Engineering the Reaction Pathway of a Non-heme Iron Oxygenase Using Ancestral Sequence Reconstruction

DNA洗牌 化学 饱和突变 突变 活动站点 蛋白质工程 血红素 定向进化 羟基化 定点突变 DNA 立体化学 洗牌 残留物(化学) 计算生物学 组合化学 生物化学 突变 基因 生物 计算机科学 突变体 程序设计语言
作者
Di Yang,Chang-Hwa Chiang,Taveechai Wititsuwannakul,Charles L. Brooks,Paul M. Zimmerman,Alison R. H. Narayan
出处
期刊:Journal of the American Chemical Society [American Chemical Society]
被引量:7
标识
DOI:10.1021/jacs.4c08420
摘要

Non-heme iron (FeII), α-ketoglutarate (α-KG)-dependent oxygenases are a family of enzymes that catalyze an array of transformations that cascade forward after the formation of radical intermediates. Achieving control over the reaction pathway is highly valuable and a necessary step toward broadening the applications of these biocatalysts. Numerous approaches have been used to engineer the reaction pathway of FeII/α-KG-dependent enzymes, including site-directed mutagenesis, DNA shuffling, and site-saturation mutagenesis, among others. Herein, we showcase a novel ancestral sequence reconstruction (ASR)-guided strategy in which evolutionary information is used to pinpoint the residues critical for controlling different reaction pathways. Following this, a combinatorial site-directed mutagenesis approach was used to quickly evaluate the importance of each residue. These results were validated using a DNA shuffling strategy and through quantum mechanical/molecular mechanical (QM/MM) simulations. Using this approach, we identified a set of active site residues together with a key hydrogen bond between the substrate and an active site residue, which are crucial for dictating the dominant reaction pathway. Ultimately, we successfully converted both extant and ancestral enzymes that perform benzylic hydroxylation into variants that can catalyze an oxidative ring-expansion reaction, showcasing the potential of utilizing ASR to accelerate the reaction pathway engineering within enzyme families that share common structural and mechanistic features.
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