Pathogen-induced biosynthetic pathways encode defense-related molecules in bread wheat

Author:

Polturak Guy1ORCID,Dippe Martin1,Stephenson Michael J.1,Chandra Misra Rajesh1ORCID,Owen Charlotte1,Ramirez-Gonzalez Ricardo H.2ORCID,Haidoulis John F.2ORCID,Schoonbeek Henk-Jan2ORCID,Chartrain Laetitia2,Borrill Philippa1ORCID,Nelson David R.3,Brown James K.M.2ORCID,Nicholson Paul2,Uauy Cristobal2ORCID,Osbourn Anne1

Affiliation:

1. Department of Biochemistry and Metabolism, John Innes Centre, Norwich NR4 7UH, United Kingdom

2. Department of Crop Genetics, John Innes Centre, Norwich NR4 7UH, United Kingdom

3. Department of Microbiology, Immunology and Biochemistry, University of Tennessee Health Science Center, Memphis, TN 38163

Abstract

Wheat is a widely grown food crop that suffers major yield losses due to attack by pests and pathogens. A better understanding of biotic stress responses in wheat is thus of major importance. The recently assembled bread wheat genome coupled with extensive transcriptomic resources provides unprecedented new opportunities to investigate responses to pathogen challenge. Here, we analyze gene coexpression networks to identify modules showing consistent induction in response to pathogen exposure. Within the top pathogen-induced modules, we identify multiple clusters of physically adjacent genes that correspond to six pathogen-induced biosynthetic pathways that share a common regulatory network. Functional analysis reveals that these pathways, all of which are encoded by biosynthetic gene clusters, produce various different classes of compounds—namely, flavonoids, diterpenes, and triterpenes, including the defense-related compound ellarinacin. Through comparative genomics, we also identify associations with the known rice phytoalexins momilactones, as well as with a defense-related gene cluster in the grass model plant Brachypodium distachyon . Our results significantly advance the understanding of chemical defenses in wheat and open up avenues for enhancing disease resistance in this agriculturally important crop. They also exemplify the power of transcriptional networks to discover the biosynthesis of chemical defenses in plants with large, complex genomes.

Funder

Royal Society

European Commission

RCUK | Biotechnology and Biological Sciences Research Council

Publisher

Proceedings of the National Academy of Sciences

Subject

Multidisciplinary

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