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Colou, J.

Publications and source records attributed to Colou, J..

3 recordsLinked to original sources

Transcriptional Plasticity of Trichoderma atroviride in Response to Different Plant Pathogens

Fungal mycoparasitism is commonly viewed as a broadly conserved lifestyle relying on the secretion of cell wall-degrading enzymes and specialized metabolites. However, whether Trichoderma deploys a universal antagonistic program or dynamically adapts its molecular arsenal according to prey identity remains largely unknown. Here, we investigated the phenotypic and transcriptomic responses of four highly antagonistic Trichoderma atroviride strains confronted with damping-off pathogens from three phylogenetically distinct lineages: the ascomycete Alternaria brassicicola, the basidiomycete Rhizoctonia solani, and the oomycete Globisporangium ultimum. In vitro confrontation assays were performed between the four T. atroviride strains and nine pathogen strains (three strains per species). Despite notable intraspecific variation in pathogen sensitivity, all four T. atroviride strains remained highly effective against all tested pathogens. Comparative RNA-seq analyses during direct confrontation with one representative strain per pathogen species revealed strong prey-dependent transcriptional plasticity. Interactions with the two fungal pathogens elicited a robust induction of classical mycoparasitic machinery, including glycoside hydrolases, secreted peptidases, and effector-like proteins, whereas these responses were markedly attenuated in interaction with G. ultimum. Specialized metabolite biosynthetic genes were broadly induced across all interactions, but with largely distinct gene sets depending on the pathogen, with the strongest divergence observed for confrontation with G. ultimum. Beyond this shared response, each fungal pathogen also triggered a distinct host-specific program. In response to A. brassicicola and R. solani, T. atroviride induced distinct sets of genes associated with cell wall organization, while the response to R. solani specifically involved the activation of peroxisomal functions and aromatic amino acid biosynthesis pathways. Receptors potentially involved in pathogen perception also showed pathogen-dependent expression patterns, with distinct GPCRs (G protein-coupled receptors) overexpressed depending on the pathogen encountered. NLRs (NOD-like receptors) displayed a similar pattern, although overexpression was detected only in response to A. brassicicola and G. ultimum. Together, these results demonstrate that T. atroviride does not rely on a fixed mycoparasitic program but instead dynamically remodels its transcriptome according to prey identity, revealing a high degree of transcriptional plasticity underlying broad-spectrum antagonism.

microbiology↗

Molecular Basis of Mycoparasitic Performance: Genomic and Transcriptomic Comparison of Contrasting Trichoderma atroviride Strains

Trichoderma species are widely used as biological control agents due to their ability to parasitize plant pathogens. However, substantial variability in mycoparasitic performance exists among strains, even within the same species, and the underlying molecular mechanisms remain poorly understood. Here, we performed comparative genomic and transcriptomic analyses of six Trichoderma atroviride strains exhibiting contrasting mycoparasitic performance (weakly or highly parasitic; WP or HP) against Alternaria brassicicola, Rhizoctonia solani, and Globisporangium ultimum. Comparative genomics revealed limited strain-specific differences, mainly restricted to NLR (NOD-like receptor) repertoires, with certain NLR-coding genes absent from WP strain genomes compared to HP strains, while overall genomic variation remained low. In contrast, transcriptomic analyses revealed strong differences in gene expression dynamics between HP and WP strains. Co-expression network analysis identified two modules associated with mycoparasitic performance. The first was specifically induced in response to pathogen contact and was enriched in genes encoding cell wall-degrading enzymes, with stronger expression in HP strains. The second module was more broadly overexpressed in HP strains across all conditions and included genes involved in detoxification and defense-related pathways. In addition, this module encompassed genes involved in specialized metabolite biosynthesis and effector-like protein secretion, with WP and HP strains differentially expressing distinct gene subsets within these categories. Together, these results provide a comprehensive framework for identifying the molecular drivers of mycoparasitic performance in T. atroviride. This study deepens our understanding of the functional diversity within the species and establishes a robust foundation for the future development of molecular markers to predict strain efficiency. Highlights- Significant variability in mycoparasitic performance exists within Trichoderma atroviride. - Certain NLR receptor genes are specific to highly parasitic genomes. - Highly parasitic strains show stronger expression of CWDE, ROS detoxification, and defense-related pathways. - Highly and weakly parasitic strains differ in expressed specialized metabolism and effector-like gene sets.

genomics↗

Draft genome of Trichoderma gamsii strain T035 a promising beneficial fungus in agriculture

AO_SCPLOWBSTRACTC_SCPLOWTrichoderma gamsii is a filamentous fungus widely recognized for its beneficial roles in agriculture, particularly for its ability to suppress plant pathogens and enhance crop health. However, genomic resources for this species remain scarce, limiting functional and applied studies. Here, we report the high-quality genome of T. gamsii strain T035, a promising biocontrol strain with significant antagonistic activity against several pathogens in vitro. The assembly consisted of 16 sequences, including near 7 chromosome-scale sequences, with an N50 value of 7.2 Mbp and a total assembly length of 38.8 Mbp. This genome represents the most complete T. gamsii assembly to date and will provide a valuable resource to facilitate the exploration of molecular mechanisms underlying biocontrol and support the development of sustainable plant protection strategies.

genomics↗