热稳定性
盐桥
分子动力学
脂肪酶
生物催化
蛋白质工程
酶
化学
材料科学
盐(化学)
催化作用
有机化学
生物化学
计算化学
离子液体
突变体
基因
作者
Haiyang Cui,Lobna Eltoukhy,Lingling Zhang,Ulrich Markel,Karl‐Erich Jaeger,Mehdi D. Davari,Ulrich Schwaneberg
标识
DOI:10.1002/anie.202101642
摘要
Abstract Biocatalysis for the synthesis of fine chemicals is highly attractive but usually requires organic (co‐)solvents (OSs). However, native enzymes often have low activity and resistance in OSs and at elevated temperatures. Herein, we report a smart salt bridge design strategy for simultaneously improving OS resistance and thermostability of the model enzyme, Bacillus subtilits Lipase A (BSLA). We combined comprehensive experimental studies of 3450 BSLA variants and molecular dynamics simulations of 36 systems. Iterative recombination of four beneficial substitutions yielded superior resistant variants with up to 7.6‐fold (D64K/D144K) improved resistance toward three OSs while exhibiting significant thermostability (thermal resistance up to 137‐fold, and half‐life up to 3.3‐fold). Molecular dynamics simulations revealed that locally refined flexibility and strengthened hydration jointly govern the highly increased resistance in OSs and at 50–100 °C. The salt bridge redesign provides protein engineers with a powerful and likely general approach to design OSs‐ and/or thermal‐resistant lipases and other α/β‐hydrolases.
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