Parasite infection alters nitrogen cycling at the ecosystem scale.
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[1] A. Townsend,et al. Nitrogen Limitation of Pond Ecosystems on the Plains of Eastern Colorado , 2014, PloS one.
[2] Pieter T. J. Johnson,et al. Biomass and productivity of trematode parasites in pond ecosystems. , 2013, The Journal of animal ecology.
[3] Randall J. Bernot. Parasite–host elemental content and the effects of a parasite on host-consumer-driven nutrient recycling , 2013, Freshwater Science.
[4] Nobuhito Ohte,et al. Nematomorph parasites indirectly alter the food web and ecosystem function of streams through behavioural manipulation of their cricket hosts. , 2012, Ecology letters.
[5] M. J. Hatcher,et al. Diverse effects of parasites in ecosystems: linking interdependent processes , 2012 .
[6] W. Lewis,et al. Comparative adaptations of Aphanizomenon and Anabaena for nitrogen fixation under weak irradiance , 2012 .
[7] Alan J. Butler,et al. From Populations to Ecosystems: Theoretical Foundations for a New Ecological Synthesis , 2011 .
[8] D. Lustrino,et al. Biochemical profile of Biomphalaria glabrata (Mollusca: Gastropoda) after infection by Echinostoma paraensei (Trematoda: Echinostomatidae) , 2011, Parasitology Research.
[9] Dror Hawlena,et al. Predator control of ecosystem nutrient dynamics. , 2010, Ecology letters.
[10] O. Schmitz,et al. Herbivore physiological response to predation risk and implications for ecosystem nutrient dynamics , 2010, Proceedings of the National Academy of Sciences.
[11] P. Daszak,et al. The ecology and impact of chytridiomycosis: an emerging disease of amphibians. , 2010, Trends in ecology & evolution.
[12] S. Hall,et al. Stoichiometrically Explicit Food Webs: Feedbacks between Resource Supply, Elemental Constraints, and Species Diversity , 2009 .
[13] J. Elser,et al. Shifts in Lake N:P Stoichiometry and Nutrient Limitation Driven by Atmospheric Nitrogen Deposition , 2009, Science.
[14] A. P. Allen,et al. Towards an integration of ecological stoichiometry and the metabolic theory of ecology to better understand nutrient cycling. , 2009, Ecology letters.
[15] R. D. Doyle,et al. Periphyton nutrient limitation and nitrogen fixation potential along a wetland nutrient-depletion gradient , 2005, Wetlands.
[16] Lynn B. Martin,et al. Parasites as predators: unifying natural enemy ecology. , 2008, Trends in ecology & evolution.
[17] Eleca J. Dunham,et al. Ecosystem energetic implications of parasite and free-living biomass in three estuaries , 2008, Nature.
[18] M. Sukhdeo,et al. Parasite effects on isopod feeding rates can alter the host's functional role in a natural stream ecosystem. , 2008, International journal for parasitology.
[19] Randall J. Bernot,et al. Indirect effects of a parasite on a benthic community: an experiment with trematodes, snails and periphyton , 2007 .
[20] C. Suttle. Marine viruses — major players in the global ecosystem , 2007, Nature Reviews Microbiology.
[21] F. Sabater,et al. Effects of nutrients and light on periphyton biomass and nitrogen uptake in Mediterranean streams with contrasting land uses , 2007 .
[22] P. Vitousek,et al. Morella cerifera invasion and nitrogen cycling on a lowland Hawaiian lava flow , 2007, Biological Invasions.
[23] A. Rosemond,et al. Whole-system nutrient enrichment increases secondary production in a detritus-based ecosystem. , 2006, Ecology.
[24] Phil J. Hobbs,et al. Parasitic plants indirectly regulate below-ground properties in grassland ecosystems , 2006, Nature.
[25] Host ploidy, parasitism and immune defence in a coevolutionary snail–trematode system , 2006, Journal of evolutionary biology.
[26] Gary A. Lamberti,et al. Grazer species effects on epilithon nutrient composition , 2005 .
[27] J. Benstead,et al. Ecological stoichiometry in freshwater benthic systems: recent progress and perspectives , 2005 .
[28] J. Estes,et al. Introduced Predators Transform Subarctic Islands from Grassland to Tundra , 2005, Science.
