Coinfection outcome in an opportunistic pathogen depends on the inter-strain interactions
Hanna Kinnula1, Johanna Mappes1, Lotta-Riina Sundberg2
1Department of Biological and Environmental Science (and Nanoscience Center), Jyvaskyla, Finland.
Background:
In nature, organisms are commonly coinfected by two or more parasite strains, which has been shown to influence disease virulence. Yet, the effects of coinfections of environmental opportunistic pathogens on disease outcome are still poorly known, although as host-generalists they are highly likely to participate in coinfections. We asked whether coinfection with conspecific opportunistic strains leads to changes in virulence, and if these changes are associated with bacterial growth or interference competition. We infected zebra fish (Danio rerio) with three geographically and/or temporally distant environmental opportunist Flavobacterium columnare strains in single and in coinfection. Growth of the strains was studied in single and in co-cultures in liquid medium, and interference competition (growth-inhibiting ability) on agar.
Results:
The individual strains differed in their virulence, growth and ability for interference competition. Number of coinfecting strains significantly influenced the virulence of infection, with three-strain coinfection differing from the two-strain and single infections. Differences in virulence seemed to associate with the identity of the coinfecting bacterial strains, and their pairwise interactions. This indicates that benefits of competitive ability (production of growth-inhibiting compounds) for virulence are highest when multiple strains co-occur, whereas the high virulence in coinfection may be independent from in vitro bacterial growth.
Conclusions:
Intraspecific competition can lead to plastic increase in virulence, likely caused by faster utilization of host resources stimulated by the competitive interactions between the strains. However, disease outcome depends both on the characteristics of individual strains and their interactions. Our results highlight the importance of strain interactions in disease dynamics in environments where various pathogen genotypes co-occur.
Insights
Coinfection with multiple strains of the opportunistic pathogen Flavobacterium columnare can increase disease virulence in zebrafish. Strain interactions, rather than bacterial growth, appear to drive these virulence changes, highlighting the importance of pathogen diversity in disease dynamics.
Area of Science:
- Microbiology
- Ecology
- Pathogen Dynamics
Background:
- Organisms are frequently coinfected by multiple parasite strains, influencing disease virulence.
- The impact of coinfections by environmental opportunistic pathogens on disease outcomes is poorly understood.
- Host-generalist opportunistic pathogens are likely to participate in coinfections.
Purpose of the Study:
- To investigate if coinfection with conspecific opportunistic strains alters virulence.
- To determine if changes in virulence are associated with bacterial growth or interference competition.
Main Methods:
- Zebrafish (Danio rerio) were infected with three geographically and/or temporally distinct Flavobacterium columnare strains in single and coinfection scenarios.
- Bacterial growth was assessed in single and co-cultures in liquid medium.
- Interference competition, specifically growth-inhibiting ability, was evaluated on agar plates.
Main Results:
- Individual Flavobacterium columnare strains exhibited varying levels of virulence, growth, and interference competition.
- The number of coinfecting strains significantly impacted infection virulence, with three-strain coinfections differing from single and two-strain infections.
- Virulence differences were linked to the specific coinfecting bacterial strains and their pairwise interactions, suggesting competitive ability benefits virulence most in multi-strain scenarios.
Conclusions:
- Intraspecific competition can lead to increased virulence, potentially due to enhanced host resource utilization driven by competitive interactions.
- Disease outcomes are a result of both individual strain characteristics and their interactions.
- Strain interactions are crucial for understanding disease dynamics in environments with diverse pathogen genotypes.
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