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Aggregation of algae released from melting sea ice: implications for seeding and sedimentation

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Summary

Factors influencing the fate of ice algae released from melting sea ice were studied during a R V Polarstern cruise (EPOS Leg 2) to the northwestern Weddell Sea. The large-scale phytoplankton distribution patterns across the receding ice edge and small-scale profiling of the water column adjacent to melting ice floes indicated marked patchiness on both scales. The contribution of typical ice algae to the phytoplankton was not significant. In experiments simulating the conditions during sea ice melting, ice algae revealed a strong propensity to form aggregates. Differences in the aggregation potential were found for algal assemblages collected from the ice interior and the infiltration layer. Although all algal species collected from the ice were also found in aggregates, the species composition of dispersed and aggregated algae differed significantly. Aggregates were of a characteristic structure consisting of monospecific microaggregates which are likely to have formed in the minute brine pockets and channels within the ice. Sinking rates of aggregates were three orders of magnitude higher than those of dispersed ice algae. These observations, combined with the negligible seeding effect of ice algae found during this study, suggest that ice algae released from the melting sea ice are subject to rapid sedimentation. High grazing pressure at the ice edge of the investigation area is another factor eliminating ice algae released during melting.

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References

  • Ackley SF, Buck KR, Taguchi S (1979) Standing crop of algae in the sea ice of the Weddell Sea region. Deep-Sea Res 26A:269–281

    Google Scholar 

  • Allan GC, Lewin J, Johnson PG (1972) Marine polymers. IV. Diatom polysaccharides. Bot Mar 15:102–108

    Google Scholar 

  • Alldredge AL, Gotschalk CC (1988) In situ settling behavior of marine snow. Limnol Oceanogr 33:339–351

    Google Scholar 

  • Alldredge AL, Silver MW (1988) Characteristics, dynamics, and significance of marine snow. Prog Oceanogr 20:41–82

    Google Scholar 

  • Bienfang PK (1981) SETCOL-a technologically simple and reliable method for measuring phytoplankton sinking rates. Can J Fish Aquat Sci 38:45–51

    Google Scholar 

  • Bunt JS, Lee CC (1969) Observations within and beneath Antarctic sea ice in McMurdo Sound and the Weddell Sea, 1967–1968, Methods and Data, Tech Rep 69–1. Institute of Marine Sciences, University of Miami, Miami

    Google Scholar 

  • Cadée G, Gonzalez H (1989) Faeces sedimentation. In: Hempel I, Schalk PH, Smetacek V (eds) The expedition Antarktis VII/3 (EPOS Leg 2) of RV Polarstern in 1988/89. Ber Polarforsch 65:165–166

  • Carey AG Jr (1987) Particle flux beneath fast ice in the shallow southwestern Beaufort Sea, Arctic Ocean. Mar Ecol Prog Ser 40:247–257

    Google Scholar 

  • Cross WE (1982) Under-ice biota at the Pond Inlet ice edge and in adjacent fast ice areas during spring. Arctic 35:13–27

    Google Scholar 

  • Daly KL, Macaulay MC (1988) Abundance and distribution of krill in the ice edge zone of the Weddell Sea, austral spring 1983. Deep-Sea Res 35:21–41

    Google Scholar 

  • Franeker JA van (1989) Sea ice conditions. In: Hempel I, Schalk PH, Smetacek V (eds) The expedition Antarktis VII/3 (EPOS Leg 2) of RV Polarstern in 1988/89. Ber Polarforsch 65:10–13

  • Garrison DL, Buck KR (1985) Sea-ice algal communities in the Weddell Sea: species composition in ice and plankton assemblages. In: Gray JS, Christiansen ME (eds) Marine biology of polar regions and effects of stress on marine organisms. John Wiley, New York, pp103–122

    Google Scholar 

  • Garrison DL, Buck KR (1986) Organism losses during ice melting: a serious bias in sea ice community studies. Polar Biol 6:237–239

    Google Scholar 

  • Garrison DL, Buck KR (1989) The biota of Antarctic pack ice in the Weddell Sea and Antarctic Peninsula regions. Polar Biol 10:211–219

