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Hidden parasite diversity in a European freshwater system

  • 1.

    Poulin, R. The functional importance of parasites in animal communities: many roles at many levels? Int. J. Parasitol. 29, 903–914 (1999).

  • 2.

    Hudson, P. J., Dobson, A. P. & Lafferty, K. D. Is a healthy ecosystem one that is rich in parasites? Trends Ecol. Evol. 21, 381–385 (2006).

  • 3.

    Lafferty, K. D. et al. Food webs and parasites in a salt marsh ecosystem. In: Collinge, S. & Ray, C. (Eds.), Disease ecology: Community Structure and Pathogen Dynamics (Oxford University Press, Oxford, 2006).

  • 4.

    Thomas, F., Poulin, R., de Meeus, T., Guegan, J.-F. & Renaud, F. Parasites and ecosystem engineering: what roles could they play? Oikos 84, 167–171 (1999).

    • Article
    • Google Scholar
  • 5.

    Frainer, A., McKie, B. G., Amundsen, P.-A., Knudsen, R. & Lafferty, K. D. Parasitism and the biodiversity-functioning relationship. Trends Ecol. Evol. 33, 1–9 (2018).

    • Article
    • Google Scholar
  • 6.

    Hudson, P. J., Dobson, A. P. & Newborn, D. Prevention of population cycles by parasite removal. Science 282, 2256–2258 (1998).

  • 7.

    Lefèvre, T. et al. The ecological significance of manipulative parasites. Trends Ecol. Evol. 24, 41–48 (2009).

  • 8.

    Lafferty, K. D. & Morris, A. K. Altered behavior of parasitized killifish increases susceptibility to predation by bird final hosts. Ecology 77, 1390–1397 (1996).

    • Article
    • Google Scholar
  • 9.

    Moore, J. Parasites and the Behavior of Animals. (Oxford University Press, Oxford, 2002).

  • 10.

    Mouritsen, K. N. & Poulin, R. Parasite-induced trophic facilitation exploited by a non-host predator: a manipulator’s nightmare. Int. J. Parasitol. 33, 1043–1050 (2003).

  • 11.

    Poulin, R. Parasite manipulation of host behavior: An update and frequently asked questions. Adv. Stud. Behav 41, 151–186 (2010).

    • Article
    • Google Scholar
  • 12.

    Lafferty, K. D. et al. Parasites in food webs: the ultimate missing links. Ecol. Lett. 11, 533–546 (2008).

  • 13.

    Thieltges, D. W., Engelsma, M. Y., Wendling, C. C. & Wegner, K. M. Parasites in the Wadden Sea food web. J. Sea Res. 82, 122–133 (2013).

  • 14.

    Wood, M. Parasites entangled in food webs. Trends Parasitol. 23, 8–10 (2007).

  • 15.

    Kuris, A. M. et al. Ecosystem energetic implications of parasite and free-living biomass in three estuaries. Nature 454, 515–518 (2008).

  • 16.

    Preston, D. L., Orlofske, S. A., Lambden, J. P. & Johnson, P. T. J. Biomass and productivity of trematode parasites in pond ecosystems. J. Anim. Ecol. 82, 509–517 (2013).

  • 17.

    Soldánová, M., Selbach, C. & Sures, B. The early worm catches the bird? Productivity and patterns of Trichobilharzia szidati cercarial emission from Lymnaea stagnalis. PLOS ONE 11, e0149678 (2016).

  • 18.

    Thieltges, D. W. et al. Production of marine trematode cercariae: a potentially overlooked path of energy flow in benthic systems. Mar. Ecol. Prog. Ser. 372, 147–155 (2008).

  • 19.

    Sures, B. Accumulation of heavy metals by intestinal helminths in fish: an overview and perspective. Parasitology 126, 53–60 (2003).

  • 20.

    Dobson, A., Lafferty, K. D., Kuris, A. M., Hechinger, R. F. & Jetz, W. Homage to Linnaeus: How many parasites? How many hosts? Proc. Natl. Acad. Sci. 105, 11482–11489 (2008).

  • 21.

    Lafferty, K. D. Environmental parasitology: What can parasites tell us about human impacts on the environment? Parasitol. Today 13, 251–255 (1997).

  • 22.

    Huspeni, T. C. & Lafferty, K. D. Using larval trematodes that parasitize snails to evaluate a saltmarsh restoration project. Ecol. Appl. 14, 795–804 (2004).

