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Newfeld, J.

Publications and source records attributed to Newfeld, J..

2 recordsLinked to original sources

A fungal phosphate starvation regulator gates virulence to prioritize nutrient adaptation in response to host phosphate status

Plant-associated microbes must constantly balance environmental adaptation with virulence to survive in fluctuating ecosystems, yet the molecular mechanisms coupling these processes remain poorly understood. Here, we identify NUTRIENT-DEPENDENT FACILITATOR OF COLONIZATION1 (NFC1), a virulence factor in a conditionally pathogenic Colletotrichum tofieldiae strain, whose expression is tightly regulated by both temperature and phosphate availability. Leveraging plant phosphate starvation response (PSR) mutants and direct phosphate supplementation to host plants, we demonstrate that NFC1 expression is driven by the internal phosphate status of the host rather than environmental availability alone. Notably, the fungal PSR regulator CtPHO4 represses NFC1 and virulence during phosphate starvation, while simultaneously activating canonical fungal PSR-related genes. Conversely, under phosphate sufficiency, NFC1 is strongly induced and promotes infection, potentially by modulating the host circadian clock system. This study uncovers a molecular link between metabolic adaptation and virulence programming, providing a conceptual framework for predicting disease dynamics under changing environments.

microbiology↗

Genetic factors driving multi-host infection in a core member of the root mycobiota

Core members of the fungal root microbiota include pathogens capable of colonizing multiple hosts, yet the underlying genetic determinants remain unknown. We report that Plectosphaerella cucumerina is a core member of the Arabidopsis thaliana root microbiota displaying high pathogenic potential and multi-host colonization capabilities. Establishment of a Plectosphaerella reference culture collection, followed by whole-genome sequencing of 72 strains reveals subtle phenotypic and genotypic variation that associate with fungal phylogeny, but not host plant identity. Transcriptome profiling of a model P. cucumerina isolate in roots of multiple hosts identifies core and host-specific fungal processes linked to carbon catabolism and root cell wall deconstruction of the hosts. A fungal gene encoding a candidate {beta}-1,3-glucanase (GH64) was identified as a key genetic factor driving infection and disease in plants that diverged 110 million years ago. The gene is enriched in plant-colonizing fungi and consistently functions as a disease determinant in the root pathogen Colletotrichum incanum. We conclude that diverse and tunable fungal repertoires of carbohydrate-active enzymes act as disease determinants and drive multi-host compatibility belowground.

microbiology↗