热稳定性
化学
催化作用
合理设计
木聚糖酶
蛋白质工程
水解
催化效率
糖苷键
木糖
热稳定性
降级(电信)
糖苷水解酶
水解酶
酶
化学工程
组合化学
比活度
热稳定性
活动站点
有机化学
蛋白质稳定性
生化工程
生物化学
作者
Dongdong Mu,Dongxin Wang,Manuel Montalbán‐López,Xue-Feng Wu,Xingjiang Li
标识
DOI:10.1021/acs.jafc.5c09584
摘要
β-1,4-Xylanase is a key enzyme that hydrolyzes β-1,4 glycosidic bonds between xylose units. It is widely used in the degradation and conversion of lignocellulose. However, the thermal stability and catalytic activity of xylanase limit their industrial application. Therefore, in this study, we rationally and semirationally engineered the active site and flexible noncatalytic regions of a xylanase from Bacillus amyloliquefaciens BH072 and expressed it in Lactococcus lactis NZ9000. This approach successfully constructed the mutant Mut-1, which exhibited significantly enhanced catalytic activity and thermostability, improving its performance in industrial applications. The specific activity and optimal temperature of Mut-1 were 1929.30 U/mg and 65 °C, respectively, representing increases of 174.84% and 15 °C compared to the wild-type. Additionally, Mut-1 showed significantly enhanced catalytic activity at medium-to-high temperatures (70–90 °C).This study demonstrates that multistrategy collaborative engineering is an effective approach to optimize the thermal stability and catalytic activity of BaXynA.
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