Combined generalist and host-specific transcriptional strategies enable host generalism in the fungal pathogen <i>Botrytis cinerea</i>

R Ritu Singh A Anna Jo Muhich (Department of Plant Science, University of California) C Cloe Tom (Department of Plant Science, University of California) J Jack McMillan (Department of Plant Science, University of California) K Karishma Srinivas (Department of Plant Science, University of California) L Lucca Faieta (Department of Plant Science, University of California) C Celine Caseys (Department of Plant Science, University of California) D Daniel J. Kliebenstein (Department of Plant Science, University of California)

Abstract

How generalist pathogens infect phylogenetically diverse hosts remains a central question in plant-pathogen biology. In particular, the extent to which broad host range is enabled by genetic variation vs. transcriptional plasticity is unclear. To investigate how variation and plasticity contribute to generalism, we studied the generalist necrotrophic fungus Botrytis cinerea that infects more than 1,500 plant species. Using a cross-infection matrix of 72 B. cinerea isolates infecting 57 plant genotypes across 15 eudicot species, we identified general and host-dependent fungal components of lesion formation. Transcriptome profiling at 48 h postinoculation revealed two distinct pathogen gene modules: 1) a set of general lesion-associated genes showing similar expression across hosts but varied among isolates; and 2) a set of high-entropy, host-inducible genes, organized into distinct coregulated modules that respond dynamically to specific host cues. Both gene sets were genomically dispersed, lacking structural clustering, and were under different levels of selective constraints. Our results demonstrate that B. cinerea employs a modular transcriptional strategy that integrates a core metabolic program along with a plastic, host-responsive regulatory network to achieve broad host colonization. This study presents the most comprehensive cross-species cotranscriptomic dataset to date for any fungal phytopathogen, highlighting transcriptional plasticity as a key mechanism underlying generalism in plant–fungal interactions. Moreover, the identification of conserved fungal gene targets across diverse hosts offers a foundation for developing broad-spectrum resistance strategies in multiple crops.

Article Details

Volume / Issue Vol. 123, Issue 21
Published May 26, 2026
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (8)

R

Ritu Singh

A

Anna Jo Muhich

Department of Plant Science, University of California

C

Cloe Tom

Department of Plant Science, University of California

J

Jack McMillan

Department of Plant Science, University of California

K

Karishma Srinivas

Department of Plant Science, University of California

L

Lucca Faieta

Department of Plant Science, University of California

C

Celine Caseys

Department of Plant Science, University of California

D

Daniel J. Kliebenstein

Department of Plant Science, University of California