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Soulie, M.-C.

Publications and source records attributed to Soulie, M.-C..

3 recordsLinked to original sources

Apoplast multi-omics profiling during fungal infection uncovers new players of basal and early induced immunity

The extracellular space in plant tissues, known as the apoplast, remains one of the least characterized cellular compartments. The apoplastic fluid (APF), akin to mammalian extracellular fluid, serves as the primary interface between pathogens and their host. It allows the exchange of signalling molecules, coordinates host cell responses, and enables the circulation of pathogen effectors that modulate the immune response. We describe here the first multi-omics analysis of the APF content just 6 h after the onset of A. thaliana infection with B. cinerea, a fast-killing necrotrophic fungus. By varying plant nitrogen nutrition, known to affect both plant defenses and pathogen virulence, we identify candidates that do not stand out under optimal conditions. Our analysis uncovers novel nitrogen-dependent mechanisms that regulate both basal and early induced apoplastic immunity, revealing the presence of previously unidentified, potentially protective apoplastic metabolites as well as the intercellular transport of nuclear proteins, thereby offering new insights into early apoplastic immune responses.

plant biology↗

Apoplast metabolomics reveals that plant-pathogen crosstalk is modulated by nitrogen supply

In the present study, we analyzed the role played by the apoplast in the crosstalk between biotic and abiotic stress conditions. In particular, we studied the crosstalk between nitrogen (N) limitation and infection of the model plant Arabidopsis thaliana by E. amylovora, an apoplastic bacterium. Our previous findings indicated that low N (LN) conditions increase E. amylovora in planta titers and expression of virulence factors. In this work, we extracted the apoplast wash fluids (AWF) from plants grown under low N or high N (HN) conditions and applied them to bacteria in vitro. We observed that LN-AWF induced stronger virulence gene expression than HN-AWF. Metabolomic analysis of both apoplast extracts revealed the presence of common metabolites, however, their proportions were distinct, indicating a direct effect of N availability on apoplast content. Interestingly, changes in the apoplast metabolite proportions were also observed early after bacterial infection, but only in plants grown under LN conditions. To evaluate the effect of single metabolites on virulence gene expression, we selected 43 metabolites and observed that 29 of them were activators whereas two, GABA and citrate, acted as repressors. This study shows that environmental constraints, such as N availability, impact plant-pathogen interactions by altering the apoplastic content.

plant biology↗

Unravelling the Interplay of Nitrogen Nutrition and the Botrytis cinerea pectin lyase BcPNL1 in Modulating Arabidopsis thaliana Susceptibility

In this study, we investigated the intricate interplay between nitrogen nutrition, and the dynamics of pectin degradation during plant-pathogen interactions, using Arabidopsis thaliana and Botrytis cinerea as a model pathosystem. Our findings revealed a noteworthy impact of nitrogen availability on the pectin degrading activity of the B. cinerea pectin lyase 1 (PNL) for which the mutant strains presented a reduced pathogenicity restored by complementation. More precisely, infected nitrogen-sufficient (high N) plants exhibited an increased release of PNL-derived oligogalacturonides compared to infected nitrogen-deficient (low N) plants. This correlated with an elevated expression of jasmonic acid repressor genes in high N plants, rendering them more susceptible to B. cinerea. Using{Delta} Bcpnl1 deletion mutants, we demonstrated that the increased production of BcPNL1 -derived oligogalacturonides under high N conditions was responsible for the increased expression of jasmonic acid repressor genes, significantly contributing to the higher susceptibility of high N plantsto B. cinerea. In conclusion, we demonstrated that BcPNL1 is a major pathogenicity factor during B. cinerea interaction that is affected by the plants N nutrition conditions.

plant biology↗