α-Ketoglutarate (α-KG)-dependent nonheme iron enzymes catalyze a diverse array of oxidative transformations essential for natural product biosynthesis. However, the mechanism by which α-KG/Fe-dependent halogenases achieve selective halogenation while circumventing the thermodynamically favored hydroxylation pathway remains a subject of intense debate. In this study, we elucidate the halogenation mechanism in SyrB2 through extensive computational and crystallographic investigations. Our work reveals that metal coordination dynamics plays a pivotal role in controlling selective C─H bond activation and chlorination in SyrB2. The transformation of the Fe(IV)-oxo species from an equatorial to an axial conformation enables hydrogen atom transfer from the substrate C─H bond. Subsequent re-isomerization of the Fe(III)-OH intermediate to the equatorial conformation is critical for promoting selective chlorination while minimizing competitive hydroxylation. The proposed mechanism is supported by multiple experimental observations, including Mössbauer spectroscopy, nuclear resonance vibrational spectroscopy (NRVS), 2H-HYSCORE spectroscopy, and kinetic analysis of reactions with various substrates.
Wenli Yuan, Jia-Yong Huang, Jia Liu et al.· Angewandte Chemie· 0 citations
It is demonstrated that the cytochrome P450 monooxygenase CyaI catalyzes an oxidation reaction through a zwitterionic intermediate and facilitates a subsequent unusual C→N acetyl migration, which triggers a spontaneous intramolecular cyclization to forge the imidazolidin-4-one ring during 1 biosynthesis.
This work presents an integrated framework that combines molecular dynamics-derived descriptors with the zero-shot prediction model GEMS to identify beneficial distal mutations, offering an efficient and generalizable strategy for enzyme engineering.
Yi-Qiu Wang, Ding Luo, Shuming Cheng et al.· Journal of Chemical Theory a...· 0 citations
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