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Rapid multiple-level coevolution in experimental populations of yeast killer and nonkiller strains

机译:酵母杀手和非杀手菌株实验种群中的快速多级协同进化

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Coevolution between different biological entities is considered an important evolutionary mechanism at all levels of biological organization. Here, we provide evidence for coevolution of a yeast killer strain (K) carrying cytoplasmic dsRNA viruses coding for anti-competitor toxins and an isogenic toxin-sensitive strain (S) during 500 generations of laboratory propagation. Signatures of coevolution developed at two levels. One of them was coadaptation of K and S. Killing ability of K first increased quickly and was followed by the rapid invasion of toxin-resistant mutants derived from S, after which killing ability declined. High killing ability was shown to be advantageous when sensitive cells were present but costly when they were absent. Toxin resistance evolved via a two-step process, presumably involving the fitness-enhancing loss of one chromosome followed by selection of a recessive resistant mutation on the haploid chromosome. The other level of coevolution occurred between cell and killer virus. By swapping the killer viruses between ancestral and evolved strains, we could demonstrate that changes observed in both host and virus were beneficial only when combined, suggesting that they involved reciprocal changes. Together, our results show that the yeast killer system shows a remarkable potential for rapid multiple-level coevolution.
机译:不同生物学实体之间的共同进化被认为是生物学组织各个层面上的重要进化机制。在这里,我们提供了证据,表明在500代实验室繁殖过程中,携带细胞质dsRNA病毒的酵母杀手菌株(K)协同进化,该细胞质编码抗竞争者毒素和同基因毒素敏感菌株(S)。协同进化的特征在两个层次上发展。其中之一是对K和S的适应性。K的杀伤能力首先迅速增加,随后迅速入侵源自S的抗毒素突变体,此后杀伤能力下降。当存在敏感细胞时,高杀伤能力被证明是有利的,但是当它们不存在时,杀伤力很高。毒素抗性通过两步过程演变,大概涉及增强一条染色体的适应性丧失,然后选择单倍体染色体上的隐性抗性突变。协同进化的另一个层次发生在细胞病毒和杀手病毒之间。通过在祖先和进化的毒株之间交换杀手病毒,我们可以证明宿主和病毒中观察到的变化仅在组合时才是有益的,表明它们涉及相互的变化。总之,我们的结果表明,酵母杀手系统显示出快速多级协同进化的巨大潜力。

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