[29] W. Becker. Metabolic interrelationship of parasitic trematodes and molluscs, especiallySchistosoma mansoni inBiomphalaria glabrata , 1980, Zeitschrift für Parasitenkunde.
[30] R. Hall,et al. Exotic snails dominate nitrogen and carbon cycling in a highly productive stream , 2003 .
[31] J. Elser,et al. Growth rate–stoichiometry couplings in diverse biota , 2003 .
[32] Andrea F. Huberty,et al. Nitrogen in Insects: Implications for Trophic Complexity and Species Diversification , 2002, The American Naturalist.
[33] William F. Fagan,et al. Nutritional constraints in terrestrial and freshwater food webs , 2000, Nature.
[34] U. Sommer,et al. The nutrient stoichiometry of benthic microalgal growth: Redfield proportions are optimal , 1999 .
[35] Kevin D. Lafferty,et al. Altered Behavior of Parasitized Killifish Increases Susceptibility to Predation by Bird Final Hosts , 1996 .
[36] J. Elser,et al. Factors associated with interannual and intraannual variation in nutrient limitation of phytoplankton growth in castle lake, California , 1995 .
[37] Robert W. Sterner,et al. Algal nutrient limitation and the nutrition of aquatic herbivores , 1994 .
[38] C. Lowenberger,et al. In vitro uptake and incorporation of [3H]glucosamine and [3H]leucine by Plagiorchis elegans metacercariae. , 1994, The Journal of parasitology.
[39] Peter M. Vitousek,et al. Biological invasions and ecosystem processes : towards an integration of population biology and ecosystem studies , 1990 .
[40] P. Mccormick,et al. Effects of Snail Grazing on Benthic Algal Community Structure in Different Nutrient Environments , 1989, Journal of the North American Benthological Society.
[41] W. Lewis,et al. Phytoplankton nutrient limitation in Colorado mountain lakes , 1988 .
[42] S. Anagnostakis,et al. Chestnut blight: the classical problem of an introduced pathogen , 1987 .
[43] G. Esch,et al. Histopathology of larval trematode infections in the freshwater pulmonate snail , 1987 .
[44] A. Siddiqui,et al. Biochemical composition and carbohydrate metabolism of the metacercariae of Clinostomum complanatum (Trematoda: Digenea) , 1981, Journal of Helminthology.
[45] A. J. Burky,et al. Comparison of carbon and nitrogen content of infected and uninfected snails, Succinea ovalis, and the trematode Leucochloridium variae. , 1979, The Journal of parasitology.
[46] R. D. Hamilton,et al. Aquatic acetylene-reduction techniques: solutions to several problems. , 1976, Canadian journal of microbiology.
[47] J. B. Jennings,et al. Calorific values in the phylum Platyhelminthes: the relationship between potential energy, mode of life and the evolution of entoparasitism. , 1974, The Biological bulletin.
[48] R. A. Campbell. Influence of temperature, host, and host size on metacercarial development of Cotylurus flabelliformis (Trematoda: Strigeidae). , 1973, Transactions of the American Microscopical Society.
[49] R. A. Campbell. Studies on the biology of the life cycle of Cotylurus flabelliformis (Trematoda: Strigeidae). , 1973, Transactions of the American Microscopical Society.
[50] D. Pascoe,et al. Variations in the metabolism of the daughter sporocysts of Cercaria dichotoma Lebour, 1911 containing metacercariae, during starvation in sea water and in L-glutamine and glucose solutions. , 1970 .
[51] L. Margolis,et al. Life Span, Maturation, and Growth of Two Hemiurid Trematodes, Tubulovesicula lindbergi and Lecithaster gibbosus, in Pacific Salmon (Genus Oncorhynchus) , 1969 .
[52] B. Dawes. The migration of juvenile forms of Fasciola hepatica L. through the wall of the intestines in the mouse, with some observations on food and feeding , 1963, Parasitology.
[53] J. A. Clegg,et al. Egg-shell formation in trematodes and cestodes. , 1959, Experimental parasitology.
[54] L. Olivier,et al. Lymnaeid snails as second intermediate hosts of the strigeid trematode, Cotylurus flabellifortnis (Faust, 1917). , 1944 .
[55] W. W. Cort. Brackett, S Olivier, L, Lymnaeid snails as second intermediate hosts of the strigeid Trematode Cotylurus flabelliformis Faust, 1917 , 1944 .