Key Laboratory of Molecular Enzymology and Engineering of Ministry of Education, School of Life Sciences, Jilin University, Changchun 130023, PR China.
Key Laboratory of Molecular Enzymology and Engineering of Ministry of Education, School of Life Sciences, Jilin University, Changchun 130023, PR China.
Int J Biol Macromol. 2024 Oct;278(Pt 2):134756. doi: 10.1016/j.ijbiomac.2024.134756. Epub 2024 Aug 13.
An attractive strategy for efficiently forming CS bonds is through the use of diazo compounds SH insertion. However, achieving good enantioselective control in this reaction within a biocatalytic system has proven to be challenging. This study aimed to enhance the activity and enantioselectivity of to enable asymmetric SH insertion. The researchers conducted site-saturation mutagenesis (SSM) on 5 amino acid residues located around the iron carbenoid intermediate within a distance of 5 Å, followed by iterative saturation mutagenesis (ISM) of beneficial mutants. Through this process, the beneficial variant VHb(P54R/V98W) was identified through screening with 4-(methylmercapto) phenol as the substrate. This variant exhibited up to 4-fold higher catalytic efficiency and 6-fold higher enantioselectivity compared to the wild-type VHb. Computational studies were also conducted to elucidate the detailed mechanism of this asymmetric SH insertion, explaining how active-site residues accelerate this transformation and provide stereocontrol.
通过重氮化合物的插入反应来高效形成 CS 键是一种很有吸引力的策略。然而,在生物催化体系中实现该反应的良好对映选择性控制一直具有挑战性。本研究旨在提高的活性和对映选择性,以实现不对称的插入反应。研究人员对距离铁碳烯中间体 5Å 范围内的 5 个氨基酸残基进行了定点饱和突变(SSM),然后对有益突变体进行了迭代饱和突变(ISM)。通过筛选,以 4-(甲基巯基)苯酚作为底物,确定了有益的变体 VHb(P54R/V98W)。与野生型 VHb 相比,该变体的催化效率提高了 4 倍,对映选择性提高了 6 倍。还进行了计算研究来阐明这种不对称插入反应的详细机制,解释了活性位点残基如何加速这种转化并提供立体控制。