    • Article
    • Google Scholar
  • 23.

    Vidal-Martínez, V. M., Pech, D., Sures, B., Purucker, S. T. & Poulin, R. Can parasites really reveal environmental impact? Trends Parasitol. 26, 44–51 (2010).

  • 24.

    Shea, J. The use of parasites as indicators of ecosystem health as compared to insects in freshwater lakes of the Inland Northwest. Ecol. Indic. 13, 184–188 (2012).

    • Google Scholar
  • 25.

    Nachev, M. & Sures, B. Environmental parasitology: Parasites as accumulation bioindicators in the marine environment. J. Sea Res. 113, 45–50 (2016).

  • 26.

    Poulin, R. & Morand, S. Parasite Biodiversity. (Smithsonian Books, Washington, DC, 2004).

  • 27.

    Poulin, R. Parasite biodiversity revisited: frontiers and constraints. Int. J. Parasitol. 44, 581–589 (2014).

  • 28.

    Okamura, B., Hartigan, A. & Naldoni, J. Extensive uncharted biodiversity: The parasite dimension. Integr.Comp. Biol. 58, 1132–1145 (2018).

    • PubMed
    • Google Scholar
  • 29.

    Jorge, F. & Poulin, R. Poor geographical match between the distributions of host diversity and parasite discovery effort. Proc. R. Soc. B Biol. Sci. 285, 20180072 (2018).

    • Article
    • Google Scholar
  • 30.

    Harvell, C. D. et al. Climate warming and disease risks for terrestrial and marine biota. Science 296, 2158–2162 (2002).

  • 31.

    Altizer, S., Ostfeld, R. S., Johnson, P. T. J., Kutz, S. & Harvell, C. D. Climate change and infectious diseases: From evidence to a predictive framework. Science 341, 514–519 (2013).

  • 32.

    Jones, K. E. et al. Global trends in emerging infectious diseases. Nature 451, 990–993 (2008).

  • 33.

    Esch, G. W. The transmission of digenetic trematodes: Style, elegance, complexity. Integr. Comp. Biol. 42, 304–312 (2002).

  • 34.

    Hechinger, R. F., Lafferty, K. D., Huspeni, T. C., Brooks, A. J. & Kuris, A. M. Can parasites be indicators of free-living diversity? Relationships between species richness and the abundance of larval trematodes and of local benthos and fishes. Oecologia 151, 82–92 (2007).

  • 35.

    Soldánová, M., Selbach, C., Sures, B., Kostadinova, A. & Perez-Del-Olmo, A. Larval trematode communities in Radix auricularia and Lymnaea stagnalis in a reservoir system of the Ruhr River. Parasit Vectors 3, 56 (2010).

  • 36.

    Schwelm, J., Soldánová, M., Vyhlídalová, T., Sures, B. & Selbach, C. Small but diverse: larval trematode communities in the small freshwater planorbids Gyraulus albus and Segmentina nitida (Gastropoda: Pulmonata) from the Ruhr River, Germany. Parasitol. Res. 117, 241–255 (2018).

  • 37.

    Georgieva, S. et al. New cryptic species of the ‘revolutum’ group of Echinostoma (Digenea: Echinostomatidae) revealed by molecular and morphological data. Parasit Vectors 6, 64 (2013).

  • 38.

    Selbach, C. et al. Morphological and molecular data for larval stages of four species of Petasiger Dietz, 1909 (Digenea: Echinostomatidae) with an updated key to the known cercariae from the Palaearctic. Syst. Parasitol. 89, 153–166 (2014).

  • 39.

    Selbach, C., Soldánová, M., Georgieva, S., Kostadinova, A. & Sures, B. Integrative taxonomic approach to the cryptic diversity of Diplostomum spp. in lymnaeid snails from Europe with a focus on the ‘Diplostomum mergi’ species complex. Parasit Vectors 8, 300 (2015).

  • 40.

    Gordy, M. A., Kish, L., Tarrabain, M. & Hanington, P. C. A comprehensive survey of larval digenean trematodes and their snail hosts in central Alberta, Canada. Parasitol. Res. 115, 3867–3880 (2016).

  • 41.

    Bargues, M. D. et al. European Lymnaeidae (Mollusca: Gastropoda), intermediate hosts of trematodiases, based on nuclear ribosomal DNA ITS-2 sequences. Infect. Genet. Evol. 1, 85–107 (2001).

