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A Customizable Approach for the Enzymatic Production and Purification of Diterpenoid Natural Products
Published on: October 4, 2019
Local Active-Site Architecture Directs Divergent Carbocation Cascades in Sesterterpene Synthases
Philip Troycke1, Heng Li2, Kexin Yang2
1Center for Protein Assemblies, Department of Bioscience, School of Natural Sciences, Technical University Munich, 85748Garching, Germany.
Abstract:
Type I terpene synthases generate complex polycyclic scaffolds through carbocation cascades. However, how closely related enzymes convert a common C25 precursor to distinct sesterterpene frameworks remains unresolved. Here, we combine high-resolution crystal structures with systematic mutagenesis of four bacterial sesterterpene synthases to define the structural basis for pathway divergence. These analyses show how local active-site interactions within a conserved fold redirect carbocation trajectories and thereby control product formation. The structures reveal a preorganized binding mode that positions the substrate in a product-like conformation and directs the cyclization cascade. Comparative structural analyses further support distinct carbocation trajectories involving either centralized cation hubs or sequential rearrangement pathways with the exact pathway being enzyme-dependent. Structure-guided mutagenesis targets these features, alters product profiles, and enables the formation of new terpene scaffolds. Together, crystallographic data and mutagenesis demonstrate that closely related enzymes with the same overall fold can follow distinct carbocation trajectories and reveal how local architectural changes control the cyclization outcome.
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