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Updated: Jul 26, 2025

Bacteriophage Effectiveness for Biocontrol of Foodborne Pathogens Evaluated via High-Throughput Settings
Published on: August 19, 2021
Suboptimal environmental conditions prolong phage epidemics in bacterial populations
Henry Goehlich1, Olivia Roth1,2, Michael Sieber3
1GEOMAR, Helmholtz Centre for Ocean Research, Marine Evolutionary Ecology, Kiel, Germany.
Bacteria exposed to filamentous phages evolve resistance, but environmental conditions like salinity impact the speed of this evolution. Suboptimal conditions slow resistance, potentially prolonging phage epidemics and increasing disease risk.
Area of Science:
- Microbiology
- Evolutionary Biology
- Ecology
Background:
- Filamentous phages infect bacteria, impacting their fitness through costly viral particle production versus potential benefits from accessory genes.
- Bacterial resistance evolution to phages can shorten epidemics, but is influenced by abiotic factors.
- The effect of environmental conditions on the dynamics of host resistance evolution to phages is not well understood.
Purpose of the Study:
- To investigate how different salinity levels affect the evolution of bacterial resistance to filamentous phages.
- To determine the impact of environmental conditions on the rate and mechanisms of phage resistance evolution in bacteria.
- To model the relationship between environmental conditions, bacterial growth, and phage resistance evolution.
Main Methods:
- Experimental evolution of Vibrio alginolyticus in the presence of a filamentous phage under three salinity conditions: ambient, reduced, and fluctuating.
- Monitoring the emergence and replacement of resistance mechanisms: superinfection exclusion (SIE) and surface receptor mutants (SRM).
- Developing and parameterizing a mathematical model to explain observed evolutionary trajectories.
Main Results:
- Bacteria rapidly evolved resistance via SIE across all salinities, incurring a growth cost.
- SIE was gradually replaced by fitter surface receptor mutants (SRM), with replacement being faster under ambient and fluctuating salinities.
- Low salinity environments significantly slowed the evolution of fitter resistance mechanisms (SRM).
Conclusions:
- Suboptimal environmental conditions, such as low salinity, slow down bacterial phage resistance evolution, potentially prolonging phage epidemics.
- Environmental variability and suboptimal conditions may favor the persistence of phages in natural environments.
- Future ocean conditions could increase the risk of phage-born pathogenic bacteria, impacting marine ecosystems and human health.
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