The genomic and enzymatic basis for iridoid biosynthesis in cat thyme (Teucrium marum)

Author:

Smit Samuel J.1ORCID,Ayten Sefa2,Radzikowska Barbara A.13,Hamilton John P.45,Langer Swen6,Unsworth William P.3,Larson Tony R.6,Buell C. Robin245,Lichman Benjamin R.1ORCID

Affiliation:

1. Centre for Novel Agricultural Products, Department of Biology University of York York YO10 5DD UK

2. Institute of Plant Breeding, Genetics, & Genomics University of Georgia Athens Georgia 30602 USA

3. Department of Chemistry University of York York YO10 5DD UK

4. Center for Applied Genetic Technologies University of Georgia Athens Georgia 30602 USA

5. Department of Crop & Soil Sciences University of Georgia Athens Georgia 30602 USA

6. Bioscience Technology Facility, Department of Biology University of York York YO10 5DD UK

Abstract

SUMMARYIridoids are non‐canonical monoterpenoids produced by both insects and plants. An example is the cat‐attracting and insect‐repelling volatile iridoid nepetalactone, produced by Nepeta sp. (catmint) and aphids. Recently, both nepetalactone biosynthetic pathways were elucidated, showing a remarkable convergent evolution. The iridoid, dolichodial, produced by Teucrium marum (cat thyme) and multiple insect species, has highly similar properties to nepetalactone but its biosynthetic origin remains unknown. We set out to determine the genomic, enzymatic, and evolutionary basis of iridoid biosynthesis in T. marum. First, we generated a de novo chromosome‐scale genome assembly for T. marum using Oxford Nanopore Technologies long reads and proximity‐by‐ligation Hi‐C reads. The 610.3 Mb assembly spans 15 pseudomolecules with a 32.9 Mb N50 scaffold size. This enabled identification of iridoid biosynthetic genes, whose roles were verified via activity assays. Phylogenomic analysis revealed that the evolutionary history of T. marum iridoid synthase, the iridoid scaffold‐forming enzyme, is not orthologous to typical iridoid synthases but is derived from its conserved paralog. We discovered an enzymatic route from nepetalactol to diverse iridoids through the coupled activity of an iridoid oxidase cytochrome P450 and acetyltransferases, via an inferred acylated intermediate. This work provides a genomic resource for specialized metabolite research in mints and demonstration of the role of acetylation in T. marum iridoid diversity. This work will enable future biocatalytic or biosynthetic production of potent insect repellents, as well as comparative studies into iridoid biosynthesis in insects.

Funder

UK Research and Innovation

Georgia Research Alliance

University of Georgia

Biotechnology and Biological Sciences Research Council

Michigan State University

Publisher

Wiley

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