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生态支架与个体的演化。

Ecological scaffolding and the evolution of individuality.

机构信息

School of Mathematical Sciences, University of Adelaide, Adelaide, South Australia, Australia.

Department of Philosophy, Macquarie University, Sydney, New South Wales, Australia.

出版信息

Nat Ecol Evol. 2020 Mar;4(3):426-436. doi: 10.1038/s41559-019-1086-9. Epub 2020 Feb 10.

Abstract

Evolutionary transitions in individuality are central to the emergence of biological complexity. Recent experiments provide glimpses of processes underpinning the transition from single cells to multicellular life and draw attention to the critical role of ecology. Here, we emphasize this ecological dimension and argue that its current absence from theoretical frameworks hampers development of general explanatory solutions. Using mechanistic mathematical models, we show how a minimal ecological structure comprising patchily distributed resources and between-patch dispersal can scaffold Darwinian-like properties on collectives of cells. This scaffolding causes cells to participate directly in the process of evolution by natural selection as if they were members of multicellular collectives, with collectives participating in a death-birth process arising from the interplay between the timing of dispersal events and the rate of resource use by cells. When this timescale is sufficiently long and new collectives are founded by single cells, collectives experience conditions that favour evolution of a reproductive division of labour. Together our simple model makes explicit key events in the major evolutionary transition to multicellularity. It also makes predictions concerning the life history of certain pathogens and serves as an ecological recipe for experimental realization of evolutionary transitions.

摘要

个体的进化转变是生物复杂性出现的核心。最近的实验提供了对从单细胞到多细胞生命过渡过程的初步了解,并引起了人们对生态学关键作用的关注。在这里,我们强调这一生态维度,并认为其目前在理论框架中的缺失阻碍了一般解释性解决方案的发展。我们使用机械数学模型表明,由斑块状分布的资源和斑块间扩散组成的最小生态结构如何能够在细胞集体上支撑类似达尔文的特性。这种支架使细胞直接参与自然选择的进化过程,就好像它们是多细胞集体的成员一样,集体通过扩散事件的时间和细胞对资源的利用速度之间的相互作用参与由死亡和诞生过程产生的集体进化。当这个时间尺度足够长并且新的集体由单细胞建立时,集体就会经历有利于生殖分工进化的条件。我们的简单模型共同明确了向多细胞进化的主要进化转变中的关键事件。它还对某些病原体的生活史做出了预测,并为实验实现进化转变提供了生态配方。

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