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Feeding of Ticks on Animals for Transmission and Xenodiagnosis in Lyme Disease Research
Published on: August 31, 2013
Competition Between Strains of Borrelia afzelii in Immature Ixodes ricinus Ticks Is Not Affected by Season
Dolores Genné1, Anouk Sarr1, Olivier Rais2
1Laboratory of Ecology and Evolution of Parasites, Institute of Biology, University of Neuchâtel, Neuchâtel, Switzerland.
Abstract:
Vector-borne pathogens often consist of genetically distinct strains that can establish co-infections in the vertebrate host and the arthropod vector. Co-infections (or mixed infections) can result in competitive interactions between strains with important consequences for strain abundance and transmission. Here we used the spirochete bacterium, Borrelia afzelii, as a model system to investigate the interactions between strains inside its tick vector, Ixodes ricinus. Larvae were fed on mice infected with either one or two strains of B. afzelii. Engorged larvae were allowed to molt into nymphs that were subsequently exposed to three seasonal treatments (artificial summer, artificial winter, and natural winter), which differed in temperature and light conditions. We used strain-specific qPCRs to quantify the presence and abundance of each strain in the immature ticks. Co-infection in the mice reduced host-to-tick transmission to larval ticks and this effect was maintained in the resultant nymphs at 1 and 4 months after the larva-to-nymph molt. Competition between strains in co-infected ticks reduced the abundance of both strains. This inter-strain competition occurred in the three life stages that we investigated: engorged larvae, recently molted nymphs, and overwintered nymphs. The abundance of B. afzelii in the nymphs declined by 40.5% over a period of 3 months, but this phenomenon was not influenced by the seasonal treatment. Future studies should investigate whether inter-strain competition in the tick influences the subsequent strain-specific transmission success from the tick to the vertebrate host.
Insights
Co-infections with multiple Borrelia afzelii strains in ticks reduce pathogen abundance. This inter-strain competition impacts pathogen levels within the tick vector, potentially affecting disease transmission dynamics.
Area of Science:
- Vector-borne diseases
- Microbial ecology
- Epidemiology
Background:
- Vector-borne pathogens often exist as distinct strains capable of co-infecting hosts and vectors.
- Co-infections can lead to competitive interactions between strains, influencing their abundance and transmission dynamics.
Purpose of the Study:
- To investigate strain interactions of Borrelia afzelii within its tick vector, Ixodes ricinus.
- To determine the impact of co-infection on strain abundance and persistence in ticks under different conditions.
Main Methods:
- Larval ticks were fed on mice infected with single or multiple Borrelia afzelii strains.
- Engorged larvae molted into nymphs and were subjected to simulated seasonal conditions (summer, winter).
- Strain-specific quantitative PCR (qPCR) was used to quantify pathogen abundance in larval and nymphal ticks.
Main Results:
- Co-infection in mice decreased pathogen transmission to larval ticks, an effect persisting in nymphs.
- Inter-strain competition within ticks reduced the abundance of both Borrelia afzelii strains.
- Pathogen decline in nymphs over 3 months was not affected by seasonal treatments.
Conclusions:
- Competition between Borrelia afzelii strains occurs at multiple tick life stages.
- Co-infection dynamics in the vertebrate host influence pathogen load in the tick vector.
- Further research is needed to assess if tick-stage competition affects pathogen transmission to new hosts.

