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Selection Finder (SelFi): A computational metabolic engineering tool to enable directed evolution of enzymes

机译:选择查找器(SelFi):一种计算代谢工程工具可实现酶的定向进化

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摘要

Directed evolution of enzymes consists of an iterative process of creating mutant libraries and choosing desired phenotypes through screening or selection until the enzymatic activity reaches a desired goal. The biggest challenge in directed enzyme evolution is identifying high-throughput screens or selections to isolate the variant(s) with the desired property. We present in this paper a computational metabolic engineering framework, Selection Finder (SelFi), to construct a selection pathway from a desired enzymatic product to a cellular host and to couple the pathway with cell survival. We applied SelFi to construct selection pathways for four enzymes and their desired enzymatic products xylitol, D-ribulose-1,5-bisphosphate, methanol, and aniline. Two of the selection pathways identified by SelFi were previously experimentally validated for engineering Xylose Reductase and RuBisCO. Importantly, SelFi advances directed evolution of enzymes as there is currently no known generalized strategies or computational techniques for identifying high-throughput selections for engineering enzymes.
机译:酶的定向进化包括创建突变体文库并通过筛选或选择直至酶活性达到所需目的的所需表型的迭代过程。定向酶进化的最大挑战是鉴定高通量筛选或选择,以分离具有所需特性的变体。我们在本文中介绍了一种计算代谢工程框架,选择查找器(SelFi),以构建从所需酶产品到细胞宿主的选择途径,并将该途径与细胞存活率结合起来。我们应用SelFi构建四种酶及其所需的酶产物木糖醇,D-核糖-1,5-双磷酸酯,甲醇和苯胺的选择途径。 SelFi鉴定的两种选择途径先前已通过实验验证,可用于工程化木糖还原酶和RuBisCO。重要的是,SelFi促进了酶的定向进化,因为目前尚无用于识别工程酶高通量选择的已知通用策略或计算技术。

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