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解析选择和遗失偏差对基因动态的影响。

Disentangling the effects of selection and loss bias on gene dynamics.

机构信息

National Center for Biotechnology Information, National Library of Medicine, National Institutes of Health, Bethesda, MD 20894.

Grupo Interdisciplinar de Sistemas Complejos, Departamento de Matemáticas, Universidad Carlos III de Madrid, 28911 Leganés (Madrid), Spain.

出版信息

Proc Natl Acad Sci U S A. 2017 Jul 11;114(28):E5616-E5624. doi: 10.1073/pnas.1704925114. Epub 2017 Jun 26.

Abstract

We combine mathematical modeling of genome evolution with comparative analysis of prokaryotic genomes to estimate the relative contributions of selection and intrinsic loss bias to the evolution of different functional classes of genes and mobile genetic elements (MGE). An exact solution for the dynamics of gene family size was obtained under a linear duplication-transfer-loss model with selection. With the exception of genes involved in information processing, particularly translation, which are maintained by strong selection, the average selection coefficient for most nonparasitic genes is low albeit positive, compatible with observed positive correlation between genome size and effective population size. Free-living microbes evolve under stronger selection for gene retention than parasites. Different classes of MGE show a broad range of fitness effects, from the nearly neutral transposons to prophages, which are actively eliminated by selection. Genes involved in antiparasite defense, on average, incur a fitness cost to the host that is at least as high as the cost of plasmids. This cost is probably due to the adverse effects of autoimmunity and curtailment of horizontal gene transfer caused by the defense systems and selfish behavior of some of these systems, such as toxin-antitoxin and restriction modification modules. Transposons follow a biphasic dynamics, with bursts of gene proliferation followed by decay in the copy number that is quantitatively captured by the model. The horizontal gene transfer to loss ratio, but not duplication to loss ratio, correlates with genome size, potentially explaining increased abundance of neutral and costly elements in larger genomes.

摘要

我们将基因组进化的数学建模与原核生物基因组的比较分析相结合,以估计选择和内在的丢失偏向对不同功能类别的基因和移动遗传元件 (MGE) 的进化的相对贡献。在线性复制-转移-丢失模型中,我们获得了基因家族大小动态的精确解,其中存在选择。除了参与信息处理的基因(特别是翻译)受到强烈选择的保护外,大多数非寄生基因的平均选择系数虽然为正,但较低,与观察到的基因组大小与有效种群大小之间的正相关一致。自由生活的微生物在基因保留方面受到比寄生虫更强的选择压力。不同类别的 MGE 表现出广泛的适应度效应,从几乎中性的转座子到噬菌体,这些都被选择积极地消除。平均而言,参与抗寄生虫防御的基因对宿主的适应度有成本,至少与质粒的成本一样高。这种成本可能是由于防御系统和这些系统中的一些自私行为(如毒素-抗毒素和限制修饰模块)引起的自身免疫和横向基因转移的抑制对宿主产生的不利影响。转座子遵循双相动态,即基因增殖爆发,随后是拷贝数衰减,该模型定量地捕获了这一动态。水平基因转移到丢失的比例,但不是复制到丢失的比例,与基因组大小相关,这可能解释了较大基因组中中性和昂贵元素的丰度增加。

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