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Species abundance distribution of benthic chironomids and other macroinvertebrates across different levels of pollution in streams

Published online by Cambridge University Press:  15 December 2009

Hongqu Tang
Affiliation:
Department of Biological Sciences, Pusan National University, Busan (Pusan) 609-735, Republic of Korea
Mi-Young Song
Affiliation:
West Sea Fisheries Research Institute, Incheon 400-420, Republic of Korea
Woon-Seok Cho
Affiliation:
Department of Biological Sciences, Pusan National University, Busan (Pusan) 609-735, Republic of Korea
Young-Seuk Park
Affiliation:
Department of Biology, Kyung Hee University, Dongdaemun, Seoul 130-701, Republic of Korea
Tae-Soo Chon*
Affiliation:
Department of Biological Sciences, Pusan National University, Busan (Pusan) 609-735, Republic of Korea
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Abstract

Chironomid assemblages collected from seven different streams in South Korea were investigated. The subfamily composition of chironomids was clearly differentiated accross different levels of organic pollution. Species abundance distributions (SADs) of chironomid communities were compared with the total macroinvertebrate communities across different levels of pollution. The number of species with minimal range of abundance was lower in SADs for chironomid communities compared with total communities. The log normal distribution was accepted for both total and chironomid communities, while the geometric series was relatively more suitable for chironomids and the log series were more fitted to total communities. The a values in the log normal distribution increased in chironomid communities across different levels of pollution, while γ values increased at the polluted sites for both chironomid and total communities. In the Power law analysis, the parameter decreased in chironomid communities. The dominance decay model was more fitted to chironomid communities in clean conditions while random fraction and assortment models were more suitable for the polluted sites.

Type
Research Article
Copyright
© EDP Sciences, 2009

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References

Aagaard, K., 1986. The chironomid fauna of North Norwegian lakes, with a discussion on methods of community classification. Holarctic Ecol. , 9, 112.
APHA, AWWA and WPCF, 1985. Standard methods for the examination of water and waste, 16th edn., American public health association, Washington, 1268 p.
Arimoro F.O., Ikomi R.B. and Iwegbue C.M.A., 2007. Water quality changes in relation to Diptera community patterns and diversity measured at an organic effluent impacted stream in the Niger Delta, Nigeria. Ecol. Indic., 7, 541–552.
Armitage, P.D. and Blackburn, J.H., 1985. Chironomidae in a Pennine stream system receiving mine drainage and organic enrichment. Hydrobiologia , 121, 165172. CrossRef
Armitage P.D., Cranston P.S. and Pinder L.C.V. (eds.), 1995. The Chironomidae. The biology and ecology of non-biting midges, Chapman & Hall, London, 572 p.
Balloch, D., Davies, C.E. and Jones, F.H., 1976. Biological assessment of water quality in three British rivers: the North Esk (Scotland), the Ivel (England) and the Taf (Wales). Water Pollut. Control , 75, 92114.
Barbour, M.T., Gerritsen, J., Griffith, G.E., Frydenborg, R., McCarron, E., White, J.S. and Bastian, M.L., 1996. A framework for biological criteria for Florida streams using benthic macroinvertebrates. J. N. Amer. Benthol. Soc. , 15, 185211. CrossRef
Barbour M.T., Gerritsen J., Snyder B.D. and Stribling J.B., 1999. Rapid bioassessment protocols for use in streams and wadeable rivers: periphyton, benthic macroinvertebrates and fish, 2nd edn., EPA 841-B-99-002, U.S. Environmental Protection Agency, Office of Water, Washington, D.C.
Begon M., Townsend C.R. and Harper J.L., 2006. Ecology: from individuals to ecosystems, 4th edn., Blackwell, Malden, 738 p.
Boerger, H., 1981. Species composition, abundance and emergence phenology of midges in a brown-water stream of West-Central Alberta, Canada. Hydrobiologia , 80, 730. CrossRef
Calle-Martinez, D. and Casas, J.J., 2006. Chironomid species, stream classification, and water-quality assessment: the case of 2 Iberian Mediterranean mountain regions. J. N. Am. Benthol. Soc. , 25, 465476. CrossRef
Carew, M.E., Pettigrove, V., Cox, R.L. and Hoffmann, A.A., 2007. The response of Chironomidae to sediment pollution and other environmental characteristics in urban wetlands. Freshwat. Biol. , 52, 24442462. CrossRef
Cranston, P.S., 1982. A key to the larvae of the British Orthocladiinae (Chironomidae). Scientific Publications of FBA , 45, 1152.
De Bisthoven, L.J., Gerhardt, A. and Soares, A.M.V.A., 2005. Chironomid larvae as bioindicators of an acid mine drainage in Portugal. Hydrobiologia , 532, 181191. CrossRef
Del Moral R., 1999. Plant succession on pumice at Mount St. Helens, Washington. Am. Mid. Nat., 141, 101–114.
