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一个具有正向适应性反馈的微生物互利共生进化的简单模型及规则。

A simple model and rules for the evolution of microbial mutualistic symbiosis with positive fitness feedbacks.

作者信息

Iwai Sosuke

机构信息

Department of Biology, Faculty of Education, Hirosaki University, Hirosaki 036-8560, Japan.

出版信息

Theor Popul Biol. 2024 Dec;160:14-24. doi: 10.1016/j.tpb.2024.09.002. Epub 2024 Oct 9.

DOI:10.1016/j.tpb.2024.09.002
PMID:39384161
Abstract

The evolution of microbe-microbe mutualistic symbiosis is considered to be promoted by repeated exchanges of fitness benefits, which can generate positive fitness feedbacks ('partner fidelity feedback') between species. However, previous evolutionary models for mutualism have not captured feedback dynamics or coupling of fitness between species. Here, a simple population model is developed to understand the evolution of mutualistic symbiosis in which two microbial species (host and symbiont) continuously grow and exchange fitness benefits to generate feedback dynamics but do not strictly control each other. The assumption that individual microbes provide constant amounts of resources, which are equally divided among interacting partner individual, enables us to reveal a simple rule for the evolution of costly mutualism with positive fitness feedbacks: the product of the benefit-to-cost ratios for each species exceeds one. When this condition holds, high cooperative investment levels are favored in both species regardless of the amount invested by each partner. The model is then extended to examine how symbiont mutation, immigration, or switching affects the spread of selfish or cooperative symbionts, which decrease and increase their investment levels, respectively. In particular, when a host associates with numerous symbionts without enforcement, neither mutation nor immigration but rather random switching would allow the spread of cooperative symbionts. Examples using symbiont switching for evolution would include large ciliates hosting numerous intracellular endosymbionts. The simple model and rules would provide a basis for understanding the evolution of microbe-microbe mutualistic symbiosis with positive fitness feedbacks and without enforcement mechanisms.

摘要

微生物与微生物之间互利共生关系的进化被认为是由适应性益处的反复交换所推动的,这种交换可以在物种之间产生正向适应性反馈(“伙伴忠诚反馈”)。然而,先前关于共生关系的进化模型并未捕捉到反馈动态或物种间适应性的耦合。在此,我们构建了一个简单的种群模型来理解互利共生关系的进化,其中两种微生物物种(宿主和共生体)持续生长并交换适应性益处以产生反馈动态,但并不相互严格控制。个体微生物提供恒定数量资源且这些资源在相互作用的伙伴个体间平均分配的假设,使我们能够揭示具有正向适应性反馈的代价高昂的共生关系进化的一个简单规则:每个物种的益处成本比之积超过1。当这个条件成立时,无论每个伙伴的投资量如何,两个物种都倾向于高合作投资水平。然后该模型被扩展以研究共生体突变、迁入或转换如何影响自私或合作共生体的传播,自私和合作共生体分别降低和增加它们的投资水平。特别地,当宿主与众多共生体关联而没有强制机制时,既不是突变也不是迁入而是随机转换会使合作共生体得以传播。使用共生体转换进行进化的例子包括大量纤毛虫宿主众多细胞内共生体。这个简单的模型和规则将为理解具有正向适应性反馈且没有强制机制的微生物与微生物之间互利共生关系的进化提供基础。

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