Abstract
Following a reduction in fish populations in 2004–2005, a new, single annual pulse of pelagic flatworms was observed in early summer during 2006–2009 in Liuxihe, a freshwater reservoir in South China. As soon as these worms appear, Daphnia galeata retreats into dormancy, one month earlier (July) in the presence of flatworms than previously observed (August) with fish, while the population of the related Ceriodaphnia quadrangula tends to increase. We show, through in situ lake sampling, in large enclosures and by laboratory observations, that Ceriodaphnia, although perhaps competitively inferior in its ability to acquire algal food, has a higher tolerance to flatworm toxins. As a result, Ceriodaphnia manages to coexist with and proliferate in the presence of the flatworm. Observations in the laboratory suggest that flatworm population autoregulates by being sensitive to their own toxins and that Ceriodaphnia, even if prey to the worms, likely incurs more benefit than cost from their presence.





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References
Beisner, B. E., E. Mccauley & F. J. Wrona, 1996. Temperature-mediated dynamics of planktonic food chains: the effect of an invertebrate carnivore. Freshwater Biology 35: 219–232.
Beisner, B. E., E. Mccauley & F. J. Wrona, 1997. The influence of temperature and food chain length on plankton predator prey dynamics. Canadian Journal of fisheries and Aquatic Science 54: 586–595.
Blaustein, L., 1990. Evidence for predatory flatworms as organizers of zooplankton and mosquito community structure in rice fields. Hydrobiologia 199: 179–191.
Blaustein, L. & H. J. Dumont, 1990. Typhloplanid flatworms (Mesostoma and related genera): mechanisms of predation and evidence that they structure aquatic invertebrate communities. Hydrobiologia 198: 68–77.
Caramujo, M. J. & M. J. Boavida, 2000. Dynamics of Daphnia hyalina × galeata in Castelo-do-Bode reservoir: the effect of food availability and flatworm predation. Aquatic Ecology 34: 155–163.
Danie, W. S. & D. C. Scott, 1982. Competition among cladocerans. Ecology 63: 1004–1015.
Delp, A. M., 2002. Flatworm predation on juvenile freshwater mussels. Ms Sci Thesis, Southwest Missouri State University, USA: 31 pp.
De Roeck, E. R. M., T. Artois & L. Brendonck, 2005. Consumptive and non-consumptive effects of turbellarians (Mesostoma sp.) predation on anostracans. Hydrobiologia 542: 103–111.
Dumont, H. J. & I. Carels, 1987. Flatworm predators (Mesostoma cf. lingua) release a toxin to catch planktonic prey. Limnology and Oceanography 32: 699–702.
Dumont, H. J. & S. Schorreels, 1990. A laboratory study of the feeding of Mesostoma lingua (Schmidt) (Turbellaria: Neorhabdocoela) on Daphnia magna Straus at four different temperatures. Hydrobiologia 198: 79–89.
Dumont, H. J., I. Miron, U. Dall’Asta, W. Decraemer, C. Claus & D. Somers, 1973. Limnological aspects of some Moroccon Atlas Lakes, with reference to some physical and chemical variables, the nature and distribution of the phyto- and zooplankton, including a note on the possibilities for the development of an inland fishery. Internationale Revue der gesamten Hydrobiologie 58: 33–60.
Dumont, H. J. & S. V. Negrea, 2002. Introduction to the Class Branchiopoda. Guides to the Identification of the Microinvertebrates of the Continental Waters of the World, Vol. 19. Backhuys, Leiden: 398 pp.
Hillebrand, H., C. D. Dürselen, D. Kirschtel, U. Pollingher & T. Zohary, 1999. Biovolume calculation for pelagic and benthic microalgae. Journal of Phycology 35: 403–424.
Hutchinson, G. E., 1967. A Treatise on Limnology, Vol. 2. Wiley, New York: 1115 pp.
Kolasa, J., 2001. Flatworms: Turbellaria and Nemertea. In Thorp, J. H. & A. P. Covich (eds), Ecology and Classification of North American Freshwater Invertebrates. Academic press, New York: 155–180.
Lin, Q. Q., S. S. Duan, R. Hu & B. P. Han, 2003. Zooplankton distribution in tropical reservoirs, South China. International Review of Hydrobiology 88: 602–613.
Maly, E. J., S. Schoenholtz & M. T. Arts, 1980. The influence of flatworm predation on zooplankton inhabiting small ponds. Hydrobiologia 76: 233–240.
Nandini, S., S. S. S. Sarma & H. J. Dumont, 2010. Effects of the predatory turbellarian Stenostomum sp. on the population dynamics of Euchlanis dilatata, Plationus patulus (Rotifera) and Moina macrocopa (Cladocera). Hydrobiologia (in press).
Pourriot, R., 1965. Recherches sur l’Ecologie des Rotifères. Vie Milieu Supplement 21: 224 pp.
Rocha, O., T. Matsumura-Tundisi, J. G. Tundisi & C. F. Fonseca, 1990. Predation on and by pelagic Turbellaria in some lakes in Brasil. Hydrobiologia 198: 91–101.
Schwartz, S. S. & P. D. N. Hebert, 1986. Prey preference and utilization by Mesostoma lingua (Turbellaria, Rhabdocoela) at a low arctic site. Hydrobiologia 135: 251–257.
Shiganova, T. A., H. J. Dumont, D. Mikaelyan, A. Glazov, V. Bulgakova, E. I. Musaeva, P. Y. Sorokin, L. A. Pautova, Z. A. Mirzoyan & E. I. Studenikova, 2004. Interaction between the invading ctenophores Mnemiopsis leidyi (A. Agassiz) and Beroe ovata Mayer, 1912 and their influence on the pelagic ecosystem of the Northeastern Black Sea. In Dumont, H., J. Shiganova, U. Niermann (eds), The ctenophore Mnemiopsis leidyi in the Black, Caspian and Mediterranean Seas and other aquatic invasions. NATO ASI Series 2. Environment. Kluwer, Dordrecht: 33–70.
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The support received from the Chinese NSF grants (U0733007 and 30970467) is duly appreciated.
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Wang, T., Xiao, L., Lin, Q. et al. Pelagic flatworm predation on daphniids in a subtropical reservoir: different effects on Daphnia galeata and on Ceriodaphnia quadrangula . Hydrobiologia 658, 139–146 (2011). https://doi.org/10.1007/s10750-010-0457-7
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DOI: https://doi.org/10.1007/s10750-010-0457-7