Dimitriadis, S. and Cranston, P.S., 2007. From the mountains to the sea: assemblage structure and dynamics in Chironomidae (Insecta: Diptera) in the Clyde River estuary gradient, New South Wales, southeastern Australia. Aust. J. Entomol. , 46, 188197. CrossRef
Diserud, O.H. and Engen, S., 1999. A general and dynamic species abundance model, embracing the lognormal and the Gamma models. Am. Nat. , 155, 498511.
Epler J.H., 2001. Identification Manual for the Larval Chironomidae (Diptera) of North and South Carolina – A guide to the taxonomy of the midges of the southeastern United States, including Florida, North Carolina Department of Environment and Natural Resources, Raleigh, NC, and St. Johns River Water Management District, Palatka.
Fesl, C., 2002. Niche-oriented species-abundance models: different approaches of their application to larval chironomid (Diptera) assemblages in a large river. J. Anim. Ecol. , 71, 10851094. CrossRef
Fisher, R.A., Corbet, A.S. and Williams, C.B., 1943. The relation between the number of species and the number of individuals in a random sample of an animal population. J. Anim. Ecol. , 12, 4258. CrossRef
Ford, N.B. and Lancaster, D.L., 2007. The species-abundance distribution of snakes in a bottomland hardwood forest of the southern United States. J. Herpetology , 41, 385393. CrossRef
Forster, M.A. and Warton, D.I., 2007. A metacommunity-scale comparison of species-abundance distribution models for plant communities of eastern Australia. Ecography , 30, 449458. CrossRef
Gray, J.S., 1981. Detecting pollution induced changes in communities using the log-normal distribution of individuals among species. Mar. Pollut. Bull. , 25, 4850. CrossRef
Gray, J.S. and Mirza, F.B., 1979. A possible method for the detection of pollution-induced disturbance on marine benthic communities. Mar. Pollut. Bull. , 10, 142146. CrossRef
Hamerlik L. and Bitusik P., 2009. The distribution of littoral chironomids along an altitudinal gradient in High Tatra Mountain lakes: could they be used as indicators of climate change? Ann. Limnol. - Int. J. Lim., 45, 145–156.
Hawkes, H.A., 1997. Origin and Development of the Biological Monitoring Working Party Score System. Water Res. , 32, 964968. CrossRef
Hellawell J.M., 1986. Biological indicators of freshwater pollution and environmental management, Elsevier, Amsterdam, 446 p.
Hilsenhoff, W.L., 1988. Rapid field assessment of organic pollution with a family-level biotic index. J. N. Am. Benthol. Soc. , 7, 6568. CrossRef
Hughes R.G., 1984. A model of the structure and dynamics of benthic marine invertebrate communities. Mar. Ecol. Progr., 15, 1–11.
Kawai, K., Yamagishi, T. and Kubo, Y., 1989. Usefulness of chironomid larvae as indicators of water quality. Jpn. J. Sanitation. Zool. , 40, 4, 269283. CrossRef
Klink A.G. and Moller Pillot H.K.M., 2003. Chironomidae larvae – Key to the higher taxa and species of the lowlands of Northwestern Europe, World Biodiversity Database CD-ROM series, ETI, Amsterdam.
Kwak I.-S., Liu G.C., Park Y.-S., Song M.-Y. and Chon T.-S., 2002. Characterization of benthic macroinvertebrate communites and hydraulic factors in small-scale habitats in a polluted stream. Korean J. Limnol., 35, 295–305.
Kwon, T.-S. and Chon, T.-S., 1991. Ecological studies on benthic macroinvertebrates in the Suyong River – II. Investigations on distribution and abundance in its main stream and four tributaries. Korean J. Limnol. , 24, 179198.
Langton P.H. and Visser H., 2003. Chironomidae exuviae – A key to pupal exuviae of the West Palaearctic Region, Biodiversity Center of ETI, Amsterdam, CD-ROM.
Lods-Crozet, B., Vencioni, V., Olafsson, J.S., Snook, D.L., Velle, G., Brittain, J.E., Castella, E. and Rossaro, B., 2001. Chironomid (Diptera: Chironomidae) communities in six European glacier-fed streams. Freshwat. Biol. , 46, 17911809. CrossRef
Magurran A.E., 1988. Ecological diversity and its measurement. Chapman & Hall, London, 179 p.
Magurran A.E., 2004. Measuring biological diversity, Blackwell, Oxford, 256 p.
Magurran, A.E. and Henderson, P.A., 2003. Explaining the excess of rare species in natural species abundance distributions. Nature , 422, 714716. CrossRef
May R.M., 1975. Patterns of species abundance and diversity. In: Cody M. and Diamond J.M. (eds.), Ecology of species and communities, Harvard University Press, Cambridge, 81–120.
