Yi Xiao, Dean Antony M
Department of Ecology, Evolution and Behavior, University of Minnesota, St. Paul, United States.
Laboratory of Microbial Evolution, College of Ecology and Evolution, Guangzhou, Peoples Republic of China.
Elife. 2016 Oct 3;5:e19307. doi: 10.7554/eLife.19307.
We report the evolution of a phenotypically plastic behavior that circumvents the hardwired trade-off that exists when resources are partitioned between growth and motility in . We propagated cultures in a cyclical environment, alternating between growth up to carrying capacity and selection for chemotaxis. Initial adaptations boosted overall swimming speed at the expense of growth. The effect of the trade-off was subsequently eased through a change in behavior; while individual cells reduced motility during exponential growth, the faction of the population that was motile increased as the carrying capacity was approached. This plastic behavior was produced by a single amino acid replacement in FliA, a regulatory protein central to the chemotaxis network. Our results illustrate how phenotypic plasticity potentiates evolvability by opening up new regions of the adaptive landscape.
我们报告了一种表型可塑性行为的演变,这种行为规避了在[具体情境]中资源在生长和运动之间分配时存在的固有权衡。我们在周期性环境中培养细菌,在达到承载能力的生长阶段和趋化性选择阶段之间交替。最初的适应性变化以生长为代价提高了整体游动速度。随后,通过行为变化缓解了这种权衡效应;虽然单个细胞在指数生长期间降低了运动性,但随着接近承载能力,具有运动性的群体比例增加。这种可塑性行为是由趋化性网络核心调节蛋白FliA中的单个氨基酸替换产生的。我们的结果说明了表型可塑性如何通过开辟适应性景观的新区域来增强进化能力。