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隐秘遗传变异塑造了酶的适应性进化潜力。

Cryptic genetic variation shapes the adaptive evolutionary potential of enzymes.

机构信息

Michael Smith Laboratory, University of British Columbia, Vancouver, Canada.

Research School of Chemistry, Australian National University, Canberra, Australia.

出版信息

Elife. 2019 Feb 5;8:e40789. doi: 10.7554/eLife.40789.

Abstract

Genetic variation among orthologous proteins can cause cryptic phenotypic properties that only manifest in changing environments. Such variation may impact the evolvability of proteins, but the underlying molecular basis remains unclear. Here, we performed comparative directed evolution of four orthologous metallo-β-lactamases toward a new function and found that different starting genotypes evolved to distinct evolutionary outcomes. Despite a low initial fitness, one ortholog reached a significantly higher fitness plateau than its counterparts, via increasing catalytic activity. By contrast, the ortholog with the highest initial activity evolved to a less-optimal and phenotypically distinct outcome through changes in expression, oligomerization and activity. We show how cryptic molecular properties and conformational variation of active site residues in the initial genotypes cause epistasis, that could lead to distinct evolutionary outcomes. Our work highlights the importance of understanding the molecular details that connect genetic variation to protein function to improve the prediction of protein evolution.

摘要

同源蛋白之间的遗传变异会导致潜在的表型特征,这些特征只有在环境变化时才会显现。这种变异可能会影响蛋白质的可进化性,但潜在的分子基础仍不清楚。在这里,我们对四个同源金属β-内酰胺酶进行了比较定向进化,以获得新的功能,发现不同的起始基因型进化到了不同的进化结果。尽管初始适应性较低,但一个同源物通过提高催化活性,达到了明显更高的适应性平台。相比之下,初始活性最高的同源物通过表达、寡聚化和活性的变化,进化到了一个不太理想和表型上明显不同的结果。我们展示了初始基因型中活性位点残基的潜在分子特性和构象变化如何导致上位性,从而导致不同的进化结果。我们的工作强调了理解连接遗传变异和蛋白质功能的分子细节的重要性,以提高对蛋白质进化的预测。

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