This work identifies the biosynthetic gene cluster responsible for crinipellin production and establishes CriF as the key diterpene synthase mediating the formation of the characteristic skeleton, providing the first comprehensive insights into crinipellin biosynthesis.
Abstract
Crinipellins are a unique class of natural products distinguished by an unusual 5/5/5/5 tetracyclic skeleton. While the chemical synthesis of several crinipellin diterpenoids has been accomplished, the biochemical and genetic basis underlying their biosynthesis remains elusive. Here, we identify the biosynthetic gene cluster responsible for crinipellin production and establish CriF as the key diterpene synthase mediating the formation of the characteristic skeleton. Computational simulations and site-directed mutagenesis revealed critical amino acid residues governing the carbocation-driven cascade cyclization, enabling the identification of seven additional diterpene products in CriF mutants. Furthermore, isotopic labeling experiments combined with the hybrid quantum mechanical/molecular mechanical (QM/MM) calculations elucidated the cyclization mechanism of CriF. These findings provide the first comprehensive insights into crinipellin biosynthesis, laying the groundwork for future pathway elucidation and engineering of these complex diterpenoids.
Crinipellins are a distinctive family of 5/5/5/5 tetracyclic diterpenoids previously reported exclusively from mushrooms of the genus Crinipellis. Despite extensive synthetic studies, the biosynthetic machinery responsible for crinipellin formation has remained elusive. Here, we identify the crinipellin biosynthetic ge...
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