Introduced cryptic species of parasites exhibit different invasion pathways

Osamu Miura1, Mark E Torchin, Armand M Kuris

  • 1Department of Ecology and Evolutionary Biology, Graduate School of Life Sciences, University of Tohoku, Aobayama, Sendai, 980-8578 Japan. 3-ura@biology.tohoku.ac.jp

Insights

Invasive Asian mud snails introduced parasites to North America via seed oysters. One parasite experienced a genetic bottleneck, while another, likely dispersed by birds, established later.

Area of Science:

  • Ecology
  • Evolutionary Biology
  • Parasitology

Background:

  • Invasive species can disrupt ecosystems by introducing pathogens.
  • Complex life cycles of parasites require specific hosts, influencing their establishment in new regions.
  • Global trade facilitates the introduction of exotic hosts and their associated parasites.

Purpose of the Study:

  • To investigate the invasion pathways of two digenean trematode parasites and their host, the Asian mud snail (Batillaria attramentaria).
  • To understand the genetic consequences of introduction for both the host and its parasites.
  • To differentiate between parasite introduction via host transport versus natural dispersal.

Main Methods:

  • Molecular genetics (DNA sequencing) was used to analyze snail and parasite haplotypes.
  • Comparison of genetic variation in native (Japan) and introduced (North America) populations.
  • Phylogenetic analysis to infer invasion routes and population dynamics.

Main Results:

  • Asian mud snail populations in North America originated from Japan, introduced via seed oysters.
  • Two cryptic trematode species were introduced with the snails.
  • One trematode species showed reduced genetic variation, indicating a bottleneck, while the other maintained high genetic diversity.

Conclusions:

  • Parasite introduction is linked to the host's invasion pathway, often facilitated by human activities like oyster cultivation.
  • Differential genetic responses of parasites suggest varying introduction mechanisms (e.g., host transport vs. natural dispersal by vectors like birds).
  • Understanding invasion pathways is crucial for managing and mitigating the spread of diseases in a globalized world.

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