  • 42.

    Faltýnková, A. & Haas, W. Larval trematodes in freshwater molluscs from the Elbe to Danube rivers (Southeast Germany): before and today. Parasitol. Res. 99, 572–582 (2006).

  • 43.

    Faltýnková, A. Larval trematodes (Digenea) in molluscs from small water bodies near České Budějovice, Czech Republic. Acta Parasitol. 50, 49–55 (2005).

    • Google Scholar
  • 44.

    Żbikowska, E. Digenea species in chosen populations of freshwater snails in northern and central part of Poland. Wiadomości Parazytol. 53, 301–308 (2007).

    • Google Scholar
  • 45.

    Adam, M. E. & Lewis, J. W. The role of Lymnaea auricularia (Linnaeus) and Lymnaea peregra (Müller) (Gastropoda: Pulmonata) in the transmission of larval digeneans in the lower Thames valley. J. Mollus. Stud. 59, 1–6 (1993).

    • Article
    • Google Scholar
  • 46.

    Faltýnková, A., Sures, B. & Kostadinova, A. Biodiversity of trematodes in their intermediate mollusc and fish hosts in the freshwater ecosystems of Europe. Syst. Parasitol. 93, 283–293 (2016).

  • 47.

    Fecchio, A. et al. Avian host composition, local speciation and dispersal drive the regional assembly of avian malaria parasites in South American birds. Mol. Ecol. 28, 2681–2693 (2019).

  • 48.

    Glöer P. Die Süßwassergastropoden Nord- und Mitteleuropas. (ConchBooks, Hackenheim, 2002).

  • 49.

    Kuris, A. M., Blaustein, A. R. & Alio, J. J. Hosts as islands. Am. Nat. 116, 570–586 (1980).

  • 50.

    Kamiya, T., O’Dwyer, K., Nakagawa, S. & Poulin, R. Host diversity drives parasite diversity: meta-analytical insights into patterns and causal mechanisms. Ecography 37, 689–697 (2014).

    • Article
    • Google Scholar
  • 51.

    Poulin, R. & Mouritsen, K. N. Large-scale determinants of trematode infections in intertidal gastropods. Mar. Ecol. Prog. Ser. 254, 187–198 (2003).

  • 52.

    Combes, C. Parasitism: The ecology and evolution of intimate interactions. Interspecific interactions. (University of Chicago Press, Chicago, Illinois, 2001).

  • 53.

    Marcogliese, D. J. Parasites: Small players with crucial roles in the ecological theater. EcoHealth. 1, 151–164 (2004).

    • Article
    • Google Scholar
  • 54.

    Seppälä, O., Karvonen, A. & Valtonen, E. T. Parasite-induced change in host behaviour and susceptibility to predation in an eye fluke-fish interaction. Anim. Behav. 68, 257–263 (2004).

    • Article
    • Google Scholar
  • 55.

    Vivas Muñoz, J. C., Staaks, G. & Knopf, K. The eye fluke Tylodelphys clavata affects prey detection and intraspecific competition of European perch (Perca fluviatilis). Parasitol. Res. 116, 2561–2567 (2017).

  • 56.

    Padrós, F., Knudsen, R. & Blasco-Costa, I. Histopathological characterisation of retinal lesions associated to Diplostomum species (Platyhelminthes: Trematoda) infection in polymorphic Arctic charr Salvelinus alpinus. Int. J. Parasitol. Parasites Wildl. 7, 68–74 (2018).

  • 57.

    Poulin, R. Evolutionary Ecology of Parasites. (Princeton University Press, Princeton, 2007).

  • 58.

    Brown, R., Soldánová, M., Barrett, J. & Kostadinova, A. Small-scale to large-scale and back: larval trematodes in Lymnaea stagnalis and Planorbarius corneus in Central Europe. Parasitol. Res. 108, 137–150 (2011).

  • 59.

    Soldánová, M., Faltýnková, A., Scholz, T. & Kostadinova, A. Parasites in a man-made landscape: contrasting patterns of trematode flow in a fishpond area in Central Europe. Parasitology 138, 789–807 (2011).

  • 60.

    Lawton, S. P. et al. Unravelling the riddle of Radix: DNA barcoding for species identification of freshwater snail intermediate hosts of zoonotic digeneans and estimating their inter-population evolutionary relationships. Infect. Genet. Evol. 35, 63–74 (2015).

