Hydroxynitrile lyase defends Arabidopsis against Tetranychus urticae

Author:

Arnaiz Ana1ORCID,Santamaria M Estrella1ORCID,Rosa-Diaz Irene1ORCID,Garcia Irene2,Dixit Sameer3ORCID,Vallejos Saul4ORCID,Gotor Cecilia2ORCID,Martinez Manuel15ORCID,Grbic Vojislava3ORCID,Diaz Isabel15ORCID

Affiliation:

1. Centro de Biotecnología y Genómica de Plantas, Universidad Politécnica de Madrid (UPM)-Instituto Nacional de Investigación y Tecnología Agraria y Alimentaria , Campus de Montegancedo, 20223 Madrid, Spain

2. Instituto de Bioquímica Vegetal y Fotosíntesis, Consejo Superior de Investigaciones Científicas and Universidad de Sevilla , 41092 Sevilla, Spain

3. Department of Biology, University of Western Ontario , London, Ontario N6A 5B7, Canada

4. Departamento de Química, Facultad de Ciencias, Universidad de Burgos , Burgos 09001, Spain

5. Departamento de Biotecnología-Biología Vegetal, Escuela Técnica Superior de Ingeniería Agronómica, Alimentaria y de Biosistemas, UPM , 28040 Madrid, Spain

Abstract

Abstract Plant–pest interactions involve multifaceted processes encompassing a complex crosstalk of pathways, molecules, and regulators aimed at overcoming defenses developed by each interacting organism. Among plant defensive compounds against phytophagous arthropods, cyanide-derived products are toxic molecules that directly target pest physiology. Here, we identified the Arabidopsis (Arabidopsis thaliana) gene encoding hydroxynitrile lyase (AtHNL, At5g10300) as one gene induced in response to spider mite (Tetranychus urticae) infestation. AtHNL catalyzes the reversible interconversion between cyanohydrins and derived carbonyl compounds with free cyanide. AtHNL loss- and gain-of-function Arabidopsis plants showed that specific activity of AtHNL using mandelonitrile as substrate was higher in the overexpressing lines than in wild-type (WT) and mutant lines. Concomitantly, mandelonitrile accumulated at higher levels in mutant lines than in WT plants and was significantly reduced in the AtHNL overexpressing lines. After mite infestation, mandelonitrile content increased in WT and overexpressing plants but not in mutant lines, while hydrogen cyanide (HCN) accumulated in the three infested Arabidopsis genotypes. Feeding bioassays demonstrated that the AtHNL gene participated in Arabidopsis defense against T. urticae. The reduced leaf damage detected in the AtHNL overexpressing lines reflected the mite’s reduced ability to feed on leaves, which consequently restricted mite fecundity. In turn, mites upregulated TuCAS1 encoding β-cyanoalanine synthase to avoid the respiratory damage produced by HCN. This detoxification effect was functionally demonstrated by reduced mite fecundity observed when dsRNA-TuCAS-treated mites fed on WT plants and hnl1 mutant lines. These findings add more players in the Arabidopsis–T. urticae interplay to overcome mutual defenses.

Funder

Europe” and by the “European Union”

Convenio Plurianual between Comunidad de Madrid

Apoyo-Jóvenes investigadores Program

“La Caixa” Foundation

Natural Sciences and Engineering Research Council of Canada

Publisher

Oxford University Press (OUP)

Subject

Plant Science,Genetics,Physiology

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