DNA洗牌
定向进化
酶动力学
突变体
酶
大肠杆菌
生物化学
氨基酸
基质(水族馆)
蛋白质工程
底物特异性
生物
定向分子进化
化学
立体化学
活动站点
基因
生态学
作者
Takayuki Yano,Shinya Oue,Hiroyuki Kagamiyama
标识
DOI:10.1073/pnas.95.10.5511
摘要
The substrate specificity of aspartate aminotransferase was successfully modified by directed molecular evolution using a combination of DNA shuffling and selection in an auxotrophic Escherichia coli strain. After five rounds of selection, one of the evolved mutants showed a 10(5)-fold increase in the catalytic efficiency (kcat/Km) for beta-branched amino and 2-oxo acids and a 30-fold decrease in that for the native substrates compared with the wild-type enzyme. The mutant had 13 amino acid substitutions, 6 of which contributed 80-90% to the total effect. Five of these six substitutions were conserved among the five mutants that showed the highest activity for beta-branched substrates. Interestingly, only one of the six functionally important residues is located within a distance of direct interaction with the substrate, supporting the idea that rational design of the substrate specificity of an enzyme is very difficult. The present results show that directed molecular evolution is a powerful technique for enzyme redesign if an adequate selection system is applied.
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