Chen Dai, Lin-Lin Song, Lei Cui, Yu-Guo Zheng, Ya-Jun Wang, Jia-Xin Tian, Yu-Feng Chen, Yue-Han Ni, Hai-Xing Cao, Shen-Yuan Xu
Journal: Biotechnology journal 2024;19(3):e2300637
PMID: 38472092
The aldo-keto reductase (AKR) KdAKR from Kluyvermyces dobzhanskii can reduce t-butyl 6-chloro-(5S)-hydroxy-3-oxohexanoate ((5S)-CHOH) to t-butyl 6-chloro-(3R,5S)-dihydroxyhexanoate ((3R,5S)-CDHH), which is the key chiral intermediate of rosuvastatin. Herein, a computer-aided design that combined the use of PROSS platform and consensus design was employed to improve the stability of a previously constructed mutant KdAKR . Experimental verification revealed that S196C, T232A, V264I and V45L produced improved thermostability and activity. The "best" mutant KdAKR (KdAKR -S196C/T232A/V264I/V45L) was constructed by combining the four beneficial mutations, which displayed enhanced thermostability. Its T and T values were increased by 10.2 and 10.0°C, respectively, and half-life (t ) at 40°C was increased by 17.6 h. Additionally, KdAKR demonstrated improved resistance to organic solvents compared to that of KdAKR . Structural analysis revealed that the increased number of hydrogen bonds and stabilized hydrophobic core contributed to the rigidity of KdAKR , thus improving its stability. The results validated the feasibility of the computer-aided design strategy in improving the stability of AKRs.
© 2024 Wiley-VCH GmbH.
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