生物信息学
分子动力学
吞吐量
酶
计算机科学
生物催化
计算模型
计算模拟
合理设计
生物系统
生化工程
计算生物学
化学
催化作用
纳米技术
计算化学
模拟
计算科学
生物
材料科学
工程类
生物化学
基因
离子液体
无线
电信
作者
Pengyu Wang,Jun Zhang,Shengyu Zhang,Diannan Lu,Yushan Zhu
标识
DOI:10.1021/acs.jcim.3c00002
摘要
Computational enzyme design has been successfully applied to identify new alternatives to natural enzymes for the biosynthesis of important compounds. However, the moderate catalytic activities of de novo designed enzymes indicate that the modeling accuracy of current computational enzyme design methods should be improved. Here, high-throughput molecular dynamics simulations were used to enhance computational enzyme design, thus allowing the identification of variants with higher activities in silico. Different time schemes of high-throughput molecular dynamics simulations were tested to identify the catalytic features of evolved Kemp eliminases. The 20 × 1 ns molecular dynamics simulation scheme was sufficiently accurate and computationally viable to screen the computationally designed massive variants of Kemp elimination enzymes. The developed hybrid computational strategy was used to redesign the most active Kemp eliminase, HG3.17, and five variants were generated and experimentally confirmed to afford higher catalytic efficiencies than that of HG3.17, with one double variant (D52Q/A53S) exhibiting a 55% increase. The hybrid computational enzyme design strategy is general and computationally economical, with which we anticipate the efficient creation of practical enzymes for industrial biocatalysis.
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