热稳定性
合理设计
蛋白质工程
盐桥
定向进化
酶
疏水效应
化学
组合化学
突变体
材料科学
生物化学
纳米技术
基因
作者
Nima Ghahremani Nezhad,Raja Noor Zaliha Raja Abd Rahman,Yahaya M. Normi,Siti Nurbaya Oslan,Fairolniza Mohd Shariff,Thean Chor Leow
标识
DOI:10.1007/s00253-022-12067-x
摘要
Thermostability is an essential requirement of enzymes in the industrial processes to catalyze the reactions at high temperatures; thus, enzyme engineering through directed evolution, semi-rational design and rational design are commonly employed to construct desired thermostable mutants. Several strategies are implemented to fulfill enzymes' thermostability demand including decreasing the entropy of the unfolded state through substitutions Gly → Xxx or Xxx → Pro, hydrogen bond, salt bridge, introducing two different simultaneous interactions through single mutant, hydrophobic interaction, filling the hydrophobic cavity core, decreasing surface hydrophobicity, truncating loop, aromatic-aromatic interaction and introducing positively charged residues to enzyme surface. In the current review, horizons about compatibility between secondary structures and substitutions at preferable structural positions to generate the most desirable thermostability in industrial enzymes are broadened. KEY POINTS: • Protein engineering is a powerful tool for generating thermostable industrial enzymes. • Directed evolution and rational design are practical approaches in enzyme engineering. • Substitutions in preferable structural positions can increase thermostability.
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