基质(水族馆)
蛋白质工程
酶
突变体
烟酰胺磷酸核糖转移酶
化学
烟酰胺单核苷酸
生物催化
生物化学
对偶(语法数字)
酶分析
生物物理学
NAD+激酶
组合化学
生物
催化作用
烟酰胺腺嘌呤二核苷酸
反应机理
艺术
文学类
生态学
基因
作者
Feng Peng,Qi Shen,Lu‐Ping Zou,Feng Cheng,Ya‐Ping Xue,Yu‐Guo Zheng
标识
DOI:10.1021/acs.jafc.4c02698
摘要
The nicotinamide phosphoribosyltransferase (NAMPT)-catalyzed substitution reaction plays a pivotal role in the biosynthesis of nucleotide compounds. However, industrial applications are hindered by the low activity of NAMPTs. In this study, a novel dual-channel protein engineering strategy was developed to increase NAMPT activity by enhancing substrate accessibility. The best mutant (CpNAMPTY13G+Y15S+F76P) with a remarkable 5-fold increase in enzyme activity was obtained. By utilizing CpNAMPTY13G+Y15S+F76P as a biocatalyst, the accumulation of β-nicotinamide mononucleotide reached as high as 19.94 g L–1 within 3 h with an impressive substrate conversion rate of 99.8%. Further analysis revealed that the newly generated substrate channel, formed through crack propagation, facilitated substrate binding and enhanced byproduct tolerance. In addition, three NAMPTs from different sources were designed based on the dual-channel protein engineering strategy, and the corresponding dual-channel mutants with improved enzyme activity were obtained, which proved the effectiveness and practicability of the approach.
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