Key Laboratory of Bioorganic Synthesis of Zhejiang Province, Zhejiang University of Technology, Hangzhou, China.
Engineering Research Center of Bioconversion and Biopurification of the Ministry of Education, Zhejiang University of Technology, Hangzhou, Zhejiang, China.
Biotechnol Bioeng. 2024 May;121(5):1532-1542. doi: 10.1002/bit.28662. Epub 2024 Jan 24.
Carbonyl reductases are useful for producing optically active alcohols from their corresponding prochiral ketones. Herein, we applied a computer-assisted strategy to increase the thermostability of a previously constructed carbonyl reductase, LsCR (N101D/A117G/F147L/E145A), which showed an outstanding activity in the synthesis of the ticagrelor precursor (1S)-2-chloro-1-(3,4-difluorophenyl)ethanol. The stability changes introduced by mutations at the flexible sites were predicted using the computational tools FoldX, I-Mutant 3.0, and DeepDDG, which demonstrated that 12 virtually screened mutants could be thermally stable; 11 of these mutants exhibited increased thermostability. Then a superior mutant LsCR-V99L/D150F was screened out from the library that was constructed by iteratively combining the beneficial sites, which showed a 78% increase in activity and a 17.4°C increase in melting temperature compared to LsCR. Our computer-assisted design and combinatorial strategy dramatically increased the efficiency of thermostable enzyme production.
羰基还原酶可用于将相应的前手性酮转化为光学活性醇。在此,我们应用计算机辅助策略提高了先前构建的羰基还原酶 LsCR(N101D/A117G/F147L/E145A)的热稳定性,该酶在替格瑞洛前体(1S)-2-氯-1-(3,4-二氟苯基)乙醇的合成中表现出出色的活性。使用 FoldX、I-Mutant 3.0 和 DeepDDG 等计算工具预测了在柔性位点突变引起的稳定性变化,结果表明,12 个虚拟筛选的突变体可能具有热稳定性;其中 11 个突变体表现出更高的热稳定性。然后从通过反复组合有利位点构建的文库中筛选出了一个优异的突变体 LsCR-V99L/D150F,与 LsCR 相比,该突变体的活性提高了 78%,熔点提高了 17.4°C。我们的计算机辅助设计和组合策略极大地提高了耐热酶生产的效率。