Gene network topology drives the mutational landscape of gene expression.

IF 3.1 2区 环境科学与生态学 Q2 ECOLOGY
Evolution Pub Date : 2025-05-15 DOI:10.1093/evolut/qpaf068
Sylvain Pouzet, Arnaud Le Rouzic
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引用次数: 0

Abstract

Regulatory mutations, coding sequence variations, and gene deletions and duplica- tions are generally expected to have qualitatively different effects on fitness during adaptation. We aim to ground this expectation within a theoretical framework using evolutionary simulations of gene regulatory networks (GRNs) controlling the expression of fitness-related genes. We examined the distribution of fitness effects as a function of the type of mutation and the topology of the gene network. Contrary to our expectation, the GRN topology had more influence on the effect of mutations than the type of mutation itself. In particular, the topology conditioned (i) the speed of adaptation, (ii) the distribution of fitness effects, and (iii) the degree of pleiotropy which acts as explanatory factor for all mutation types. All mutations had the potential to participate in adaptation, although their propensity to generate beneficial variants differed according to the net- work topology. In scale-free networks, arguably the most common topology for biological networks, coding mutations were more pleiotropic and overrepresented in both beneficial and deleterious mu- tations, while regulatory mutations were more often neutral. However, this observation was not general, as this pattern was reversed in the other network topologies. These results highlight the critical role of gene interactions in defining mutations' contributions to adaptation.

基因网络拓扑驱动基因表达的突变景观。
调控突变、编码序列变异、基因缺失和重复通常被认为在适应过程中对适应度有不同质的影响。我们的目标是利用基因调控网络(grn)控制健康相关基因表达的进化模拟,在理论框架内建立这一期望。我们研究了适应度效应的分布作为突变类型和基因网络拓扑结构的函数。与我们的预期相反,GRN拓扑结构对突变效果的影响大于突变类型本身。特别是,拓扑结构决定了(i)适应的速度,(ii)适应度效应的分布,以及(iii)作为所有突变类型的解释因素的多效性程度。所有的突变都有参与适应的潜力,尽管它们产生有益变异的倾向根据网络拓扑结构而不同。在无标度网络中,可以说是生物网络最常见的拓扑结构,编码突变是多效性的,在有益和有害的突变中都有过多的代表,而调控突变往往是中性的。然而,这种观察结果并不普遍,因为这种模式在其他网络拓扑中是相反的。这些结果强调了基因相互作用在定义突变对适应的贡献方面的关键作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Evolution
Evolution 环境科学-进化生物学
CiteScore
5.00
自引率
9.10%
发文量
0
审稿时长
3-6 weeks
期刊介绍: Evolution, published for the Society for the Study of Evolution, is the premier publication devoted to the study of organic evolution and the integration of the various fields of science concerned with evolution. The journal presents significant and original results that extend our understanding of evolutionary phenomena and processes.
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