6533b82bfe1ef96bd128d781

RESEARCH PRODUCT

Cellular, physiological, and molecular adaptive responses of Erwinia amylovora to starvation.

James D. OliverRicardo D. SantanderElena G. Biosca

subject

StarvationMicrobial ViabilityEcologybiologyVirulenceMotilityVirulenceGene ExpressionErwiniabiology.organism_classificationApplied Microbiology and BiotechnologyMicrobiologyAdaptation PhysiologicalViable but nonculturableMicrobiologyFire blightmedicineErwinia amylovoramedicine.symptomWater MicrobiologyPathogenBacteria

description

Erwinia amylovora causes fire blight, a destructive disease of rosaceous plants distributed worldwide. This bacterium is a nonobligate pathogen able to survive outside the host under starvation conditions, allowing its spread by various means such as rainwater. We studied E. amylovora responses to starvation using water microcosms to mimic natural oligotrophy. Initially, survivability under optimal (28 °C) and suboptimal (20 °C) growth temperatures was compared. Starvation induced a loss of culturability much more pronounced at 28 °C than at 20 °C. Natural water microcosms at 20 °C were then used to characterize cellular, physiological, and molecular starvation responses of E. amylovora. Challenged cells developed starvation-survival and viable but nonculturable responses, reduced their size, acquired rounded shapes and developed surface vesicles. Starved cells lost motility in a few days, but a fraction retained flagella. The expression of genes related to starvation, oxidative stress, motility, pathogenicity, and virulence was detected during the entire experimental period with different regulation patterns observed during the first 24 h. Further, starved cells remained as virulent as nonstressed cells. Overall, these results provide new knowledge on the biology of E. amylovora under conditions prevailing in nature, which could contribute to a better understanding of the life cycle of this pathogen.

10.1111/1574-6941.12290https://pubmed.ncbi.nlm.nih.gov/24476337