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Generating super-shedders: co-infection increases bacterial load and egg production of a gastrointestinal helminth
Sandra Lass1, Peter J Hudson, Juilee Thakar
1Center for Infectious Disease Dynamics, Pennsylvania State University, University Park, PA 16802, USA.
Abstract:
Co-infection by multiple parasites is common within individuals. Interactions between co-infecting parasites include resource competition, direct competition and immune-mediated interactions and each are likely to alter the dynamics of single parasites. We posit that co-infection is a driver of variation in parasite establishment and growth, ultimately altering the production of parasite transmission stages. To test this hypothesis, three different treatment groups of laboratory mice were infected with the gastrointestinal helminth Heligmosomoides polygyrus, the respiratory bacterial pathogen Bordetella bronchiseptica lux(+) or co-infected with both parasites. To follow co-infection simultaneously, self-bioluminescent bacteria were used to quantify infection in vivo and in real-time, while helminth egg production was monitored in real-time using faecal samples. Co-infection resulted in high bacterial loads early in the infection (within the first 5 days) that could cause host mortality. Co-infection also produced helminth 'super-shedders'; individuals that chronically shed the helminth eggs in larger than average numbers. Our study shows that co-infection may be one of the underlying mechanisms for the often-observed high variance in parasite load and shedding rates, and should thus be taken into consideration for disease management and control. Further, using self-bioluminescent bacterial reporters allowed quantification of the progression of infection within the whole animal of the same individuals at a fine temporal scale (daily) and significantly reduced the number of animals used (by 85%) compared with experiments that do not use in vivo techniques. Thus, we present bioluminescent imaging as a novel, non-invasive tool offering great potential to be taken forward into other applications of infectious disease ecology.
Insights
Co-infection with parasites alters disease dynamics, leading to increased bacterial loads and
Area of Science:
- Parasitology
- Microbiology
- Immunology
Background:
- Co-infections involving multiple parasites are prevalent in individuals.
- Parasite interactions, including competition and immune responses, influence infection dynamics.
- Co-infection is hypothesized to drive variation in parasite establishment, growth, and transmission.
Purpose of the Study:
- To investigate the impact of co-infection on parasite dynamics.
- To analyze the interplay between a gastrointestinal helminth and a respiratory bacterium.
- To evaluate the utility of bioluminescent imaging for real-time infection monitoring.
Main Methods:
- Mice were infected with Heligmosomoides polygyrus, Bordetella bronchiseptica lux(+), or both.
- Self-bioluminescent bacteria were used for in vivo, real-time quantification of bacterial infection.
- Helminth egg production was monitored daily via fecal samples.
Main Results:
- Co-infection led to high early bacterial loads, potentially causing host mortality.
- Co-infected individuals exhibited 'super-shedder' status for helminth eggs.
- Bioluminescent imaging enabled precise, daily tracking of infection progression in individual animals.
Conclusions:
- Co-infection significantly alters parasite loads and shedding patterns, impacting disease variance.
- Understanding co-infection dynamics is crucial for effective disease management and control strategies.
- Bioluminescent imaging offers a powerful, non-invasive tool for studying infectious disease ecology with reduced animal usage.
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