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Biophysical constraints determine the selection of phenotypic fluctuations during directed evolution

机译:生物物理约束决定了在定向演变期间的表型波动的选择

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摘要

Phenotypes of individuals in a population of organisms are not fixed. Phenotypic fluctuations, which describe temporal variation of the phenotype of an individual or individual-to-individual variation across a population, are present in populations from microbes to higher animals. Phenotypic fluctuations can provide a basis for adaptation and be the target of selection. Here we present a theoretical and experimental investigation of the fate of phenotypic fluctuations in directed evolution experiments where phenotypes are subject to constraints. We show that selecting bacterial populations for fast migration through a porous environment drives a reduction in cell-to-cell variation across the population. Using sequencing and genetic engineering we study the genetic basis for this reduction in phenotypic fluctuations. We study the generality of this reduction by developing a simple, abstracted, numerical simulation model of the evolution of phenotypic fluctuations subject to constraints. Using this model we find that strong and weak selection generally lead respectively to increasing or decreasing cell-to-cell variation as a result of a bound on the selected phenotype under a wide range of parameters. However, other behaviors are also possible, and we describe the outcome of selection simulations for different model parameters and suggest future experiments. We analyze the mechanism of the observed reduction of phenotypic fluctuations in our experimental system, discuss the relevance of our abstract model to the experiment and explore its broader implications for evolution.
机译:没有固定生物体中个体的表型。描述了在群体中的个体或个体对个体变异的表型的时间变异,以微生物到更高动物的群体存在。表型波动可以为适应的基础和选择的目标提供基础。在这里,我们提出了一种定向演化实验中表型波动的命运的理论和实验研究,其中表型受到限制。我们表明,通过多孔环境选择用于快速迁移的细菌群驱动群体细胞对细胞变异的减少。使用测序和基因工程我们研究了这种减少表型波动的遗传基础。我们通过开发由受约束的表型波动演变的简单,抽象的数值模拟模型来研究这种减少的一般性。使用该模型,我们发现强大而薄弱的选择通常分别引入,因为在各种参数下所选表型的结合而增加或减少细胞到细胞变化。然而,其他行为也是可能的,并且我们描述了不同模型参数的选择模拟的结果,并提出了未来的实验。我们分析了我们实验系统中观察到的表型波动减少的机制,讨论了我们抽象模型对实验的相关性,并探讨了其对进化的更广泛的影响。

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