Seasonal Fluctuation of Chlorophyll a Concentration in the Size Fractionation of Phytoplankton in Daechung Reservoir

대청호에서 식물플랑크톤 크기에 따른 엽록소 농도의 계절적 변화

  • 문종전 (배제대학교 생명과학부) ;
  • 이상욱 (배제대학교 생명과학부) ;
  • 황순진 (건국대학교 지역생태시스템공학과) ;
  • 오인혜 (배제대학교 생명과학부)
  • Published : 2001.12.31

Abstract

Since a substantial part of the total planktonic primary production is due to the activity of the picoplankton, seasonal change of chlorophyll a in the picoplankton, nanoplankton and microplankton was determined at four locations in Daechung Reservoir from September in 1998 to September in 1999. Chlorophyll a concentration (<$200\;{\mu}m$) was $0.7{\sim}36.9\;{\mu}g/l$ In TAE (Taejeon site), $0.5{\sim}23.5\;{\mu}g/l$ in MAN (Man site), $1.9{\sim}20.1\;{\mu}g/l$ in HOE (Hoenam site), and $0.5{\sim}17.4\;{\mu}g/l$ in DAM (Dam site). Generally it was observed the highest concentration of chlorophyll a was in September and the lowest in April to June. The relative contribution of chlorophyll a of each fraction was changed dramatically through the year. Relative contribution of chlorophyll a of microplankton was high from June to October, and low in March in all locations except HOE. However chlorophlyll a concentration of picoplankton fraction was $2.0{\sim}24.3%$ of total chlorophyll a (<$200\;{\mu}m$) through the year and did not show any dramatic changes at all locations.

여러 지역의 호소환경에서 picoplankton이 중요한 일차 생산자로 보고되고 있는데 대청호에서 이를 조사하기 위하여 1998년 9월부터 1999년 9월까지 식물플랑크톤 크기에 따른 엽록소 농도의 계절적 변화를 조사하였다. $200\;{\mu}m$이하의 식물플랑크톤은 대전취수탑에서 $0.7{\sim}36.9\;{\mu}g/l$, 만입부에서 $0.5{\sim}23.5\;{\mu}g/l$회남대교에서 $1.9{\sim}20.1\;{\mu}g/l$ 대청댐에서 $0.5{\sim}17.4\;{\mu}g/l$이었는데, 조사지점 4곳에서 모두 9월에 최대치를 나타내었으며 그 이후는 서서히 감소되어 $4{\sim}6$월에 최소값을 보이는 경향을 나타내었다. 계절에 따른 엽록소 농도의 크기별 조성비율을 보면, 연중 microplankton과 nanoplankton 조성비율은 큰 변이를 보였는데, 회남 대교를 제외한 조사지역 3곳에서 $6{\sim}10$월에는 microplankton의 비율이 높았으나 3월에는 조성비율이 매우 낮은 경향을 보였다. 그러나 조사지역 4곳 모두에서 picoplankton은 연중 $2.0{\sim}24.3%$로 거의 일정하였다.

