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共生体进化:全基因组的种群理论。

Holobiont Evolution: Population Theory for the Hologenome.

出版信息

Am Nat. 2023 Jun;201(6):763-778. doi: 10.1086/723782. Epub 2023 Apr 17.

Abstract

AbstractThis article develops mathematical theory for the population dynamics of microbiomes with their hosts and for holobiont evolution caused by holobiont selection. The objective is to account for the formation of microbiome-host integration. Microbial population dynamic parameters must mesh with the host's for coexistence. A horizontally transmitted microbiome is a genetic system with "collective inheritance." The microbial source pool in the environment corresponds to the gamete pool for nuclear genes. Poisson sampling of the microbial source pool corresponds to binomial sampling of the gamete pool. However, holobiont selection on the microbiome does not lead to a counterpart of the Hardy-Weinberg law or to directional selection that always fixes microbial genes conferring the highest holobiont fitness. A microbe might strike an optimal fitness balance between lowering its within-host fitness while increasing holobiont fitness. Such microbes are replaced by otherwise identical microbes that contribute nothing to holobiont fitness. This replacement can be reversed by hosts that initiate immune responses to nonhelpful microbes. This discrimination leads to microbial species sorting. Host-orchestrated species sorting followed by microbial competition, rather than coevolution or multilevel selection, is predicted to be the cause of microbiome-host integration.

摘要

摘要

本文发展了微生物组与其宿主的种群动态以及由整体选择引起的整体共生体进化的数学理论。目的是解释微生物组-宿主整合的形成。微生物种群动态参数必须与宿主的参数相匹配才能共存。水平传播的微生物组是具有“集体遗传”的遗传系统。环境中的微生物源池对应于核基因的配子池。微生物源池的泊松抽样对应于配子池的二项式抽样。然而,对微生物组的整体选择不会导致哈迪-温伯格定律或总是固定赋予最高整体共生体适应性的微生物基因的定向选择。微生物可能会在降低其在宿主内的适应性的同时增加整体共生体适应性之间找到最佳的适应性平衡。这种微生物会被对整体共生体适应性没有贡献的其他相同微生物所取代。宿主发起对非有益微生物的免疫反应可以逆转这种取代。这种歧视导致微生物物种分类。宿主协调的物种分类,然后是微生物竞争,而不是共同进化或多层次选择,被预测为微生物组-宿主整合的原因。

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