Xu Baofu, Li Zining, Alsup Tyler A, Ehrenberger Michelle A, Rudolf Jeffrey D
Department of Chemistry, University of Florida, Gainesville, FL, USA.
ACS Catal. 2021 May 21;11(10):5906-5915. doi: 10.1021/acscatal.1c01113. Epub 2021 Apr 29.
The biosynthesis of terpenoid natural products begins with a carbocation-based cyclization or prenylation reaction. While these reactions are mechanistically similar, there are several families of enzymes, namely terpene synthases and prenyltransferases, that have evolved to specifically catalyze terpene cyclization or prenylation reactions. Here, we report that bacterial diterpene synthases, enzymes that are traditionally considered to be specific for cyclization, are capable of efficiently catalyzing both diterpene cyclization and the prenylation of small molecules. We investigated this unique dual reactivity of terpene synthases through a series of kinetic, biocatalytic, structural, and bioinformatics studies. Overall, this study unveils the ability of terpene synthases to catalyze -, -, -, and -prenylation on small molecules, proposes a substrate decoy mechanism for prenylation by terpene synthases, supports the physiological relevance of terpene synthase-catalyzed prenylation in vivo, and addresses questions regarding the evolution of prenylation function and its potential role in natural products biosynthesis.
萜类天然产物的生物合成始于基于碳正离子的环化或异戊烯基化反应。虽然这些反应在机理上相似,但有几个酶家族,即萜烯合酶和异戊烯基转移酶,已经进化到专门催化萜烯环化或异戊烯基化反应。在此,我们报道细菌二萜合酶,传统上被认为是特异性环化的酶,能够有效催化二萜环化和小分子的异戊烯基化。我们通过一系列动力学、生物催化、结构和生物信息学研究,研究了萜烯合酶这种独特的双重反应性。总体而言,本研究揭示了萜烯合酶催化小分子的 -、-、- 和 - 异戊烯基化的能力,提出了萜烯合酶异戊烯基化的底物诱饵机制,支持了萜烯合酶催化的异戊烯基化在体内的生理相关性,并解决了有关异戊烯基化功能的进化及其在天然产物生物合成中的潜在作用的问题。