近三分之一的显着时钟违规是显着的,但在序列演变中,突出了利用结构信息来评估加速演化和聚集暗选择暗示的优点。密切相关对之间的时钟违规在序列演化中经常显着,与所观察到的时间依赖性归因于中性和略微有害多态性的偏析,但不在结构演变中,表明这些取代不会影响蛋白质结构可能会影响稳定性。这些结果与天然选择,阴性和阳性的视图相一致地限制了比蛋白质序列更强烈的蛋白质结构。我们的计算时钟违规的代码是在https://github.com/ugobas/molecular_clock自由使用的。

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