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May 20, 2026Molecular Plant Pathology0 citationsOpen Access

Identification of Genes Involved in Resistance to Flavescence Dorée Disease of Grapevine: A Model Study Using Arabidopsis thaliana

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MRMarika RossiInstitute for Sustainable Plant ProtectionLGLuciana GalettoInstitute for Sustainable Plant ProtectionSASimona AbbàInstitute for Sustainable Plant Protection

Key Points

  • The aim is to identify genes in Arabidopsis thaliana that confer resistance to Flavescence Dorée, a disease affecting grapevines.
  • RNA sequencing utilized to identify deregulated genes during infection by FD phytoplasma and CY phytoplasma.
  • Expression monitored over various time points to validate these genes.
  • Functional analysis performed on corresponding mutants to assess susceptibility to FDp.
  • Five genes were consistently found to be deregulated during FDp infection.
  • Two mutant lines showed significantly reduced susceptibility to FDp compared to the wild type, with a double mutant demonstrating similar results.
  • Resistance is identified as genetically determined, independent of vector feeding behavior.

Abstract

ABSTRACT Flavescence dorée (FD), caused by FD phytoplasma (FDp) and transmitted by the leafhopper Scaphoideus titanus , is a quarantine disease that seriously threatens viticulture across Europe. Research on resistance or tolerance to FDp in grapevine is limited by the perennial nature of the host, high cultivar variability and the univoltine life cycle of the insect vector. To overcome these constraints, we employed Arabidopsis thaliana as a model host to identify genes conferring resistance to FDp. RNA sequencing (RNA‐seq) was first used to identify genes deregulated in A. thaliana during infection by either the woody host pathogen FDp or the herbaceous host pathogen Chrysanthemum yellows phytoplasma (CYp). A subset of these genes was then validated by monitoring their expression in the FDp– A. thaliana pathosystem at various time points during infection. Five genes were consistently deregulated upon infection, and functional analysis of the corresponding mutants revealed two lines with significantly reduced susceptibility to FDp compared with the wild type. The double mutant combining these two genes exhibited a similar phenotype, suggesting functional convergence. Electrical penetration graph (EPG) analysis indicated that this resistance is independent of vector feeding behaviour, pointing to a genetically determined defence mechanism rather than antixenosis. These findings uncover novel components of plant defence against phytoplasma infection and establish A. thaliana as a valuable system for dissecting the molecular basis of tolerance to FDp. We discussed how the genes we identified represent promising targets for developing sustainable, phytoplasma‐resistant grapevine varieties.

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Cite This Study

Rossi et al. (2026) studied this question.

synapsesocial.com/papers/6a0d5013f03e14405aa9b9b2https://doi.org/10.1111/mpp.70273
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