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Rimes-Casais, F.

Publications and source records attributed to Rimes-Casais, F..

2 recordsLinked to original sources

Gene loss dynamics and T3PKS conservation shape the evolution and pathogenicity of Rosellinia necatrix

Fungal pathogens exhibit remarkable genome plasticity, driven by polyploidy, genome duplication, transposable elements, and niche adaptation. Gene losses often occur in dispensable regions, including in the remarkably dynamic secondary metabolite gene clusters (SMGCs). Within the diverse family Xylariaceae, comprising endophytes, saprotrophs, and phytopathogens, the broad-spectrum pathogen Rosellinia necatrix is of major concern, causing white root rot in numerous crops worldwide. Its strategy involves the root infection of weakened plants, tissue colonization, and saprotrophic survival in soil; yet, the genetic basis of this versatility remains poorly understood. Herein, we applied comparative genomics across Xylariaceae to investigate the molecular determinants of R. necatrix pathogenicity. We uncovered widespread gene losses in R. necatrix, particularly in SMGCs, candidate effectors, and transporter families (MFS and ABC transporters), suggesting a streamlining of its metabolic repertoire during adaptation to diverse hosts. We also identified two highly conserved type III polyketide synthases (T3PKS) across the family, predicted to encode chalcone synthases. Structural modeling and docking analyses support their role in chalcone-related biosynthesis, pointing to an unexpected link between fungal metabolism and plant-associated compounds. Variation in SMGC and carbohydrate-active enzyme (CAZy) repertoires across Xylariaceae further suggests a hemibiotrophic potential for R. necatrix, reconciling its capacity for both latent colonization and aggressive necrosis. Our findings establish niche specificity as a key driver of genome reduction in R. necatrix and reveal conserved metabolic innovations across Xylariaceae. By integrating gene loss dynamics with secondary metabolism, this work provides new insights into fungal adaptation and pathogenicity, with implications for disease management in perennial and annual crops.

genomics↗

Genomic plasticity of the Azospirillum genus in a biotechnological context

Extensive agriculture and the use of chemical fertilizers cause notable environmental impacts on multiple levels, from reducing soil microbiota diversity to groundwater contamination. In this context, the usage of plant growth-promoting bacteria (PGPB) presents a sustainable alternative to enhance crop production while mitigating these adverse effects. Azospirillum, a bacterial genus renowned for its beneficial capabilities, particularly phytohormone production, is a key component of many commercial inoculants. In this work, we performed a comparative genomic analysis of all publicly available Azospirillum genomes and four novel isolates belonging to our microbial collection. Our analysis identified a species complex within the genus, which we designate the A. brasilense species complex, comprising species already used in commercial bioconsortia. This complex is characterized by a core set of exclusive genes linked to chemotaxis and host-recognition capability. Furthermore, we also validated the biosafety of the A. brasilense species complex and confirmed the plant growth-promoting potential of our novel isolates, highlighting their suitability for developing new biofertilizers.

microbiology↗