Directed Evolution Mimics Allosteric Activation by Stepwise Tuning of the Conformational Ensemble

变构调节 化学 色氨酸合酶 定向进化 蛋白质工程 变构酶 催化循环 立体化学 酶催化 蛋白质结构 活动站点 生物化学 氨基酸 色氨酸 突变体 基因
作者
Andrew R. Buller,P. van Roye,Jackson K. B. Cahn,Remkes A. Scheele,Michael Herger,Frances H. Arnold
出处
期刊:Journal of the American Chemical Society [American Chemical Society]
卷期号:140 (23): 7256-7266 被引量:112
标识
DOI:10.1021/jacs.8b03490
摘要

Allosteric enzymes contain a wealth of catalytic diversity that remains distinctly underutilized for biocatalysis. Tryptophan synthase is a model allosteric system and a valuable enzyme for the synthesis of noncanonical amino acids (ncAA). Previously, we evolved the β-subunit from Pyrococcus furiosus, PfTrpB, for ncAA synthase activity in the absence of its native partner protein PfTrpA. However, the precise mechanism by which mutation activated TrpB to afford a stand-alone catalyst remained enigmatic. Here, we show that directed evolution caused a gradual change in the rate-limiting step of the catalytic cycle. Concomitantly, the steady-state distribution of the intermediates shifts to favor covalently bound Trp adducts, which have increased thermodynamic stability. The biochemical properties of these evolved, stand-alone TrpBs converge on those induced in the native system by allosteric activation. High-resolution crystal structures of the wild-type enzyme, an intermediate in the lineage, and the final variant, encompassing five distinct chemical states, show that activating mutations have only minor structural effects on their immediate environment. Instead, mutation stabilizes the large-scale motion of a subdomain to favor an otherwise transiently populated closed conformational state. This increase in stability enabled the first structural description of Trp covalently bound in a catalytically active TrpB, confirming key features of catalysis. These data combine to show that sophisticated models of allostery are not a prerequisite to recapitulating its complex effects via directed evolution, opening the way to engineering stand-alone versions of diverse allosteric enzymes.
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