热稳定性
突变体
丝氨酸蛋白酶
蛋白质工程
合理设计
丝氨酸
化学
热稳定性
突变
定点突变
分子动力学
催化效率
酶
蛋白酶
催化作用
对接(动物)
酶动力学
生物化学
立体化学
活动站点
计算化学
生物
有机化学
遗传学
护理部
基因
医学
作者
Naeem Mahmood Ashraf,Akshaya Krishnagopal,Aadil Hussain,David W. Kastner,Ahmed M. Sayed,Yu Keung Mok,Kunchithapadam Swaminathan,Nadia Zeeshan
标识
DOI:10.1016/j.ijbiomac.2018.12.218
摘要
The study involves the isolation and characterization of a serine peptidase, named SP, from Pseudomonas aeruginosa. In addition to basic characterization, the protein was engineered, by site-directed mutagenesis of selected non-catalytic residues, to increase its thermal stability and catalytic activity. Among the eight-point mutations, predicted by FireProt, two mutants, A29G and V336I, yielded a positive impact. The Tm of A29G and V336I showed an increase by 5 °C and also a substantial increase in residual activity of the enzyme at elevated temperature. Moreover, the catalytic activity of A29G and V336I also showed an increase of 1.4-fold activity, compared to the wild-type (WT). Moreover, molecular docking simulations also predicted better substrate affinity of the mutants. We have also performed molecular dynamics (MD) simulations at 315 and 345 K, and the MD data at 345 K demonstrates improved thermostability for the mutants, compared to the WT. Our findings not only contribute to a better understanding of the structure-stability-activity relationship of SP but also highlights, that modification of non-catalytic residues could also promote favourable catalytic behaviour.
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