Drought Influences the Structure, Diversity, and Functionality of the Fungal Community Inhabiting the Grapevine Xylem and Enhances the Abundance of Phaeomoniella chlamydospora

Author:

Leal C.1,Bujanda R.1,Carbone M. J.2ORCID,Kiss T.3,Eichmeier A.3ORCID,Gramaje D.1ORCID,Maldonado-González M. M.1

Affiliation:

1. Instituto de Ciencias de la Vid y del Vino (ICVV), Consejo Superior de Investigaciones Científicas - Universidad de la Rioja - Gobierno de La Rioja, Ctra. LO-20 Salida 13, Finca La Grajera, 26071 Logroño, Spain

2. Departmento de Protección Vegetal, Facultad de Agronomía, Universidad de la República, Avenida Garzón 780, Montevideo 12900, Uruguay

3. Mendel University in Brno, Faculty of Horticulture, Mendeleum - Institute of Genetics, Valticka 334, 69144, Lednice, Czech Republic

Abstract

Grapevine productivity worldwide is increasingly threatened by global warming, potentially exacerbating water scarcity. This study examines drought's effects on grapevine xylem fungal communities, particularly regarding Phaeomoniella chlamydospora, linked to esca and Petri diseases. Investigating 1-year-old grafted grapevines under varied water regimes, including severe, moderate, and no water deficit, the research assessed how drought influences fungal diversity, structure, and interactions within the xylem. Utilizing internal transcribed spacer high-throughput amplicon sequencing and droplet-digital PCR, the study tracked changes in fungal composition and P. chlamydospora prevalence over two growing seasons. The induced water stress not only altered the diversity and composition of the fungal microbiome in the xylem vessels but also affected co-occurrence networks, resulting in less complex networks with fewer correlations between taxa, potentially increasing grapevine vulnerability to various biotic and abiotic stresses. Severe water deficit significantly reduced microbial diversity, leading to a shift in the abundance of pathotrophs such as P. chlamydospora in the xylem. This underscores the interconnectedness between water stress, microbiome dynamics, and plant health. The combination of compromised plant defenses, altered physiological conditions, and shifts in the surrounding microbial community may create conditions conducive to increased P. chlamydospora abundance in the xylem vessels of young vines following water stress.

Funder

Spanish Ministry of Economy, Industry and Competitiveness

Center for Industrial Technological Development

Publisher

Scientific Societies

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