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MATHIEU, L.

Publications and source records attributed to MATHIEU, L..

2 recordsLinked to original sources

Interspecific transfer of specialized metabolites in root exudates coincides with root chromatin regulation and systemic chemical defenses in rice

O_LIBenzoxazinoids are indole-derived specialized metabolites released into the soil through root exudates. Initially studied for their allelopathic and toxic effects, they are now recognized as broad regulators of plant-organism interactions, including microbiome-mediated pathogen resistance. However, whether benzoxazinoid-containing root exudates can directly influence disease susceptibility in neighboring plants remains unclear. C_LIO_LIUsing an agriculturally relevant rice-maize co-culture system, we show that benzoxazinoids naturally exuded by maize roots are taken up by rice roots and are associated with reduced rice blast disease in leaves. C_LIO_LIThis protection occurs without detectable benzoxazinoid accumulation in rice leaves, constitutive immune activation or decreased plant height. Instead, benzoxazinoid uptake by rice roots is associated with chromatin hyperacetylation, increased expression of key phenylpropanoid biosynthetic genes and broad metabolic reprogramming. C_LIO_LIThese responses extend systemically to leaves, where rice establishes a defense-related chemical state distinct from the systemic acquired resistance previously observed in benzoxazinoid-dependent, microbiome-mediated plant-soil feedbacks. C_LIO_LIOur findings support a model in which specialized metabolites exuded by one crop species are acquired by a neighbouring species and trigger chromatin-associated metabolic reprogramming linked to systemic chemical defence. This study provides a molecular framework connecting plant-plant chemical interactions, root exudation, chromatin regulation and disease susceptibility. C_LI

plant biology↗

Early root-root interactions weaken foliar defense responses against Septoria tritici blotch in a durum wheat varietal mixture

The interactions between co-cultivated plant cultivars are increasingly recognized as influencing their susceptibility to pathogens in mixtures. However, the underlying mechanisms remain largely unexplored. Using a model of durum wheat cultivar mixtures where susceptibility to Septoria foliar disease is increased, we combined aerial and root phenotyping with transcriptional analyses and untargeted metabolomics to elucidate the potential signaling cascade driving this modulation of susceptibility. We observed contrasting root architectures between cultivars in mixture. Molecular analysis showed a delayed induction of defense-related genes and metabolites following pathogen inoculation in plants grown in mixture compared to pure stand. The findings suggest that root architecture potentially triggers a competitive response that could delay the induction of defense responses following pathogen inoculation. Altogether, these results point to a possible interplay between root architecture, resource competition, plant metabolism, and defense modulation in shaping plant-pathogen interactions within varietal mixtures. Summary statementIn a durum wheat mixture, increased susceptibility to Septoria tritici blotch is linked to delayed defense response induction, likely triggered by early root competition resulting from contrasting root architectures. This reveals a novel root-mediated mechanism by which plant-plant interactions modulate susceptibility to aerial pathogens.

plant biology↗