Spatiotemporal dynamics of emerging pathogens in questing Ixodes ricinus

Elena Claudia Coipan1, Setareh Jahfari, Manoj Fonville

  • 1Centre for Infectious Disease Control, National Institute for Public Health and Environment-RIVM, Bilthoven, Netherlands. claudia.coipan@rivm.nl

Insights

Questing ticks in The Netherlands carry multiple pathogens, including Borrelia burgdorferi sensu lato (Lyme disease) and Rickettsia helvetica. High coinfection rates highlight the need to assess diverse tick-borne pathogen risks after bites.

Area of Science:

  • Veterinary Entomology
  • Infectious Diseases
  • Public Health

Background:

  • Ixodes ricinus ticks are vectors for Borrelia burgdorferi sensu lato, the cause of Lyme disease.
  • Previous research identified Rickettsia helvetica, Anaplasma phagocytophilum, Neoehrlichia mikurensis, and Babesia species in Dutch ticks.
  • The acarological risk of tick-borne pathogens (TBPs) in The Netherlands requires comprehensive assessment.

Purpose of the Study:

  • To assess the acarological risk of exposure to various tick-borne pathogens in The Netherlands.
  • To analyze the spatiotemporal distribution and prevalence of TBPs in questing Ixodes ricinus ticks.
  • To investigate coinfection patterns among different TBPs in ticks.

Main Methods:

  • Questing ticks (nymphs and adults) were collected monthly from 2000 to 2010 across multiple sites in The Netherlands.
  • Individual tick analysis was performed using an array-approach to detect the presence of TBPs.
  • Data from this study and previous research were collated to create pathogen distribution maps and analyze spatiotemporal variations.

Main Results:

  • Rickettsia helvetica (31.1%) and Borrelia burgdorferi sensu lato (11.8%) were the most prevalent TBPs, found in all surveyed areas.
  • Neoehrlichia mikurensis (5.6%), Anaplasma phagocytophilum (0.8%), and Babesia spp. (1.7%) were detected in most, but not all, areas.
  • Overall, 37% of ticks were infected with at least one TBP, and 6.3% were coinfected; one-third of Borrelia-positive ticks harbored additional pathogens.

Conclusions:

  • The high diversity and coinfection rates of TBPs in Ixodes ricinus ticks underscore the complexity of tick-borne disease transmission.
  • Specific coinfection patterns suggest potential interactions between pathogens and their reservoir hosts.
  • Evaluating the risk of infection and disease following tick bites necessitates considering the co-occurrence of multiple tick-borne pathogens.

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