Browse > Article
http://dx.doi.org/10.5141/ecoenv.2013.018

Different tolerance of zooplankton communities to insecticide application depending on the species composition  

Sakamoto, Masaki (Faculty of Engineering, Toyama Prefectural University)
Tanaka, Yoshinari (Center for Environmental Risk Research, National Institute for Environmental Studies)
Publication Information
Journal of Ecology and Environment / v.36, no.2, 2013 , pp. 141-150 More about this Journal
Abstract
Natural zooplankton communities are composed of many different species at different trophic levels in the aquatic food web. Several researchers have reported that in mesocosm/enclosure experiments, larger cladocerans tend to be more sensitive to carbamate insecticides than smaller ones (Daphnia > Moina, Diaphanosoma > Bosmina). In contrast, results from individual-level laboratory tests have suggested that large cladoceran species are more tolerant than small species. To clarify this inconsistency, we conducted a microcosm experiment using model zooplankton communities with different species compositions, where animals were exposed to lethal (near to the 24 h LC50, concentration estimated to kill 50% of individuals within 24-h for the small cladoceran Bosmina) and lower, sublethal concentrations of carbaryl. In the experiment, population densities of the small cladocerans (Bosmina and Bosminopsis) decreased subsequent to the applications of chemical, but no impacts were observed on the large cladoceran Daphnia. Our results supported the reports of previous individual level toxicity tests, and indicated that the sensitivity of zooplankton to the insecticide was unchanged by biological interactions but the response of population can be modified by compensation of population through hatching from resting eggs and/or the persistence of insecticide in the systems.
Keywords
insecticide; microcosm; zooplankton;
Citations & Related Records
연도 인용수 순위
  • Reference
1 Sakamoto M, Chang KH, Hanazato T. 2007. Plastic phenotypes of antennule shape in Bosmina longirostris controlled by the physical stimuli from predators. Limnol Oceanogr 52: 2072-2078.   DOI
2 Sakamoto M, Hanazato T, Tanaka Y. 2009. Impact of an insecticide on persistence of inherent antipredator morphology of a small cladoceran, Bosmina. Arch Environ Contam Toxcol 57: 68-76.   DOI
3 Sarma SSS, Nandini S. 2006. Review of recent ecotoxicological studies on cladocerans. J Environ Sci Heal B 41: 1417-1430.   DOI   ScienceOn
4 Stephen D, Balayla DM, Becares E, Collings SE, Fernandez- Alaez C, Fernandez-Alaez M, Ferriol C, Garcia P, Goma J, Gyllstrom M, Hansson LA, Hietala J, Kairesalo T, Miracle MR, Romo S, Rueda J, Stahl-Delbanco A, Svensson M, Vakkilainen K, Valentín M, Van de Bund WJ, Van Donk E, Vicente E, Villena MJ, Moss B, 2004. Continental-scale patterns of nutrient and fish effects on shallow lakes: introduction to a pan-European mesocosm experiment. Freshwater Biol 49: 1517-1524.   DOI   ScienceOn
5 Tollrian R, Dodson SI. 1999. Inducible defenses in Cladocera: Constrains, costs, and multipredator environments. In The ecology and evolution of inducible defenses (Tollrian R, Harvell CD, eds). Princeton University Press, New Jersey, pp 177-202.
6 Van den Brink PJ, Ter Braak CJF. 1999. Principal response curves: analysis of time-dependent multivariate responses of biological community to stress. Environ Toxicol Chem 18: 138-148.   DOI   ScienceOn
7 Van Wijngaarden RPA, Brock TCM, Van den Brink PJ. 2005. Threshold levels for effects of insecticides in freshwater ecosystems: a review. Ecotoxicology 14: 355-380.   DOI
8 Vesela S, Vijverberg J. 2007. Effect of body size on toxicity of zinc in neonates of four differently sized Daphnia species. Aquat Ecol 41: 67-73.   DOI
9 Havens KE. 1994. An experimental comparison of the effects of two chemical stressors on a freshwater zooplankton assemblage. Environ Pollut 84: 245-251.   DOI   ScienceOn
10 Hense BA, Welzl G, Severin GF, Schramm KW. 2005. Nonylphenol induced changes in trophic web structure of plankton analysed by multivariate statistical approaches. Aquat Toxicol 73: 190-209.   DOI   ScienceOn
11 Lurling M, Scheffer M. 2007. Info-disruption: pollution and the transfer of chemical information between organisms. Trends Ecol Evol 22: 374-379.   DOI   ScienceOn
12 MacIsaac HJ, Gilbert JJ. 1989. Competition between rotifers and cladocerans of different body size. Oecologia 81: 295-301.   DOI
13 Mano H, Sakamoto M, Tanaka Y. 2010. A comparative study of insecticide toxicity among seven cladoceran species. Ecotoxicology 19: 1620-1625.   DOI
14 Moore M, Folt C. 1993. Zooplankton body size and community structure: effects of thermal and toxicant stress. Trends Ecol Evol 8: 178-183.   DOI   ScienceOn
15 Perez-Ruiz T, Martinez Lozano C, Tomas V, Martin J. 2003. Flow injection chemiluminescence determination of carbaryl using photolytic decomposition and photogenerated tris (2,2′-bipyridyl)ruthenium(III). Anal Chim Acta 476: 141-148.   DOI   ScienceOn
16 OECD. 2004. Test No. 202: Daphnia sp., acute immobilization test. In: OECD Guidelines for the Testing of Chemicals, Section 2: Effects on Biotic Systems.OECD Publishing, DOI: 10.1787/9789264069947-en.   DOI
17 Passino DRM, Novak AJ. 1984. Toxicity of arsenate and DDT to the cladoceran Bosmina longirostris. Bull Environ Contam Tox 33: 325-329.   DOI
18 Pereira JL, Gonçalves F. 2007. Effects of food availability on the acute and chronic toxicity of the insecticide methomyl to Daphnia spp. Sci Total Environ 386: 9-20.   DOI   ScienceOn
19 Preston BL. 2002. Indirect effects in aquatic ecotoxicology: implications for ecological risk assessment. Environ Manage 29: 311-323.   DOI
20 Preston BL, Cecchine G, Snell TW. 1999. Effects of pentachlorophenol on predator avoidance behavior of the rotifer Brachionus calyciflorus. Aquat Toxicol 44: 201-212.
