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Biology subjects

Studt-Reinhold, L.

Publications and source records attributed to Studt-Reinhold, L..

2 recordsLinked to original sources

Wheat infection by Fusarium graminearum species complex members is facilitated by a transcriptionally conserved non-ribosomal peptide synthetase gene cluster

Biosynthetic gene clusters (BGCs) are often found in fungal pathogens and encode secondary (or specialized) metabolites that play crucial roles in host and niche adaptation. However, the regulatory dynamics and functions of these BGCs during host infection remain largely unknown. To address this gap, we employed interspecies comparative transcriptomics to identify BGCs involved in host-pathogen interactions mediated by the Fusarium graminearum species complex (FGSC). We conducted joint transcriptomic and metabolomic analyses during wheat infection and in vitro experiments with five members of the FGSC to understand gene regulation during host infection. Our findings revealed that expression regulation was predominantly species-specific, but we also identified a set of shared upregulated genes that were common to all five FGSC species showing enrichment for metabolic and pathogenicity-associated functions. We focused on jointly upregulated BGC during infection and identified a NRPS-like gene cluster named SM3. The cluster was highly conserved within FGSC and shared by the more distant F. sambucinum species complex. We show that inactivation of the BGC core gene significantly impairs F. graminearum sensu stricto (s.s.) spore production, reduces fungal spread and Fusarium Head Blight symptoms on wheat kernels. Our results highlight that comparative infection transcriptomes can reveal conserved metabolic functions mediating the host infection process of a plant pathogen.

microbiology↗

Copper acquisition is essential for plant colonization and virulence in a root-infecting vascular wilt fungus

Phytopathogenic fungi provoke devastating agricultural losses and are difficult to control. How fungal pathogens adapt to the plant environment to cause disease and complete their life cycle on the host remains poorly understood. Here we show that efficient acquisition of copper, mediated by the transcriptional regulator Mac1, is crucial for plant colonization and virulence in Fusarium oxysporum, a soilborne ascomycete that causes vascular wilt on more than 150 different crops. RNA-seq and ChIP-seq establish a direct role of Mac1 in activation of copper deficiency response genes, many of which are induced during plant infection. Loss of Mac1 impairs growth of F. oxysporum under copper-limiting condition as well as vascular colonization and virulence on tomato plants. Importantly, Mac1-independent overexpression of a copper reductase and a copper transporter restores growth under copper limitation and virulence in the mac1 null mutant background. These findings establish a key role for copper acquisition in fungal pathogenicity on plants and reveal new ways to protect crops from phytopathogens.

genetics↗