Wei Xiuting, DeSnoo William, Li Zining, Ning Wenbo, Kong Wang-Yeuk, Nafie Jordan, Tantillo Dean J, Rudolf Jeffrey D
Department of Chemistry, University of Florida, Gainesville, Florida 32611-7011, United States.
Department of Chemistry, University of California-Davis, 1 Shields Ave., Davis, California 95616, United States.
J Am Chem Soc. 2025 May 14;147(19):16293-16300. doi: 10.1021/jacs.5c01828. Epub 2025 Apr 29.
The complexity and versatility of terpene cyclization reactions contribute to the wide variety of functions and properties that terpenoid compounds exhibit in nature. The management of reactive carbocations over the course of the reaction to ultimately arrive at a particular carbon fragment connectivity and stereochemistry is no small feat. Bacteria possess a variety of TSs that generate diverse polycyclic terpene skeletons; however, terpenoids in myxobacteria are especially rare. Here, we report the first mechanistic study of tetraisoquinene biosynthesis from TiqS, a diterpene synthase from . To understand formation of the unique 5/5/5/5-fused tetraisoquinane skeleton, we used the isolation and structural elucidation of nine minor metabolites, site-directed mutagenesis, stable isotope labeling experiments, and quantum chemical calculations to propose and support its mechanism. This study reveals a new mechanism of diterpene cyclization, expands our understanding of terpenoid biosynthesis, and enables the discovery of novel natural products in myxobacteria.
萜烯环化反应的复杂性和多样性导致萜类化合物在自然界中展现出各种各样的功能和特性。在反应过程中对活性碳正离子进行调控,最终形成特定的碳片段连接性和立体化学结构并非易事。细菌拥有多种能生成多样多环萜烯骨架的萜类合酶;然而,黏细菌中的萜类化合物尤为罕见。在此,我们报道了对来自[具体来源]的二萜合酶TiqS合成四异喹烯的首次机理研究。为了解独特的5/5/5/5稠合四异喹烷骨架的形成过程,我们通过分离和结构解析九种次要代谢产物、定点诱变、稳定同位素标记实验以及量子化学计算来提出并支持其反应机理。这项研究揭示了二萜环化的新机制,拓展了我们对萜类生物合成的理解,并有助于发现黏细菌中的新型天然产物。