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Phage co-transport with hyphal-riding bacteria fuels bacterial invasion in a water-unsaturated microbial model system
Xin You1, René Kallies1, Ingolf Kühn2,3,4
1Helmholtz Centre for Environmental Research - UFZ, Department of Environmental Microbiology, Permoserstr. 15, 04318, Leipzig, Germany.
Abstract:
Nonmotile microorganisms often enter new habitats by co-transport with motile microorganisms. Here, we report that also lytic phages can co-transport with hyphal-riding bacteria and facilitate bacterial colonization of a new habitat. This is comparable to the concept of biological invasions in macroecology. In analogy to invasion frameworks in plant and animal ecology, we tailored spatially organized, water-unsaturated model microcosms using hyphae of Pythium ultimum as invasion paths and flagellated soil-bacterium Pseudomonas putida KT2440 as carrier for co-transport of Escherichia virus T4. P. putida KT2440 efficiently dispersed along P. ultimum to new habitats and dispatched T4 phages across air gaps transporting ≈0.6 phages bacteria-1. No T4 displacement along hyphae was observed in the absence of carrier bacteria. If E. coli occupied the new habitat, T4 co-transport fueled the fitness of invading P. putida KT2440, while the absence of phage co-transport led to poor colonization followed by extinction. Our data emphasize the importance of hyphal transport of bacteria and associated phages in regulating fitness and composition of microbial populations in water-unsaturated systems. As such co-transport seems analogous to macroecological invasion processes, hyphosphere systems with motile bacteria and co-transported phages could be useful models for testing hypotheses in invasion ecology.
Insights
Lytic phages can hitchhike with bacteria on fungal hyphae to colonize new environments. This bacterial-phage co-transport enhances bacterial survival and invasion success in new habitats.
Area of Science:
- Microbial Ecology
- Ecology
- Microbiology
Background:
- Nonmotile microorganisms rely on motile ones for dispersal.
- Biological invasions offer a framework for understanding microbial colonization.
Purpose of the Study:
- To investigate the co-transport of lytic phages with bacteria using fungal hyphae.
- To explore the role of this co-transport in microbial colonization and fitness.
Main Methods:
- Utilized a model microcosm with Pythium ultimum hyphae and Pseudomonas putida KT2440 bacteria.
- Co-transported Escherichia virus T4 (T4 phages) with P. putida KT2440 across air gaps.
- Assessed bacterial colonization and fitness in the presence and absence of phage co-transport.
Main Results:
- P. putida KT2440 facilitated T4 phage dispersal along hyphae, transporting approximately 0.6 phages per bacterium.
- Phage co-transport significantly enhanced P. putida KT2440 fitness and colonization success.
- Absence of phage co-transport led to poor bacterial colonization and extinction.
Conclusions:
- Hyphal transport of bacteria and associated phages is crucial for microbial population dynamics in water-unsaturated systems.
- Bacterial-phage co-transport systems can serve as models for studying macroecological invasion processes.
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