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Engineering enzyme specificity using computational design of a defined-sequence library

机译:使用定义序列库的计算设计来工程化酶特异性

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Engineered biosynthetic pathways have the potential to produce high-value molecules from inexpensive feedstocks, but a key limitation is engineering enzymes with high activity and specificity for new reactions. Here, we developed a method for combining structure-based computational protein design with library-based enzyme screening, in which inter-residue correlations favored by the design are encoded into a defined-sequence library. We validated this approach by engineering a glucose 6-oxidase enzyme for use in a proposed pathway to convert D-glucose into D-glucaric acid. The most active variant, identified after only one round of diversification and screening of only 10,000 wells, is approximately 400-fold more active on glucose than is the wild-type enzyme. We anticipate that this strategy will be broadly applicable to the discovery of new enzymes for engineered biological pathways.
机译:工程化的生物合成途径具有从廉价原料生产高价值分子的潜力,但关键的局限性在于工程酶对新反应具有高活性和特异性。在这里,我们开发了一种将基于结构的计算蛋白质设计与基于库的酶筛选相结合的方法,其中设计所支持的残基间相关性被编码到定义的序列库中。我们通过工程化葡萄糖6-氧化酶来验证这种方法,该酶可用于拟议的将D-葡萄糖转化为D-葡萄糖酸的途径。仅在一轮多样化之后,仅筛选了10,000个孔就鉴定出了最活跃的变体,其对葡萄糖的活性比野生型酶高约400倍。我们预计该策略将广泛应用于工程生物途径新酶的发现。

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