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Uncoupled activation and cyclization in catmint reductive terpenoid biosynthesis.


ABSTRACT: Terpene synthases typically form complex molecular scaffolds by concerted activation and cyclization of linear starting materials in a single enzyme active site. Here we show that iridoid synthase, an atypical reductive terpene synthase, catalyzes the activation of its substrate 8-oxogeranial into a reactive enol intermediate, but does not catalyze the subsequent cyclization into nepetalactol. This discovery led us to identify a class of nepetalactol-related short-chain dehydrogenase enzymes (NEPS) from catmint (Nepeta mussinii) that capture this reactive intermediate and catalyze the stereoselective cyclisation into distinct nepetalactol stereoisomers. Subsequent oxidation of nepetalactols by NEPS1 provides nepetalactones, metabolites that are well known for both insect-repellent activity and euphoric effects in cats. Structural characterization of the NEPS3 cyclase reveals that it binds to NAD+ yet does not utilize it chemically for a non-oxidoreductive formal [4?+?2] cyclization. These discoveries will complement metabolic reconstructions of iridoid and monoterpene indole alkaloid biosynthesis.

SUBMITTER: Lichman BR 

PROVIDER: S-EPMC6513753 | biostudies-literature | 2019 Jan

REPOSITORIES: biostudies-literature

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Uncoupled activation and cyclization in catmint reductive terpenoid biosynthesis.

Lichman Benjamin R BR   Kamileen Mohamed O MO   Titchiner Gabriel R GR   Saalbach Gerhard G   Stevenson Clare E M CEM   Lawson David M DM   O'Connor Sarah E SE  

Nature chemical biology 20181210 1


Terpene synthases typically form complex molecular scaffolds by concerted activation and cyclization of linear starting materials in a single enzyme active site. Here we show that iridoid synthase, an atypical reductive terpene synthase, catalyzes the activation of its substrate 8-oxogeranial into a reactive enol intermediate, but does not catalyze the subsequent cyclization into nepetalactol. This discovery led us to identify a class of nepetalactol-related short-chain dehydrogenase enzymes (NE  ...[more]

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