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Updated: Jan 15, 2026

A Hydroponic Co-cultivation System for Simultaneous and Systematic Analysis of Plant/Microbe Molecular Interactions and Signaling
Published on: July 22, 2017
Understanding microbiome shifts and their impacts on plant health during pathogen infections
Daniela P T Thomazella1, Letícia B Pereira2, Paulo J P L Teixeira2
1Department of Genetics, "Luiz de Queiroz" College of Agriculture, University of São Paulo, Piracicaba 13418-900, Brazil.
Abstract:
Pathogen infections can drastically reshape plant-associated microbiomes, yet the mechanisms underlying these shifts and their consequences for plant health remain elusive. In this review, we integrate recent advances to delineate how pathogen attack drives local and systemic microbiome restructuring via 3 major processes: (i) collateral effects of the plant immune system, including alterations to the local physicochemical niche; (ii) active recruitment of beneficial microbes through pathogen-induced root exudates (primary and secondary metabolites, volatiles, and organic compounds); and (iii) pathogen-mediated manipulation of the host microbiome through microbial effectors, antimicrobial production, or niche competition. By contrasting adaptive outcomes (enrichment of disease-suppressive taxa) with detrimental consequences (dysbiosis, mutualist loss, or proliferation of disease-promoting microbes), we emphasize the need for time-resolved, mechanistic studies that move beyond correlative surveys. Although the enrichment of protective microbes is a recurring theme in current literature, it is important to recognize that not all microbiome shifts are adaptive or host directed. Considering alternative explanations is critical to avoid survivorship bias and to accurately interpret microbiome dynamics in the context of plant-pathogen interactions. Building on these insights, we discuss the rational design of microbiome-based interventions to enhance crop resilience, including synthetic microbial consortia and elicitor-mediated recruitment of beneficial microbes. Notably, integrating microbiome dynamics into plant pathology offers a promising path toward sustainable disease management, transforming the microbiome from a passive background into an active, designable component of plant immunity.
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