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The structure of (E)-biformene synthase provides insights into the biosynthesis of bacterial bicyclic labdane-related diterpenoids.

Authors :
Centeno-Leija S
Tapia-Cabrera S
Guzmán-Trampe S
Esquivel B
Esturau-Escofet N
Tierrafría VH
Rodríguez-Sanoja R
Zárate-Romero A
Stojanoff V
Rudiño-Piñera E
Sánchez S
Serrano-Posada H
Source :
Journal of structural biology [J Struct Biol] 2019 Jul 01; Vol. 207 (1), pp. 29-39. Date of Electronic Publication: 2019 Apr 11.
Publication Year :
2019

Abstract

The labdane-related diterpenoids (LRDs) are a large group of natural products with a broad range of biological activities. They are synthesized through two consecutive reactions catalyzed by class II and I diterpene synthases (DTSs). The structural complexity of LRDs mainly depends on the catalytic activity of class I DTSs, which catalyze the formation of bicyclic to pentacyclic LRDs, using as a substrate the catalytic product of class II DTSs. To date, the structural and mechanistic details for the biosynthesis of bicyclic LRDs skeletons catalyzed by class I DTSs remain unclear. This work presents the first X-ray crystal structure of an (E)-biformene synthase, LrdC, from the soil bacterium Streptomyces sp. strain K155. LrdC was identified as a part of an LRD cluster of five genes and was found to be a class I DTS that catalyzes the Mg <superscript>2+</superscript> -dependent synthesis of bicyclic LRD (E)-biformene by the dephosphorylation and rearrangement of normal copalyl pyrophosphate (CPP). Structural analysis of LrdC coupled with docking studies suggests that Phe189 prevents cyclization beyond the bicyclic LRD product through a strong stabilization of the allylic carbocation intermediate, while Tyr317 functions as a general base catalyst to deprotonate the CPP substrate. Structural comparisons of LrdC with homology models of bacterial bicyclic LRD-forming enzymes (CldD, RmnD and SclSS), as well as with the crystallographic structure of bacterial tetracyclic LRD ent-kaurene synthase (BjKS), provide further structural insights into the biosynthesis of bacterial LRD natural products.<br /> (Copyright © 2019 Elsevier Inc. All rights reserved.)

Details

Language :
English
ISSN :
1095-8657
Volume :
207
Issue :
1
Database :
MEDLINE
Journal :
Journal of structural biology
Publication Type :
Academic Journal
Accession number :
30981884
Full Text :
https://doi.org/10.1016/j.jsb.2019.04.010