21 R Core Development Team. (2011) R: A language and environment for statistical computing. R Foundation for Statistical Computing, Vienna, Austria. ISBN 3-900051- 07-0, URL http://www.R-project.org/. Accessed 1 May 2013.
22 Relyea R, Hoverman J. 2006. Assessing the ecology in ecotoxicology: a review and synthesis in freshwater systems. Ecol Lett 9: 1157-1171.   DOI   ScienceOn
23 Sakamoto M, Chang KH, Hanazato T. 2005. Differential sensitivity of a predacious cladoceran (Leptodora) and its prey (the cladoceran Bosmina) to the insecticide carbaryl: results of acute toxicity tests. Bull Environ Contam Toxicol 75: 28-33.   DOI
24 Finlay K, Beisner BE, Patoine A, Pinel-Alloul B. 2007. Regional ecosystem variability drives the relative importance of bottom-up and top-down factors for zooplankton size spectra. Can J Fish Aquat Sci 64: 516-529.   DOI   ScienceOn
25 Sakamoto M, Chang KH, Hanazato T. 2006. Inhibition of development of anti-predator morphology in the small cladoceran Bosmina by an insecticide: impact of an anthropogenic chemical on prey-predator interactions. Freshwater Biol 51: 1974-1983.   DOI   ScienceOn
26 Bossuyt BTA, Janssen CR. 2005. Copper toxicity to different field collected cladoceran species: intra- and inter-species sensitivity. Environ Pollut 136: 145-154.   DOI   ScienceOn
27 Chang KH, Sakamoto M, Hanazato T. 2005. Impact of pesticide application on zooplankton communities with different densities of invertebrate predators: an experimental analysis using small-scale mesocosms. Aquat Toxicol 72: 373-382.   DOI   ScienceOn
28 Gilbert JJ. 1988. Suppression of rotifer populations by Daphnia: a review of the evidence, the mechanisms, and the effects on zooplankton community structure. Limnol Oceanogr 33: 1286-1303.   DOI
29 Hanazato T. 1991a. Effects of repeated application of carbaryl on zooplankton communities in experimental ponds with or without the predator Chaoborus. Environ Pollut 74: 309-324.   DOI   ScienceOn
30 Hanazato T. 1991b. Pesticides as chemical agents inducing helmet formation in Daphnia ambigua. Freshwater Biol 26: 419-424.   DOI
31 Hanazato T. 1995. Combined effect of the insecticide carbaryl and the Chaoborus kairomone on helmet development in Daphnia ambigua. Hydrobiologia 310: 95-100.   DOI
32 Hanazato T, Kasai F. 1995. Effects of the Organophosphorus insecticide fenthion on phyto- and zooplankton communities in experimental ponds. Environ Pollut 88: 293-298.   DOI   ScienceOn
33 Hanazato T. 1998. Response of a zooplankton community to insecticide application in experimental ponds: a review and the implications of the effects of chemicals on the structure and functioning of freshwater communities. Environ Pollut 101: 361-373.   DOI   ScienceOn
34 Hanazato T. 2001. Pesticide effects on freshwater zooplankton: an ecological perspective. Environ Pollut 112: 1-10.   DOI   ScienceOn
35 Hanazato T, Dodson SI. 1993. Morphological responses of four species of cyclomorphic Daphnia to a short-term exposure to the insecticide carbaryl. J Plankton Res 15: 1087-1095.   DOI   ScienceOn
36 Hanazato T, Yasuno M. 1990. Influence of time of application of an insecticide on recovery patterns of a zooplankton community in experimental ponds. Arch Environ Contam Toxicol 19: 77-83.   DOI
37 Haney JF, Hall DJ. 1973. Sugar-coated Daphnia: a preservation technique for Cladocera. Limnol Oceanogr 18: 331-333.   DOI
38 Havens KE, Hanazato T. 1993. Zooplankton community responses to chemical stressors: a comparison of results from acidification and pesticide contamination research. Environ Pollut 82: 277-288.   DOI   ScienceOn