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Latitudinal gradient in the taxonomic composition of parasite communities

Published online by Cambridge University Press:  12 November 2010

R. Poulin*
Affiliation:
Department of Zoology, University of Otago, PO Box 56, Dunedin9054, New Zealand
T.L.F Leung
Affiliation:
Zoology, School of Environmental and Rural Science, University of New England, Armidale, NSW2351, Australia
*

Abstract

Although latitudinal gradients in diversity have been well studied, latitudinal variation in the taxonomic composition of communities has received less attention. Here, we use a large dataset including 950 surveys of helminth endoparasite communities in 650 species of vertebrate hosts to test for latitudinal changes in the relative contributions of trematodes, cestodes, nematodes and acanthocephalans to parasite assemblages. Although the species richness of helminth communities showed no consistent latitudinal variation, their taxonomic composition varied as a function of both host type and latitude. First, trematodes and acanthocephalans accounted for a higher proportion of species in helminth communities of fish, whereas nematodes achieved a higher proportion of the species in communities of bird and especially mammal hosts. Second, the proportion of trematodes in helminth communities of birds and mammals increased toward higher latitudes. Finally, the proportion of nematodes per community increased toward lower latitudes regardless of the type of host. We present tentative explanations for these patterns, and argue that new insights in parasite community ecology can be gained by searching for latitudinal gradients not only in parasite species richness, but also in the taxonomic composition of parasite assemblages.

Type
Research Papers
Copyright
Copyright © Cambridge University Press 2010

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References

Anderson, R.C. (1996) Why do fish have so few roundworm (nematode) parasites? Environmental Biology of Fishes 46, 15.CrossRefGoogle Scholar
Beveridge, I. & Spratt, D.M. (1996) The helminth fauna of Australasian marsupials: origins and evolutionary biology. Advances in Parasitology 37, 135254.CrossRefGoogle Scholar
Beveridge, I., Chilton, N.B. & Spratt, D.M. (2002) The occurrence of species flocks in the nematode genus Cloacina (Strongyloidea: Cloacininae), parasitic in the stomachs of kangaroos and wallabies. Australian Journal of Zoology 50, 597620.CrossRefGoogle Scholar
Brooks, D.R. & McLennan, D.A. (1993) Parascript: parasites and the language of evolution. Washington, Smithsonian Institution Press.Google Scholar
Bucknell, D., Hoste, H., Gasser, R.B. & Beveridge, I. (1996) The structure of the community of strongyloid nematodes of domestic equids. Journal of Helminthology 70, 185192.CrossRefGoogle ScholarPubMed
Choudhury, A. & Dick, T.A. (2000) Richness and diversity of helminth communities in tropical freshwater fishes: empirical evidence. Journal of Biogeography 27, 935956.CrossRefGoogle Scholar
Galaktionov, K.V. & Skirnisson, K. (2007) New data on Microphallus breviatus Deblock & Maillard, 1975 (Microphallidae: Digenea) with emphasis on the evolution of dixenous life cycles of microphallids. Parasitology Research 100, 963971.CrossRefGoogle ScholarPubMed
Inglis, W.G. (1971) Speciation in parasitic nematodes. Advances in Parasitology 9, 201223.Google ScholarPubMed
Krasnov, B.R., Shenbrot, G.I., Khokhlova, I.S., Mouillot, D. & Poulin, R. (2008) Latitudinal gradients in niche breadth: empirical evidence from haematophagous ectoparasites. Journal of Biogeography 35, 592601.CrossRefGoogle Scholar
Macpherson, E. (2002) Large-scale species richness gradients in the Atlantic Ocean. Proceedings of the Royal Society of London B 269, 17151720.CrossRefGoogle ScholarPubMed
Poulin, R. (2001) Another look at the richness of helminth communities in tropical freshwater fish. Journal of Biogeography 28, 737743.CrossRefGoogle Scholar
Poulin, R. & Leung, T.L.F. (2010) Taxonomic resolution in parasite community studies: are things getting worse? Parasitology 137, 19671973.CrossRefGoogle ScholarPubMed
Poulin, R. & Morand, S. (2004) Parasite biodiversity. Washington DC, Smithsonian Institution Press.Google Scholar
Poulin, R. & Mouritsen, K.N. (2003) Large-scale determinants of trematode infections in intertidal gastropods. Marine Ecology Progress Series 254, 187198.CrossRefGoogle Scholar
Poulin, R., Beveridge, I. & Spratt, D.M. (2008) Spatial scaling laws do not structure strongyloid nematode communities in macropodid hosts. International Journal for Parasitology 38, 11711177.CrossRefGoogle Scholar
Rohde, K. & Heap, M. (1998) Latitudinal differences in species and community richness and in community structure of metazoan endo- and ectoparasites of marine teleost fish. International Journal for Parasitology 28, 461474.CrossRefGoogle ScholarPubMed
Schad, G.A. (1963) Niche diversification in a parasite species flock. Nature 198, 404406.CrossRefGoogle Scholar
Thieltges, D.W., Fredensborg, B.L., Studer, A. & Poulin, R. (2009) Large-scale patterns in trematode richness and infection levels in marine crustacean hosts. Marine Ecology Progress Series 389, 139147.CrossRefGoogle Scholar
Walther, B.A., Cotgreave, P., Price, R.D., Gregory, R.D. & Clayton, D.H. (1995) Sampling effort and parasite species richness. Parasitology Today 11, 306310.CrossRefGoogle ScholarPubMed
Willig, M.R., Kaufman, D.M. & Stevens, R.D. (2003) Latitudinal gradients of biodiversity: pattern, process, scale and synthesis. Annual Review of Ecology, Evolution, and Systematics 34, 273309.CrossRefGoogle Scholar
Witman, J.D. & Roy, K. (2009) Marine macroecology. Chicago, University of Chicago Press.CrossRefGoogle Scholar