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Ectoparasite and bacterial population genetics and community structure indicate extent of bat movement across an island chain

  • Clifton D. McKee
  • , Alison J. Peel
  • , David T.S. Hayman
  • , Richard Suu-Ire
  • , Yaa Ntiamoa-Baidu
  • , Andrew A. Cunningham
  • , James L.N. Wood
  • , Colleen T. Webb
  • , Michael Y. Kosoy
  • Johns Hopkins Bloomberg School of Public Health
  • Griffith University Queensland
  • Massey University
  • University of Ghana
  • Zoological Society of London Institute of Zoology
  • Department of Veterinary Medicine
  • Colorado State University
  • Colorado State University
  • LLC

Research output: Contribution to journalArticlepeer-review

2 Citations (Scopus)

Abstract

Few studies have examined the genetic population structure of vector-borne microparasites in wildlife, making it unclear how much these systems can reveal about the movement of their associated hosts. This study examined the complex host-vector-microbe interactions in a system of bats, wingless ectoparasitic bat flies (Nycteribiidae), vector-borne microparasitic bacteria (Bartonella) and bacterial endosymbionts of flies (Enterobacterales) across an island chain in the Gulf of Guinea, West Africa. Limited population structure was found in bat flies and Enterobacterales symbionts compared to that of their hosts. Significant isolation by distance was observed in the dissimilarity of Bartonella communities detected in flies from sampled populations of Eidolon helvum bats. These patterns indicate that, while genetic dispersal of bats between islands is limited, some non-reproductive movements may lead to the dispersal of ectoparasites and associated microbes. This study deepens our knowledge of the phylogeography of African fruit bats, their ectoparasites and associated bacteria. The results presented could inform models of pathogen transmission in these bat populations and increase our theoretical understanding of community ecology in host-microbe systems.

Original languageEnglish
Pages (from-to)708-721
Number of pages14
JournalParasitology
Volume151
Issue number7
DOIs
Publication statusPublished - 1 Jun 2024

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 3 - Good Health and Well-being
    SDG 3 Good Health and Well-being

Keywords

  • Africa
  • Bartonella
  • Chiroptera
  • Nycteribiidae
  • bat flies
  • endosymbionts
  • host-microbe interactions
  • phylogeography

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