Aug 2026· Plants· Vol 15, pp. 2626· 0 citations· 55 references
Medicine
TL;DR
The findings suggest a need to move from uniform inoculation practices toward genotype-informed microbiome management, and provide a framework for leveraging host genetics in sustainable agriculture, highlighting that breeding and microbiome management should be integrated.
Abstract
Drought severely limits global wheat production, and plants can mitigate this stress by recruiting beneficial rhizosphere microbiomes. However, the role of host genotype in shaping this recruitment and influencing microbial inoculant efficacy is poorly understood. Here, we aimed to elucidate the interplay among host genotype, drought stress, and inoculation with Trichoderma citrinoviride. A factorial pot experiment investigated the responses of two wheat genotypes (JN 14-95, constitutively drought-tolerant; JN 72, drought-responsive) to water regimes and inoculation with T. citrinoviride. Metagenomic analysis was performed to characterize rhizosphere bacterial community structure and functional potential. Host genotype was the primary driver of bacterial community structure (42.3% of variation), exceeding water stress (23.8%) and inoculation (11.5%). JN 14-95 adopted a “physiological autonomy” strategy with constitutive high root-to-shoot ratio and inferred enrichment of auxin and SOD biosynthesis genes. JN 72 employed a “microbial outsourcing” strategy, enriching beneficial bacteria (Pseudomonas, Bacillus, Streptomyces) and showing inferred enrichment of central carbon metabolism genes. T. citrinoviride amplified these genotype-specific responses, increasing the total dry matter by 21.3% in JN 14-95 and 30.3% in JN 72 under drought. Our findings suggest a need to move from uniform inoculation practices toward genotype-informed microbiome management. The two strategies provide a framework for leveraging host genetics in sustainable agriculture, highlighting that breeding and microbiome management should be integrated.
Climate change-driven increases in temperature and water scarcity pose major threats to agricultural productivity. The rhizosphere microbiome plays a central role in plant responses to abiotic stress and represents a promising target for improving crop resilience. Here, we investigated the rhizosphere microbiomes o...
T. Pellegrinetti, Ana Vitória Reina da Silva, E. H. Boleta et al.· npj Biofilms and Microbiomes· 0 citations
It is demonstrated that wheat salt tolerance is linked to assembly of a functionally enriched rhizosphere microbiome, highlighting microbiome-driven mechanisms for improving crop resilience in saline soils.
Yan-Wei Kan, Yu-Hao Fu, Wen-Liang Yang et al.· Journal of Environmental Man...· 0 citations
Quinoa (Chenopodium quinoa Willd.) is an Andean crop with exceptional adaptation to harsh environments, yet drought remains a major constraint to stable production in the Bolivian Altiplano. Beneficial microorganisms represent a promising strategy to enhance crop resilience, but knowledge of native quinoa microbiomes,...
Virginia Gonzales· Acta Universitatis Agricultu...· 0 citations
Drought is a major abiotic constraint on plant productivity, and plant growth-promoting rhizobacteria (PGPR) provide a sustainable strategy for improving crop drought tolerance. The rhizosphere of the dominant Mu Us Desert plant Artemisia ordosica may harbor drought-adapted microorganisms, but their functions remain in...
Plant microbiomes are assembled from environmental pools that differ substantially in composition, yet whether their responses to stress follow general rules or depend on the resident community remains unclear. We tested the generality of root microbiome responses to stress by growing three tomato (Solanum lycopersicum...
Edda Francomano, M. Aci, Nesma Zakaria Mohamed et al.· bioRxiv· 0 citations
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