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Revisiting Robustness and Evolvability: Evolution in Weighted Genotype Spaces

机译:重新审视稳健性和可进化性:加权基因型空间的进化

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摘要

Robustness and evolvability are highly intertwined properties of biological systems. The relationship between these properties determines how biological systems are able to withstand mutations and show variation in response to them. Computational studies have explored the relationship between these two properties using neutral networks of RNA sequences (genotype) and their secondary structures (phenotype) as a model system. However, these studies have assumed every mutation to a sequence to be equally likely; the differences in the likelihood of the occurrence of various mutations, and the consequence of probabilistic nature of the mutations in such a system have previously been ignored. Associating probabilities to mutations essentially results in the weighting of genotype space. We here perform a comparative analysis of weighted and unweighted neutral networks of RNA sequences, and subsequently explore the relationship between robustness and evolvability. We show that assuming an equal likelihood for all mutations (as in an unweighted network), underestimates robustness and overestimates evolvability of a system. In spite of discarding this assumption, we observe that a negative correlation between sequence (genotype) robustness and sequence evolvability persists, and also that structure (phenotype) robustness promotes structure evolvability, as observed in earlier studies using unweighted networks. We also study the effects of base composition bias on robustness and evolvability. Particularly, we explore the association between robustness and evolvability in a sequence space that is AU-rich – sequences with an AU content of 80% or higher, compared to a normal (unbiased) sequence space. We find that evolvability of both sequences and structures in an AU-rich space is lesser compared to the normal space, and robustness higher. We also observe that AU-rich populations evolving on neutral networks of phenotypes, can access less phenotypic variation compared to normal populations evolving on neutral networks.
机译:健壮性和可进化性是生物系统高度交织的特性。这些特性之间的关系决定了生物系统如何承受突变并显示出对它们的反应变异。计算研究已经使用RNA序列的中性网络(基因型)和其二级结构(表型)作为模型系统探索了这两个属性之间的关系。但是,这些研究假设序列的每个突变均具有相同的可能性。先前已经忽略了各种突变发生可能性的差异以及这种系统中突变的概率性质的结果。将概率与突变相关联实质上导致了基因型空间的加权。我们在这里对RNA序列的加权和非加权中性网络进行比较分析,然后探究鲁棒性和可进化性之间的关系。我们表明,假设所有突变的可能性相同(如在未加权网络中),则低估了鲁棒性,并高估了系统的可进化性。尽管放弃了此假设,我们仍观察到序列(基因型)鲁棒性与序列可进化性之间仍然存在负相关关系,而且结构(表型)的鲁棒性促进了结构的可进化性,如在早期使用非加权网络的研究中所观察到的。我们还研究了基础成分偏差对鲁棒性和可进化性的影响。特别是,我们探索了富集AU的序列空间中的健壮性和可进化性之间的关联-与正常(无偏)序列空间相比,其AU含量为80%或更高。我们发现,富集AU的空间中序列和结构的可进化性比正常空间小,而鲁棒性更高。我们还观察到,与在中性网络上进化的正常种群相比,在中性表型网络上进化的富含AU的种群可以访问较少的表型变异。

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  • 期刊名称 other
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  • 年(卷),期 -1(9),11
  • 年度 -1
  • 页码 e112792
  • 总页数 13
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