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  4. An effective computational-screening strategy for simultaneously improving both catalytic activity and thermostability of α-l-rhamnosidase
 
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An effective computational-screening strategy for simultaneously improving both catalytic activity and thermostability of α-l-rhamnosidase

Journal
Biotechnology and Bioengineering
Journal Volume
118
Journal Issue
9
Pages
3409 - 3419
Date Issued
2021
Author(s)
Li, Lijun
Li, Wenjing
Gong, Jianye
Xu, Yanyan
Wu, Zheyu
Jiang, Zedong
YI-SHENG CHENG  
Li, Qingbiao
Ni, Hui
DOI
10.1002/bit.27758
URI
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85103421038&doi=10.1002%2fbit.27758&partnerID=40&md5=29a77405aac0db1de7b4510c34610fc6
https://scholars.lib.ntu.edu.tw/handle/123456789/573334
Abstract
Catalytic efficiency and thermostability are the two most important characteristics of enzymes. However, it is always tough to improve both catalytic efficiency and thermostability of enzymes simultaneously. In the present study, a computational strategy with double-screening steps was proposed to simultaneously improve both catalysis efficiency and thermostability of enzymes; and a fungal α-l-rhamnosidase was used to validate the strategy. As the result, by molecular docking and sequence alignment analysis within the binding pocket, seven mutant candidates were predicted with better catalytic efficiency. By energy variety analysis, A355N, S356Y, and D525N among the seven mutant candidates were predicted with better thermostability. The expression and characterization results showed the mutant D525N had significant improvements in both enzyme activity and thermostability. Molecular dynamics simulations indicated that the mutations located within the 5 ? range of the catalytic domain, which could improve root mean squared deviation, electrostatic, Van der Waal interaction, and polar salvation values, and formed water bridge between the substrate and the enzyme. The study indicated that the computational strategy based on the binding energy, conservation degree and mutation energy analyses was effective to develop enzymes with better catalysis and thermostability, providing practical approach for developing industrial enzymes. ? 2021 Wiley Periodicals LLC
Subjects
Binding energy; Catalysis; Enzyme activity; Molecular dynamics; Stability; Catalytic efficiencies; Computational strategy; Industrial enzymes; Molecular dynamics simulations; Root mean squared deviations; Screening strategy; Sequence alignments; Van der Waal interactions; Catalyst activity
Type
journal article

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