May R.M. and McLean A.R. (eds.), 2007. Theoretical ecology: Principles and applications, Oxford University Press, Oxford, 257 p.
May R.M., Crawley M.J. and Sugihara G., 2007. Communities: patterns. In: May R.M. and McLean A.R. (eds.), Theoretical ecology: principles and applications, Oxford University Press, Oxford, 111–131.
McGill, B.J., Etienne, R.S., Gray, J.S., Alonso, D., Anderson, M.J., Benecha, H.K., Dornelas, M., Enquist, B.J., Green, J.L., He, F.L., Hurlbert, A.H., Magurran, A.E., Marquet, P.A., Maurer, B.A., Ostling, A., Soykan, C.U., Ugland, K.I. and White, E.P., 2007. Species abundance distribution: moving beyond single prediction theories to integration within an ecological framework. Ecol. Lett. , 10, 9951015. CrossRef
Motomura I., 1932. On the statistical treatment of communities. Zool. Manage., Tokyo, 44, 379–383.
Niitsuma H. and Yamamoto M., 2005. Chironomidae. In: Kwai T. and Tanida K. (eds.), Aquatic insects of Japan: Manual with keys and illustrations, Tokai University Press, Kanagawa, 1035–1185.
Oh Y.-N. and Chon T.-S., 1991a. A study on the benthic macroinvertebrates in the middle reaches of the Paenae stream, a tributary of the Nakdong River, Korea. I. Community analysis and biological assessment of the water quality. Korean J. Ecol., 14, 345–360.
Oh Y.-N. and Chon T.-S., 1991b. A study on the benthic macroinvertebrates in the middle reaches of Paenae stream, a tributary of the Naktong River, Korea. II. Comparison of communities and environments at the upper and lower sites of levees. Korean J. Ecol., 14, 399–413.
Oh, Y.-N. and Chon, T.-S., 1993. A study on the benthic macroinvertebrates in the middle reaches of Paenae stream, a tributary of the Naktong River, Korea III. Drifting aquatic insects in four seasons. Korean J. Ecol. , 16, 489499.
Penczak, T., Kruk, A., Grzybkowska, M. and Dukowsaka, M., 2006. Patterning of impoundment impact of chironomid assemblages and their environment with use of the self-organizing map (SOM). Acta Oecol. , 30, 312321. CrossRef
Pinder, L.C.V., 1986. Biology of freshwater Chironomidae. Annu. Rev. Entomol. , 31, 123. CrossRef
Preston, F.W., 1948. The commonness and rarity of species. Ecology , 29, 254283. CrossRef
Pueyo, S., 2006a. Self-similarity in species-area relationship and in species abundance distribution. Oikos , 112, 156162. CrossRef
Pueyo, S., 2006b. Diversity: between neutrality and structure. Oikos , 112, 392405. CrossRef
Qu, X.D., Song, M.-Y., Park, Y.-S., Oh, Y.-N. and Chon, T.-S., 2008. Species abundance patterns of benthic macroinvertebrate communities in polluted streams. Ann. Limnol. - Int. J. Lim. , 44, 119133. CrossRef
Rabeni C. and Wang N., 2001. Bioassessment of streams using macroinvertebrates: Are the Chironomidae necessary? Environ. Monit. Assess., 71, 177–185.
Raunkiaer, C., 1909. Formationsundersogelse og Formationsstatistik. Botanisk Tidskrift , 30, 20132.
Raposeiro, P.M., Hughes, S.J. and Costa, A.C., 2009. Chironomidae (Diptera: Insecta) in oceanic islands: New records for the Azores and biogeographic notes. Ann. Limnol. - Int. J. Lim. , 45, 5967. CrossRef
Ree H.I. and Kim H.S., 1981. Studies on Chironomidae (Diptera) in Korea. I. Taxonomical study on adults of Chironomidae. Proc. Coll. Nat. Sci., SNU, 6, 123–226.
Resh V.H. and Jackson J.K., 1993. Rapid assessment approaches to biomonitoring using benthic macroinvertebrates. In: Rosenberg D.M. and Resh V.H. (eds.), Freshwater biomonitoring in benthic macroinvertebrates, Chapman & Hall, New York, 195–233.
Resh V.H. and Rosenberg D.M. (eds.), 1984. The ecology of aquatic insects, Praeger, New York, 625 p.
