β-Cyanoalanine synthase protects mites against Arabidopsis defenses

Author:

Dixit Sameer1ORCID,Widemann Emilie1ORCID,Bensoussan Nicolas1,Salehipourshirazi Golnaz1ORCID,Bruinsma Kristie1ORCID,Milojevic Maja1ORCID,Shukla Akanchha1ORCID,Romero Luis C2ORCID,Zhurov Vladimir1ORCID,Bernards Mark A1ORCID,Chruszcz Maksymilian3ORCID,Grbić Miodrag1ORCID,Grbić Vojislava14ORCID

Affiliation:

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

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

3. Department of Chemistry and Biochemistry, University of South Carolina , Columbia, South Carolina, 29208, USA

4. Instituto de Ciencias de la Vid y del Vino , 26006 Logroño, Spain

Abstract

Abstract Glucosinolates are antiherbivory chemical defense compounds in Arabidopsis (Arabidopsis thaliana). Specialist herbivores that feed on brassicaceous plants have evolved various mechanisms aimed at preventing the formation of toxic isothiocyanates. In contrast, generalist herbivores typically detoxify isothiocyanates through glutathione conjugation upon exposure. Here, we examined the response of an extreme generalist herbivore, the two-spotted spider mite Tetranychus urticae (Koch), to indole glucosinolates. Tetranychus urticae is a composite generalist whose individual populations have a restricted host range but have an ability to rapidly adapt to initially unfavorable plant hosts. Through comparative transcriptomic analysis of mite populations that have differential susceptibilities to Arabidopsis defenses, we identified β-cyanoalanine synthase of T. urticae (TuCAS), which encodes an enzyme with dual cysteine and β-cyanoalanine synthase activities. We combined Arabidopsis genetics, chemical complementation and mite reverse genetics to show that TuCAS is required for mite adaptation to Arabidopsis through its β-cyanoalanine synthase activity. Consistent with the β-cyanoalanine synthase role in detoxification of hydrogen cyanide (HCN), we discovered that upon mite herbivory, Arabidopsis plants release HCN. We further demonstrated that indole glucosinolates are sufficient for cyanide formation. Overall, our study uncovered Arabidopsis defenses that rely on indole glucosinolate-dependent cyanide for protection against mite herbivory. In response, Arabidopsis-adapted mites utilize the β-cyanoalanine synthase activity of TuCAS to counter cyanide toxicity, highlighting the mite’s ability to activate resistant traits that enable this extreme polyphagous herbivore to exploit cyanogenic host plants.

Funder

Government of Canada

Ontario Research Fund

Natural Sciences and Engineering Research Council of Canada

NSERC

USDA’s National Institute of Food and Agriculture

NIFA Plant Biotic Interactions Program

Publisher

Oxford University Press (OUP)

Subject

Plant Science,Genetics,Physiology

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