An Independent Evolutionary Origin for Insect Deterrent Cucurbitacins in Iberis amara

Author:

Dong Lemeng12ORCID,Almeida Aldo1,Pollier Jacob34,Khakimov Bekzod5,Bassard Jean-Etienne1,Miettinen Karel34,Stærk Dan6,Mehran Rahimi2,Olsen Carl Erik1,Motawia Mohammed Saddik1,Goossens Alain34,Bak Søren1

Affiliation:

1. Department of Plant and Environmental Science, University of Copenhagen, Frederiksberg C, Denmark

2. Plant Hormone Biology Group, Swammerdam Institute for Life Science, University of Amsterdam, Amsterdam, The Netherlands

3. Department of Plant Biotechnology and Bioinformatics, Ghent University, Ghent, Belgium

4. VIB Center for Plant Systems Biology, Ghent, Belgium

5. Department of Food Science, University of Copenhagen, Frederiksberg C, Denmark

6. Department of Drug Design and Pharmacology, Faculty of Health and Medical Sciences, University of Copenhagen, Copenhagen, Denmark

Abstract

Abstract Pieris rapae and Phyllotreta nemorum are Brassicaceae specialists, but do not feed on Iberis amara spp. that contain cucurbitacins. The cucurbitacins are highly oxygenated triterpenoid, occurring widespread in cucurbitaceous species and in a few other plant families. Using de novo assembled transcriptomics from I. amara, gene co-expression analysis and comparative genomics, we unraveled the evolutionary origin of the insect deterrent cucurbitacins in I. amara. Phylogenetic analysis of five oxidosqualene cyclases and heterologous expression allowed us to identify the first committed enzyme in cucurbitacin biosynthesis in I. amara, cucurbitadienol synthase (IaCPQ). In addition, two species-specific cytochrome P450s (CYP708A16 and CYP708A15) were identified that catalyze the unique C16 and C22 hydroxylation of the cucurbitadienol backbone, enzymatic steps that have not been reported before. Furthermore, the draft genome assembly of I. amara showed that the IaCPQ was localized to the same scaffold together with CYP708A15 but spanning over 100 kb, this contrasts with the highly organized cucurbitacin gene cluster in the cucurbits. These results reveal that cucurbitacin biosynthesis has evolved convergently via different biosynthetic routes in different families rather than through divergence from an ancestral pathway. This study thus provides new insight into the mechanism of recurrent evolution and diversification of a plant defensive chemical.

Funder

European Union Seventh Framework Programme

Research Foundation Flanders for a postdoctoral fellowship

Independent Research Fund Denmark

The Novo Nordisk Foundation

Publisher

Oxford University Press (OUP)

Subject

Genetics,Molecular Biology,Ecology, Evolution, Behavior and Systematics

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