Mao Runze, Gao Shilong, Qin Zi-Yang, Rogge Torben, Wu Sophia J, Li Zi-Qi, Das Anuvab, Houk K N, Arnold Frances H
Division of Chemistry and Chemical Engineering, California Institute of Technology Pasadena, California 91125, United States.
Department of Chemistry and Biochemistry, University of California, Los Angeles, California 90095, United States.
Nat Catal. 2024 May;7(5):585-592. doi: 10.1038/s41929-024-01149-w. Epub 2024 May 3.
Intermolecular functionalization of tertiary C-H bonds to construct fully substituted stereogenic carbon centers represents a formidable challenge: without the assistance of directing groups, state-of-the-art catalysts struggle to introduce chirality to racemic tertiary s -carbon centers. Direct asymmetric functionalization of such centers is a worthy reactivity and selectivity goal for modern biocatalysis. Here we present an engineered nitrene transferase (P411-TEA-5274), derived from a bacterial cytochrome P450, that is capable of aminating tertiary C-H bonds to provide chiral -tertiary primary amines with high efficiency (up to 2300 total turnovers) and selectivity (up to >99% enantiomeric excess (e.e.)). The construction of fully substituted stereocenters with methyl and ethyl groups underscores the enzyme's remarkable selectivity. A comprehensive substrate scope study demonstrates the biocatalyst's compatibility with diverse functional groups and tertiary C-H bonds. Mechanistic studies elucidate how active-site residues distinguish between the enantiomers and enable the enzyme to perform this transformation with excellent enantioselectivity.
在没有导向基团协助的情况下,最先进的催化剂难以将手性引入外消旋叔碳中心。这种中心的直接不对称功能化是现代生物催化中一个有价值的反应性和选择性目标。在这里,我们展示了一种从细菌细胞色素P450衍生而来的工程化氮烯转移酶(P411-TEA-5274),它能够将叔碳氢键胺化,高效地(高达2300次总周转数)提供手性叔伯胺,且选择性高(对映体过量率高达>99%)。用甲基和乙基构建全取代的立体中心突出了该酶卓越的选择性。全面的底物范围研究表明了这种生物催化剂与多种官能团和叔碳氢键的兼容性。机理研究阐明了活性位点残基如何区分对映体,并使该酶能够以优异的对映选择性进行这种转化。