劈理(地质)
化学
重编程
过渡(遗传学)
酶
氧化酶试验
生物化学
生物
断裂(地质)
基因
古生物学
细胞
作者
Yaoyun Wu,Yaozhong Cui,Wei Song,Wanqing Wei,Zhizhen He,Jinyang Tao,Dejing Yin,Xiulai Chen,Cong Gao,Jia Liu,Li Liu,Jing Wu
出处
期刊:JACS Au
[American Chemical Society]
日期:2024-01-16
卷期号:4 (2): 557-569
被引量:6
标识
DOI:10.1021/jacsau.3c00672
摘要
l-Amino acid oxidase (LAAO) is an important biocatalyst used for synthesizing α-keto acids. LAAO from Rhodococcus opacus (RoLAAO) has a broad substrate spectrum; however, its low total turnover number limits its industrial use. To overcome this, we aimed to employ crystal structure-guided density functional theory calculations and molecular dynamic simulations to investigate the catalytic mechanism. Two key steps were identified: S → [TS1] in step 1 and Int1 → [TS2] in step 2. We reprogrammed the transition states [TS1] and [TS2] to reduce the identified energy barrier and obtain a RoLAAO variant capable of catalyzing 19 kinds of l-amino acids to the corresponding high-value α-keto acids with a high total turnover number, yield (≥95.1 g/L), conversion rate (≥95%), and space-time yields ≥142.7 g/L/d in 12-24 h, in a 5 L reactor. Our results indicated the promising potential of the developed RoLAAO variant for use in the industrial production of α-keto acids while providing a potential catalytic-mechanism-guided protein design strategy to achieve the desired physical and catalytic properties of enzymes.
科研通智能强力驱动
Strongly Powered by AbleSci AI