Keywords

References

  1. Standard Methods for the Examination of Water and Wastewater, 17th ed. APHA;AWWA;WPCF
  2. Mar. Ecol. Prog. Ser. v.10 The ecological role of water- column microbes in the sea. Azam, F.;T. Fenchel;J.C. Field;J.S. Gray;L.A. Meyer-Reil;F. Thingstand.
  3. J. Phycol. v.21 Chroococcoid cyanobacteria in Lake Ontario: vertical and seasonal distributions during 1982. Caron, D.A.;F.R. Pick;D.R.S. Lean.
  4. Verh. Int. Ver. Limnol. v.22 Productivity of algae picoplankton in a small meromictic lake. Craig, S.R.
  5. Limnol. Oceanogr. v.36 Physiological characteristics and food-web dynamics of Synechococcus in Lake Huron and Michigan. Fahnenstiel, G.L.;H.J. Carrick;R. Iturriaga.
  6. Can. J. Fish. Aquat. Sci. v.43 Importance of picoplankton in Lake Superior. Fahnenstiel, G. L.;L. Sicko-Goad;D. Scavia;E. F. Stoermer.
  7. Can. J. Fish. Aquat. Sci. v.49 Phototrophic picoplankton in Lakes Huron and Michigan: Abundance, Distribution, Composition and Contribution to Biomass and Production. Fahnenstiel, G.L.;H.J. Carrick.
  8. Appl. Environ. Microbiol. v.33 Use of nuclepore filters for counting bacteria by fluorescence microscopy. Hobbie, J.E.;R.J. Daley;E. Jones.
  9. Limnol. Oceanogr. v.4 Bacterial populations in sea water as determined by different methods of enumeration. Jannasch, H.W.;G.E. Jones.
  10. Limnol. Oceanogra. v.24 Chroococcois cyanobacteria in the sea: a ubiquitous and diverse phototrophic biomass. Johnson, P.W.;J. McN Sieburth.
  11. J. Phycol. v.18 In situ morphology and occurrence of eukaryotic phototrophs of bacterial size in the picoplankton of estuarine and oceanic water. Johnson, P.W.;J. McN Sieburth.
  12. Science v.219 Autotrophic picoplankton in the tropical ocean. Li, W.K.W.;D.V. Subba Rao, W.G.;Harrison, J.C.;Smith;J.J. Cullen;B. Irwin;T. Platt.
  13. Mar. Ecol. Prog. Ser. v.12 Quantitiative relationships between phytoplankton, bacteria and heterotrophic micro-flagellates in shelf waters. Linley, E.A.S.;R.C. Newell;M.I. Lucas.
  14. Can Tech. Rep. Fish. Aquat. Sci. v.1153 The abundance and significance of ultraplankton and microalgaes at an offshore station in central lake Superior. Munawar, M.;Fahnenstiel, G.L.
  15. Ecol. Res. v.1 The seasonal abundance and vertical distribution of the <3 μm-phytoplankton in the north basin of Lake Biwa. Nagata, T.
  16. Large Lakes Contribution of picoplankton to the grazer food chain of Lake Biwa Nagata, T.;M.M. Tilzer(ed.);C. Serruya(ed.)
  17. J. Plank. Res. v.16 Autotrophic picoplankton in sourthern Lake Baikal; aboundance, growth and grazing mortality during summer. Nagata, T.;K. Takai;K. Kawanobe;D. Kim;R. Nakazato;N. Guselnikova;N. Bondarenko;O. Mologawaya;T. Kostrnov;V. Drucker;Y. Stoh;Y. Watanabe.
  18. Korean J. Lim. v.31 Ecological Studies on Daechung Reservoir. Oh, In-Hye.
  19. Can. J. Fish. Aquat. Sci. v.44 Picoplankton and nanoplankton biomass in lake Ontario: relative contribution of phototrophic and heterotrophic communities. Pick, F.R.;D.A. Caron.
  20. Korean J. Limnol. v.34 The contents of nitrogen, phosphorus, siclico nutirent and algael growth potential (AGP) in the sediment of Taechong Reservoir. Shin, J.;K. Cho.
  21. Korean J. Environ. Biol. v.17 Dynamics of water environmental factors and phytoplankton in Taechong Reservoir. Shin, J.;K. Cho;I. Oh.
  22. J. Great Lakes Res. v.10 The need for uniform terminology concerning phytoplankton cell size fractions and examples of picoplankton from the Lauerntain Great Lakes. Sicko-Goad, L.;E.F. Stoermer.
  23. Can. J. Fish Aquat. Sci. v.43 Algal picoplankton from marine freshwater exosystems: a multidisciplinary perspective. Stockner, J.G.;N.J. Antia.
  24. Nature(Lond.) v.277 Widespread occurrence of a unicellular, marine, planktonic cyanobacterium. Waterbury, J.B.;W.W. Watson;R.R. Guillard;L. E. Brand.
  25. Appl. Environ. Microbiol. v.33 Determination of bacterial number and biomass in the marine environment. Watson, S.W.;T.J. Novitsky;H.L. Quinby;F.W. Valois.
  26. J. Plankton Res. v.10 Dynamics of autotrophic picoplankton in Lake Const. Weisse, T.