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In Silico Evolution of Multi-scale Microbial Systems in the Presence of Mobile Genetic Elements and Horizontal Gene Transfer

机译:存在遗传基因和水平基因转移的多尺度微生物系统的计算机模拟进化

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Recent phylogenetic studies reveal that Horizontal Gene Transfer (HGT) events are likely ubiquitous in the Tree of Life. However, our knowledge of HGT's role in evolution and biological organization is very limited, mainly due to the difficulty tracing HGT events experimentally, and lack of computational models that can capture its dynamics. Here, we present a novel, multi-scale model of microbial populations with the capacity to study the effect of HGT on complex traits and regulatory network evolution. We describe a parallel load-balancing framework, which was developed to overcome the innate challenges of simulating evolving populations of such magnitude and complexity. Supercomputer simulations of in silico cells that mutate, compete, and evolve, show that HGT can significantly accelerate, but also disrupt, the emergence of advantageous traits in microbial populations. We show that HGT leaves a lasting imprint to gene regulatory networks when it comes to their size and sparsity. In any given experiment, we observed phenotypic variability that can be explained by individual gain and loss of function during evolution. Analysis of the fossil mutational and HGT event record, both for evolved and non-evolved populations, reveals that the distribution of fitness effect for HGT has different characteristics in terms of symmetry, shape and bias from its mutational counterpart. Interestingly, we observed that evolution can be accelerated when populations are exposed in correlated environments of increased complexity, especially in the presence of HGT.
机译:最近的系统发育研究表明,水平基因转移(HGT)事件很可能在生命之树中无处不在。但是,我们对HGT在进化和生物组织中的作用的了解非常有限,这主要是由于难以通过实验追踪HGT事件,以及缺乏能够捕获其动态的计算模型。在这里,我们提出了一种新颖的,多尺度的微生物种群模型,具有研究HGT对复杂性状和调控网络进化的影响的能力。我们描述了一个并行的负载平衡框架,该框架旨在克服模拟如此规模和复杂性的不断发展的种群所固有的挑战。对计算机细胞发生突变,竞争和进化的超级计算机模拟表明,HGT可以显着加速但也可以破坏微生物种群中有利性状的出现。我们显示,就其规模和稀疏性而言,HGT在基因调控网络上留下了持久的烙印。在任何给定的实验中,我们观察到表型变异性可以用进化过程中个体的功能获得和丧失来解释。对进化种群和非进化种群的化石突变和HGT事件记录的分析表明,HGT的适应性分布与其突变对应物在对称性,形状和偏倚方面具有不同的特征。有趣的是,我们观察到,当种群暴露于复杂性增加的相关环境中时,尤其是在存在HGT的情况下,可以加速进化。

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