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Extracellular water withdrawal drives disease resistance in the phyllosphere

Roussin-Leveillee, C.; Gauthier, S.; Hu, Y.; Zhu, J.; Gaudreault-Lafleur, F.; Marty, S.; Pelletier, A.; Roy, A.; Noel, L. D.; Coaker, G. L.; Xin, X.; Moffett, P.

2026-08-28 plant biology
10.64898/2026.08.27.747301 bioRxiv
Show abstract

A central question in immunity is how hosts arrest pathogen growth. Diverse plant pathogens create a water-soaked niche in host tissue essential for pathogenesis, yet how water shapes infection outcome is unknown. Using genetics and hyperspectral imaging, we show that extracellular water status is rate-limiting for both compatible and incompatible interactions. We find that the hypersensitive response of effector-triggered immunity (ETI) is, mechanistically, a desiccation event. Water loss imposes osmotic stress that arrests bacterial division while the pathogen remains alive and metabolically active, rather than killing it. Restoring apoplastic water reverses this stasis and licenses growth despite intact immune signaling and cell death. Water status, not immune signaling per se, gates pathogen growth. This reframes ETI as a controlled desiccation mechanism and identifies hydration as a decisive lever on disease outcome.

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