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Gambetta, G.

Publications and source records attributed to Gambetta, G..

3 recordsLinked to original sources

Esca Disease triggers local transcriptomic response and systemic DNA methylation changes in grapevine

Woody plants such as grapevine are vulnerable to trunk diseases caused by pathogens that colonize the wood, disrupt vascular function, and induce recurrent leaf symptoms associated with major metabolic disturbances and canopy decline. Over time, these diseases can irreversibly alter plant physiology and phenotype, ultimately reducing vine longevity. One of the most predominant of such diseases is esca, which is a major cause of vineyard dieback, with rising incidence worldwide over the past decade. However, the molecular mechanisms underlying esca symptom development remain unclear. In this study, we leveraged the heterogeneous expression of esca-symptoms within individual grapevines to investigate molecular responses in both symptomatic and asymptomatic leaf tissues. By combining metabolite profiling, RNA-seq and whole genome bisulfite sequencing, we show that metabolic alterations and extensive transcriptomic reprogramming are restricted to symptomatic leaves and are partially associated with local changes in DNA methylation. Asymptomatic leaves display distinct DNA methylation changes, some of which are shared with symptomatic tissues, suggesting a systemic response to the disease at the epigenetic level. Notably, subset of these methylation marks are observable prior to symptom emergence, highlighting the potential of epigenetic biomarkers for the early detection of trunk diseases in perennial plants.

plant biology↗

Stress-dependent responses of grapevine wood and fungal pathogen activity under esca and drought

O_LIBiotic and abiotic stresses alter the physiology of perennial plants, with consequences for fungal endophytes and disease expression. In grapevine, one of the worlds most valuable crops, drought inhibits esca disease expression, but the underlying molecular interactions between plant and fungi are unknown. C_LIO_LIWe combined wood metatranscriptomics, metabolomics, and metabarcoding to investigate these interactions in 30-year-old grapevines and eight wood-pathogenic fungi under conditions of drought or esca leaf symptom expression. C_LIO_LIBoth esca and drought decreased grapevine transpiration, but with different transcriptomic and metabolic signatures. Similar pathways were also activated, including the phenylpropanoid and stilbenoid synthesis pathways. These stress responses could potentially confer cross-tolerance, and elicit different fungal molecular responses. The levels of putative fungal virulence factors increased significantly under both stresses. Under drought, only the relative abundance of Phaeomoniella chlamydospora and gene expression involved in anti-oxidative mechanisms, growth, and reproduction increased. Under esca expression conditions, only the relative abundance of Fomitiporia mediterranea and gene expression involved in wood degradation, competition, detoxification, and growth increased. C_LIO_LIThe grapevine defense mechanisms induced by drought coupled with a low transpiration rate and a low abundance and virulence of F. mediterranea may account for esca leaf symptom inhibition upon water deficit. C_LI

plant biology↗

Differential impacts of drought and esca expression on Ascomycota fungi in the trunks and young organs of mature grapevines

Perennial plant decline is increasingly threatening the profitability and sustainability of agriculture and forestry worldwide. It results from intricate interactions between microbial communities, the plant host, and abiotic stressors. We investigated the effects of drought and esca disease on mature grapevine phytobiomes. Grapevines display no esca leaf symptoms during droughts, but the impacts of drought and esca expression on fungal communities and wood health in mature plants remain poorly understood. We studied 43 uprooted 30-year-old naturally infected vines in three experimental conditions: well-watered asymptomatic (Control) vines, vines with esca symptoms (Esca), and vines subjected to water deficit (WD) over two consecutive summers. We profiled trunk, cane, stem and petiole Ascomycota communities by DNA metabarcoding with primers specifically designed for grapevine trunk-associated Ascomycota, and quantified wood necrosis. The Ascomycota communities of trunks and younger organs clearly differed, and drought and esca had different impacts on the Ascomycota communities of perennial and young organs. In the trunk, drought significantly decreased fungal diversity in healthy wood and increased the abundance of wood pathogens (e.g. Phaeomoniella chlamydospora, Botryosphaeria dothidea). In young organs, esca expression decreased the species richness and diversity of the Ascomycota community to a greater extent than drought. We also found that the relative proportion of healthy wood was smaller in plants with esca symptoms than in control plants. Thus, drought increased Ascomycota pathogen abundance in the trunk but did not increase wood degradation and esca expression, highlighting the need to investigate the molecular basis of plant-microbiome interactions under multi-stress conditions.

plant biology↗