  • 61.

    Faltýnková, A., Našincová, V. & Kablásková, L. Larval trematodes (Digenea) of the great pond snail, Lymnaea stagnalis (L.), (Gastropoda, Pulmonata) in Central Europe: a survey of species and key to their identification. Parasite 14, 39–51 (2007).

  • 62.

    Faltýnková, A., Našincová, V. & Kablásková, L. Larval trematodes (Digenea) of planorbid snails (Gastropoda: Pulmonata) in Central Europe: a survey of species and key to their identification. Syst. Parasitol. 69, 155–178 (2008).

  • 63.

    Niewiadomska, K. Verification of the life-cycles of Diplostomum spathaceum (Rudolphi, 1819) and D. pseudospathaceum Niewiadomska, 1984 (Trematoda, Diplostomidae). Syst. Parasitol. 8, 23–31 (1986).

    • Article
    • Google Scholar
  • 64.

    Niewiadomska, K. & Kiseliene, V. Diplostomum cercariae (Digenea) in snails from Lithuania. II. Survey of species. Acta Parasitol. 39, 179–186 (1994).

    • Google Scholar
  • 65.

    Bush, A. O., Lafferty, K. D., Lotz, J. M. & Shostak, A. W. Parasitology meets ecology on its own terms: Margolis et al. revisited. J. Parasitol. 83, 575–83 (1997).

  • 66.

    Clarke, K. R. & Gorley, R. N. PRIMER v6: User Manual/Tutorial. PRIMER-E, Plymouth, 192pp. (2006).

  • 67.

    Esch, G. W., Curtis, L. A. & Barger, M. A. A perspective on the ecology of trematode communities in snails. Parasitology 123, 57–75 (2001).

    • Article
    • Google Scholar
  • 68.

    Hugghins, E. J. Life history of a strigeid trematode, Hysteromorpha triloba (Rudolphi, 1819) Lutz, 1931. II. Sporocyst through adult. T. Am. Micros. Soc. 73, 221 (1954).

    • Article
    • Google Scholar
  • 69.

    Našincová, V. & Scholz, T. The life cycle of Asymphylodora tincae (Modeer 1790) (Trematoda: Monorchiidae): a unique development in monorchiid trematodes. Parasitol. Res. 80, 192–197 (1994).

  • 70.

    Dubois, G. Synopsis des Strigeidae et des Diplostomatidae (Trematoda). Bull. Soc. Neuchl. Sci. Nat. 10, 1–258 (1968).

    • Google Scholar
  • 71.

    Taft, S. J. Some aspects of the larval development of Cyclocoelum obscurum (Trematoda: Cyclocoelidae). J. Parasitol. 59, 90 (1973).

  • 72.

    McLaughlin, J. D. Experimental studies on the life cycle of Cyclocoelum mutabile (Zeder) (Trematoda: Cyclocoelidae). Can. J. Zool. 54, 48–54 (1976).

  • 73.

    Tkach, V. V., Kudlai, O. & Kostadinova, A. Molecular phylogeny and systematics of the Echinostomatoidea Looss, 1899 (Platyhelminthes: Digenea). Int. J. Parasitol. 46, 171–185 (2016).

  • 74.

    Lagrue, C., Poulin, R. & Cohen, J. E. Parasitism alters three power laws of scaling in a metazoan community: Taylor’s law, density-mass allometry, and variance-mass allometry. Proc. Natl. Acad. Sci. 112, 1791–1796 (2015).

  • 75.

    Richgels, K. L. D., Hoverman, J. T. & Johnson, P. T. J. Evaluating the role of regional and local processes in structuring a larval trematode metacommunity of Helisoma trivolvis. Ecography 36, 854–863 (2013).

    • Article
    • Google Scholar
  • 76.

    Zhytova, E. P., Romanchuk, L. D., Guralska, S. V., Andreieva, O. Y. & Shvets, M. V. Circulation pathways of trematodes of freshwater gastropod mollusks in forest biocenoses of the Ukrainian Polissia. Vestn. Zool. 53, 13–22 (2019).

  • 77.

    Selbach, C. Biology and ecology of trematodes parasitizing aquatic snails in the Ruhr reservoir system in Germany. Doctoral Thesis. (University of Duisburg-Essen, 2016).


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