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Bazerque, Q.

Publications and source records attributed to Bazerque, Q..

3 recordsLinked to original sources

A Galbonolide producing Streptomyces reconfigures the plant root microbiota by activating salicylate-dependent defence metabolism

Streptomyces sp. AgN23 is an epiphytic rhizobacterium that establishes in the Arabidopsis rhizosphere by activating plant immune responses. This activity depends on the secretion of polyketide galbonolides, which inhibit host inositol phosphoceramide synthase (IPCS) and thereby perturb sphingolipid homeostasis. However, the downstream signalling events linking IPCS inhibition to AgN23 enrichment in the rhizosphere remain unclear. Here, we show that AgN23 activates ethylene- and salicylic acid-dependent immune signalling, leading to coordinated stimulation of phenylalanine- and tryptophan-derived secondary metabolism. Using Arabidopsis mutants defective in these pathways, we show that these metabolites mitigate AgN23-induced root growth inhibition. We further show that the npr1 mutant is strongly compromised in AgN23-triggered secondary metabolic responses, resulting in reduced rhizosphere colonization by AgN23. By comparing rhizosphere microbiota from wild-type and npr1 plants, we distinguished direct AgN23 effects linked to intermicrobial competition from indirect effects mediated by host metabolic activation. In particular, AgN23 colonization occurred at the expense of several Streptomycetaceae ASVs and coincided with changes in bacterial and fungal taxa belonging to Flavobacteriaceae and Mucoromycota. Together, these findings define a mechanistic framework in which Streptomyces AgN23 interacts with NPR1-dependent signalling to reprogram root metabolism and rhizosphere community structure, notably through the production of specialized metabolites such as galbonolides.

plant biology↗

A root pathogen drives rhizosphere enrichment of antagonistic Pseudomonas and induces production of an antimicrobial metabolite

In plants, the development of soil-borne diseases has been shown to trigger the recruitment of beneficial microbes, which contribute to defense against pathogens. However, the underlying mechanisms driving this recruitment remain elusive. Here, we used a gnotobiotic system combined with a synthetic bacterial community (SynCom) derived from the Medicago truncatula rhizosphere to dissect microbiota pathogen interaction and its role in the development of root rot caused by Aphanomyces euteiches, a devastating soilborne oomycete pathogen of legumes. Through integrated metabarcoding, metabolomics and transcriptomics, we reveal that pathogen infection restructures the bacterial SynCom, selectively enriching the microbial community with specific Pseudomonas spp. strains displaying anti A. euteiches activity. This shift alleviates root rot symptoms, triggers the biosynthesis of the antibiotic 2,4-diacetylphloroglucinol (DAPG), a Pseudomonas specialized metabolite inhibiting A. euteiches growth, and amplifies the plant endogenous isoflavonoid defense responses. Unexpectedly, we found that A. euteiches directly activates DAPG production in beneficial bacteria independently of the plant, through the production of a heat-stable, high-molecular-weight (30 - 100 kDa) extracellular components. These findings uncover a novel mechanism whereby a pathogen inadvertently activates antibiotic production in beneficial bacteria, extending the plant immune system. Our research underscores the critical role of microbial interactions in the rhizosphere in determining root disease outcomes, paving the way for microbiome-based strategies to combat root diseases.

plant biology↗

The Paraphyletic Origins of Genetic Resistance to Cabbage Stem Flea Beetle in Brassica oleracea

The cabbage stem flea beetle (CSFB) poses a growing threat to winter Brassica crops in Europe, yet the genetic basis of resistance remains poorly understood. To clarify the genetic architecture and evolutionary origins of resistance to CSFB adult feeding, we conducted a genome-wide association study (GWAS) by combining high-throughput pool-sequencing and a large-scale non-choice feeding assay on 113 Brassica oleracea accessions from wild (or feral) populations and major domesticated morphotypes. We demonstrate that resistance displays moderate heritability with a predominantly polygenic basis, revealing strong phenotypic divergence among morphotypes: B. oleracea var. capitata was generally susceptible, whereas var. botrytis and wild populations showed markedly higher resistance. Despite this polygenic background, we identified a major-effect candidate QTL on chromosome C01 with strong enrichment of resistance alleles in wild populations and susceptible alleles in var. capitata. Genome-wide F-statistics and heterozygosity scans revealed a recent selective sweep at this locus in wild lineages. Considering current evidence for the feral origin of contemporary "wild" populations, our results suggest that resistance evolved after domestication and subsequent feralization, independently of resistance in var. botrytis. This paraphyletic distribution underlines the critical importance of integrating demographic history into quantitative genetic analyses of domesticated plant systems.

genetics↗