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Evolutionary Robustness of an Optimal Phenotype: Re-evolution of Lysis in a Bacteriophage Deleted for Its Lysin Gene

机译:最佳表型的进化稳健性:溶菌素中溶素基因缺失的噬菌体中溶菌素的重新进化

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摘要

Optimality models are frequently used to create expectations about phenotypic evolution based on the fittest possible phenotype. However, they often ignore genetic details, which could confound these expectations. We experimentally analyzed the ability of organisms to evolve towards an optimum in an experimentally tractable system, lysis time in bacteriophage T7. T7 lysozyme helps lyse the host cell by degrading its cell wall at the end of infection, allowing viral escape to infect new hosts. Artificial deletion of lysozyme greatly reduced fitness and delayed lysis, but after evolution both phenotypes approached wild-type values. Phage with a lysis-deficient lysozyme evolved similarly. Several mutations were involved in adaptation, but most of the change in lysis timing and fitness increase was mediated by changes in gene 16, an internal virion protein not formerly considered to play a role in lysis. Its muralytic domain, which normally aids genome entry through the cell wall, evolved to cause phage release. Theoretical models suggest there is an optimal lysis time, and lysis more rapid or delayed than this optimum decreases fitness. Artificially constructed lines with very rapid lysis had lower fitness than wild-type T7, in accordance with the model. However, while a slow-lysing line also had lower fitness than wild-type, this low fitness resulted at least partly from genetic details that violated model assumptions.
机译:最优模型经常用于根据最合适的可能表型来创建有关表型进化的期望。但是,他们经常忽略遗传细节,这可能会使这些期望混淆。我们通过实验分析了生物体在实验上易于操作的系统中进化至最佳状态的能力,即噬菌体T7的裂解时间。 T7溶菌酶通过在感染结束时降解细胞壁来帮助裂解宿主细胞,从而使病毒逃逸来感染新宿主。溶菌酶的人工删除大大降低了适应性并延迟了裂解,但进化后,两种表型均接近野生型值。具有裂解缺陷的溶菌酶的噬菌体也类似地进化。适应过程涉及几个突变,但是裂解时间和适应性增加的大多数变化是由基因16的变化介导的,该基因以前没有被认为在裂解中起作用。它的Muralytic域通常会帮助基因组通过细胞壁进入,并进化为导致噬菌体释放。理论模型表明存在最佳的裂解时间,并且比该最佳裂解更快速或更延迟的裂解会降低适应性。根据该模型,具有快速裂解作用的人工构建品系的适应性低于野生型T7。然而,尽管慢溶菌系的适应性也比野生型低,但这种低适应性至少部分是由违反模型假设的遗传细节造成的。

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