Rosenberg, D.M., 1993. Freshwater biomonitoring and Chironomidae. Neth. J. Aquat. Ecol. , 26, 101122. CrossRef
Rossaro, B., Lencioni, V., Boggero, A. and Marziali, L., 2006. Chironomids from Southern Alpine running waters: ecology, biogeography. Hydrobiologia , 562, 231246. CrossRef
Rossaro, B., Marziali, L., Cardoso, A.C., Solimini, A., Free, G. and Giacchini, R., 2007. A biotic index using benthic macroinvertebrates from Italian lakes. Ecol. Indic. , 7, 412429. CrossRef
Ruse, L.P., 1995. Chironomid community structure deduced from larvae and pupal exuviae of a chalk stream. Hydrobiologia , 315, 135142. CrossRef
Saether, O.A., 1975. Nearctic chironomids as indicators of lake typology. Verhangen Int. Verein Limnol. , 19, 31273133.
Saether, O.A., 1979. Chironomid communities as water quality indicators. Holarctic Ecol. , 2, 6574.
Sasa, M., 1979. A morphological study of adults and immature stages of 20 Japanese species of the family Chironomidae (Diptera). Research Report of NIES , 7, 1148.
Sasa, M., 1984. Studies on chironomid midges in lakes of the Nikko National Park. Pt. II. Taxonomical and morphological studies on the chironomid species collected from lakes in the Nikko National Park. Research Report of NIES , 70, 16215.
Sasa M. and Kikuchi M., 1995. Chironomidae (Diptera) from Japan, University of Tokyo Press, Tokyo, 333 p.
Schmid, P.E., 1992. Community structure of larval Chironomidae in a backwater area of the River Danube. Freshw. Biol. , 27, 151167. CrossRef
Sokal R.R. and Rohlf F.J., 1995. Biometry: the principles and practice of statistics in biological research, 3rd edn., W.H. Freeman and Company, New York, 887 p.
Song, M.-Y., Lee, S.-E., Park, J.-I., Kim, B.-H., Koh, S.-C., Lee, K.-S., Park, Y.-S. and Chon, T.-S., 2005. Comparative community analysis of benthic macroinvertebrates and microorganisms across different levels of organic pollution in a stream by using artificial neural networks. WSEAS Trans. Biol. Biomed. , 3, 257268.
Storey, A.W. and Pinder, L.C.V., 1985. Mesh-size efficiency of sampling of larval Chironomidae. Hydrobiologia , 124, 193197. CrossRef
Syrek, D., Weiner, W.M., Wojtylak, M., Olszowska, G.Y. and Kwapis, Z., 2006. Species abundance distribution of collembolan communities in forest soils polluted with heavy metals. Appl. Soil Ecol. , 31, 239250. CrossRef
Tang H.Q., 2006. Biosystematic study on the chironomid larvae in China (Diptera, Chironomidae), Ph.D. Thesis, Nankai University, 945 p.
Tokeshi, M., 1990. Niche apportionment or random assortment: species abundance patterns revisited. J. Anim. Ecol. , 59, 11291146. CrossRef
Tokeshi, M., 1993. Species abundance patterns and community structure. Adv. Ecol. Res. , 24, 111186. CrossRef
Tokeshi M., 1995. Species interactions and community structure. In: Armitage P.D., Cranston P.S. and Pinder L.C.V. (eds.), The Chironomidae: biology and ecology of non-biting midges, Chapman & Hall, London, 297–335.
Tokeshi M., 1999. Species Coexistence: Ecological and Evolutionary Perspectives, Blackwell Science, Oxford, 454 p.
Tokeshi, M. and Townsend, C.R., 1987. Random patch formation and weak competition: coexistence in an epiphytic chironomid community. J. Anim. Ecol. , 56, 833845. CrossRef
Warwick, W.F., 1993. The effect of trophic/contaminant interactions on Chironomid community structure and succession (Diptera, Chironomidae). Neth. J. Aquat. Ecol. , 26, 563575. CrossRef
Wiederholm, T., 1980. Use of benthos in lake monitoring. J. Water Poll. Control Federation , 52, 537547.
Wiederholm T. (ed.), 1983. Chironomidae of the Holarctic region. Keys and Diagnoses. Part 1. Larvae. Entomol. Scand. Suppl., 19, 1–457.
Wiederholm T. (ed.), 1986. Chironomidae of the Holarctic region. Keys and Diagnoses. Part II. Pupae. Entomol. Scand. Suppl., 28, 1–482.
Wilson R.S. and Ruse L.P., 2005. A guide to the identification of genera of chironomid pupal exuviae occurring in Britain and Ireland (including common genera from Northern Europe) and their use in monitoring lotic and lentic freshwater, Freshwater Biological Association, Special Publication, No. 13, The Ferry House, Far Sawrey, Ambleside, Cumbria.
Youn, B.-J. and Chon, T.-S., 1999. Effects of the pollution on communities of Chironomidae (Diptera) in the Soktae Stream a tributary of the Suyong River. Korean J. Limnol. , 32, 2434.