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Unraveling the Catalytic Promiscuity Mechanism of Triterpene Synthase AaOSC-22030 via Multiscale QM/MM Simulations and Mutagenesis.

PubMed
Authors: Liu C, Liang S, Jiao J, Li B, Jian Y, Chen Y, Wang F, Liang J, Duan L, Zhang F

Year

2026

Paper ID

75849

Status

Peer-reviewed

Abstract Read

~2 min

Abstract Words

149

Citations

N/A

Abstract

The triterpene synthase AaOSC-22030 from Artemisia argyi exhibits remarkable catalytic promiscuity, converting 2,3-oxidosqualene into diverse triterpenoid skeletons. In this study, we employed multiscale molecular dynamics, static QM/MM calculations, and site-directed mutagenesis to elucidate the origins of this diversity. Our analysis identifies residue 728 as a pivotal determinant. We reveal that the substitution of a conserved aromatic residue with a polar serine (S728) creates a relaxed steric environment, permitting broad conformational exploration, while simultaneously serving as a general base to intercept intermediates. Strikingly, the S728Y mutation transformed the promiscuous enzyme into a specific synthase, yielding Dammarendiol II as the exclusive product. Furthermore, the E371A mutant demonstrated that the N369/E371 dyad independently controls the terminal hydration of pentacyclic products. These findings highlight that cyclization and quenching are governed by distinct active site residues, providing a rational strategy for the functional reshaping of triterpene synthases with customized product profiles.

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  • The triterpene synthase AaOSC-22030 from Artemisia argyi exhibits remarkable catalytic promiscuity, converting 2,3-oxidosqualene into diverse triterpenoid skeletons.

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