Abstract
The introduction of invasive microbes compromises the structure, biodiversity, and function of naïve ecosystems. Sphaerulina musiva, a hemibiotrophic pathogen that causes leaf spot and stem cankers in Populus species, exemplifies an invasive fungal pathogen spread by human activities. However, the genetic mechanisms of pathogenicity and virulence are poorly understood, impeding mitigation strategies. We utilized RNA sequencing to identify fungal effectors linked to stem canker formation, informing the development of future strategies for effective disease management. Our analysis revealed 70 genes differentially expressed at 2 weeks and 110 genes at 3 weeks between inoculated trees and controls. Notably, the gene with the highest expression at 2 weeks and the second highest at 3 weeks was homologous to Extracellu-lar protein 2 (Ecp2). Complementary genome-wide association studies linked sequence polymorphisms in this locus to phenotypic variation in disease severity. Infiltration of S. musiva Ecp2 into Populus trichocarpa leaves induced necrosis in susceptible genotypes. Gene disruption using a CRISPR-Cas9 RNP system resulted in a genotype-dependent reduction of stem canker and disease severity. Tracing the evolutionary history of this effector across the fungal kingdom, we uncovered clade-specific gene-family expansions and orthologs in new species. These findings raise questions about the function and adaptive significance of these gene families in fungal lifestyles. Our study provides the first tractable target for breeding resistant poplar genotypes, addressing the challenges of managing S. musiva and uncovering mechanisms that drive its virulence, and provides deeper insights into the evolutionary dynamics of a conserved small-secreted protein with a diversity of functions.
| Original language | English |
|---|---|
| Journal | mBio |
| Volume | 17 |
| Issue number | 5 |
| DOIs | |
| State | Published - Apr 16 2026 |
Funding
This study was supported by the United States Department of Agriculture National Institute of Food and Agriculture USDA-NIFA-RIPM 2012-34103-19771 grant to J.M.L. A graduate research assistantship was provided to K.L.S. from the Botany and Plant Pathology Department at Oregon State University. T.A.R., P.E.A., and J.T. were supported by the Secure Ecosystem Engineering and Design (SEED) (https://seed-sfa.ornl.gov/), a project funded by the Genomic Science Program of the US Department of Energy, of Science, of Biological and Environmental Research (BER) as part of the Secure Biosystems Design Science Focus Area (SFA). J.T. was also supported by the Laboratory Directed Research and Development (LDRD) Program of Oak Ridge National Laboratory, managed by UT-Battelle, LLC. This paper has been authored by UT-Battelle, LLC, under contract DE-AC05-00OR22725 with the US Department of Energy (DOE). We thank Danielle Holmes for her technical assistance. This study was supported by the United States Department of Agriculture National Institute of Food and Agriculture USDA-NIFA-RIPM 2012-34103-19771 grant to J.M.L. A graduate research assistantship was provided to K.L.S. from the Botany and Plant Pathology Department at Oregon State University. T.A.R., P.E.A., and J.T. were supported by the Secure Ecosystem Engineering and Design (SEED) (https://seed-sfa.ornl.gov/), a project funded by the Genomic Science Program of the US Department of Energy, Office of Science, Office of Biological and Environmental Research (BER) as part of the Secure Biosystems Design Science Focus Area (SFA). J.T. was also supported by the Laboratory Directed Research and Development (LDRD) Program of Oak Ridge National Laboratory, managed by UT-Battelle, LLC. This paper has been authored by UT-Battelle, LLC, under contract DE-AC05-000R22725 with the US Department of Energy (DOE).
Keywords
- Septoria canker
- bioenergy
- effectors
- poplar
- virulence factors
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