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Feedback between Population and Evolutionary Dynamics Determines the Fate of Social Microbial Populations

机译:种群与进化动力学之间的反馈决定了社会微生物种群的命运

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摘要

The evolutionary spread of cheater strategies can destabilize populations engaging in social cooperative behaviors, thus demonstrating that evolutionary changes can have profound implications for population dynamics. At the same time, the relative fitness of cooperative traits often depends upon population density, thus leading to the potential for bi-directional coupling between population density and the evolution of a cooperative trait. Despite the potential importance of these eco-evolutionary feedback loops in social species, they have not yet been demonstrated experimentally and their ecological implications are poorly understood. Here, we demonstrate the presence of a strong feedback loop between population dynamics and the evolutionary dynamics of a social microbial gene, SUC2, in laboratory yeast populations whose cooperative growth is mediated by the SUC2 gene. We directly visualize eco-evolutionary trajectories of hundreds of populations over 50–100 generations, allowing us to characterize the phase space describing the interplay of evolution and ecology in this system. Small populations collapse despite continual evolution towards increased cooperative allele frequencies; large populations with a sufficient number of cooperators “spiral” to a stable state of coexistence between cooperator and cheater strategies. The presence of cheaters does not significantly affect the equilibrium population density, but it does reduce the resilience of the population as well as its ability to adapt to a rapidly deteriorating environment. Our results demonstrate the potential ecological importance of coupling between evolutionary dynamics and the population dynamics of cooperatively growing organisms, particularly in microbes. Our study suggests that this interaction may need to be considered in order to explain intraspecific variability in cooperative behaviors, and also that this feedback between evolution and ecology can critically affect the demographic fate of those species that rely on cooperation for their survival.
机译:作弊策略的进化传播会破坏从事社会合作行为的人群的稳定,因此证明了进化变化可能对人口动态产生深远的影响。同时,合作性状的相对适应性通常取决于种群密度,因此导致了种群密度与合作性状演化之间双向耦合的可能性。尽管这些生态进化反馈回路在社会物种中具有潜在的重要性,但尚未通过实验证明它们,并且对其生态含义也知之甚少。在这里,我们证明了在实验室动态的酵母菌种群中,种群动力学与社会微生物基因SUC2的进化动力学之间存在强大的反馈环,而酵母菌的合作生长是由SUC2基因介导的。我们直接可视化了50到100代内数百个人口的生态进化轨迹,从而使我们能够描述描述该系统中进化与生态相互作用的相空间。尽管不断朝着合作等位基因频率的发展不断发展,但仍有少数人口崩溃。具有足够数量的合作者的大量人口“螺旋式”发展到合作者与作弊者策略之间稳定的共存状态。作弊者的存在并不会显着影响均衡人口密度,但会降低群体的弹性以及其适应迅速恶化的环境的能力。我们的结果证明了协同生长的生物体(尤其是微生物)的进化动力学与种群动力学之间耦合的潜在生态重要性。我们的研究表明,可能需要考虑这种相互作用,以解释合作行为中的种内变异性,而且进化与生态学之间的这种反馈会严重影响那些依靠合作来生存的物种的人口命运。

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