蛋白质工程
分子动力学
化学
酶
定向进化
蛋白质稳定性
计算模拟
纳米技术
计算机科学
蛋白质设计
生化工程
蛋白质结构
计算生物学
材料科学
生物化学
计算化学
工程类
生物
计算科学
突变体
基因
作者
Gert Kiss,Nihan Çelebi‐Ölçüm,Rocco Moretti,David Baker,K. N. Houk
标识
DOI:10.1002/anie.201204077
摘要
Abstract Recent developments in computational chemistry and biology have come together in the “inside‐out” approach to enzyme engineering. Proteins have been designed to catalyze reactions not previously accelerated in nature. Some of these proteins fold and act as catalysts, but the success rate is still low. The achievements and limitations of the current technology are highlighted and contrasted to other protein engineering techniques. On its own, computational “inside‐out” design can lead to the production of catalytically active and selective proteins, but their kinetic performances fall short of natural enzymes. When combined with directed evolution, molecular dynamics simulations, and crowd‐sourced structure‐prediction approaches, however, computational designs can be significantly improved in terms of binding, turnover, and thermal stability.
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