    Google Scholar 

  • Garrison DL, Buck KR, Fryxell GA (1987) Sea ice algal communities in Antarctica: species assemblages in pack ice and ice edge planktonic communities. J Phycol 23:564–572

    Google Scholar 

  • Gersonde R, Wefer G (1987) Sedimentation of biogenic siliceous particles in Antarctic waters from the Atlantic sector. Mar Micropaleontol 11:311–332

    Google Scholar 

  • Hempel I (1989) The expedition Antarktis VII/1 and 2 (EPOS I) of RV Polarstern in 1988/89. Ber Polarforsch 62:185

    Google Scholar 

  • Hempel I, Schalk PH, Smetacek V (1989) The expedition Antarktis VII/3 (EPOS Leg 2) of RV Polarstern in 1988/89. Ber Polarforsch 65:199

    Google Scholar 

  • Horner RA (1985) Ecology of sea ice microalgae. In: Horner RA (ed) Sea ice biota. CRC Press, Boca Raton, Florida, pp 83–103

    Google Scholar 

  • Hoshiai T (1977) Seasonal change of ice communities in the sea ice near Syowa Station Antarctica. In: Dunbar MJ (ed) Polar oceans. The Antarctic Institute of North America, Calgary, pp 307–317

    Google Scholar 

  • Jackson GA (1990) A model of the formation of marine algal flocs by physical coagulation processes. Deep-Sea Res 37:1197–1211

    Google Scholar 

  • Kiørboe T, Andersen KP, Dam HG (1990) Coagulation efficiency and aggregate formation in marine phytoplankton. Mar Biol 107:235–245

    Google Scholar 

  • Marschall HP (1988) The overwintering strategy of antarctic krill under the pack-ice of the Weddell Sea. Polar Biol 9:129–135

    Google Scholar 

  • Mathot S, Becquefort S, Lancelot C (in press) Fate of sea-ice biota at the time of ice melting in the northwestern part of the Weddell Sea. Polar Res

  • Maykut GA (1985) The ice environment. In: Horner RA (ed) Sea ice biota. CRC Press, Boca Raton, Florida, pp 21–82

    Google Scholar 

  • McConville MJ, Wetherbee R (1983) The bottom-ice microalgal community from annual ice in the inshore waters of East Antarctica. J Phycol 19:431–439

    Google Scholar 

  • McConville MJ (1985) Chemical composition and biochemistry of sea ice microalgae. In: Horner RA (ed) Sea ice biota. CRC Press, Boca Raton, Florida, pp 105–129

    Google Scholar 

  • Nöthig EM (1988) Untersuchungen zur Ökologie des Phytoplanktons im südöstlichen Weddellmeer im Januar/Februar 1985. Ber Polarforsch 53: 118 pp

    Google Scholar 

  • O'Brien DP (1987) Direct observations of the behavior of Euphausia superba and Euphausia crystallorophias (Crustacea: Euphausicea) under pack-ice during the antarctic spring of 1985. J Crust Biol 7:437–448

    Google Scholar 

  • Palmisano AC, Sullivan CW (1983) Sea ice microbial communities (SIMCO) 1. Distribution, abundance, and primary production of ice microalgae in McMurdo Sound, Antarctica in 1980. Polar Biol 2:171–177

    Google Scholar 

  • Palmisano AC, Sullivan CW (1985) Growth, metabolism, and dark survival in sea ice microalgae. In: Horner RA (ed) Sea ice biota. CRC Press, Boca Raton, Florida, pp 131–146

    Google Scholar 

  • Parsons TR, Maita Y, Lalli CM (1984) A manual of chemical and biological methods for seawater analysis. Pergamon Press, New York, 173 pp

    Google Scholar 

  • Riebesell U, Schiel S, Schloss I (1989) Grazing rates in relation to food supply. In: Hempel I, Schalk PH, Smetacek V (eds) The expedition Antarktis VII/3 (EPOS Leg 2) of RV Polarstern in 1988/89. Ber Polarforsch 65:160–164

  • Sasaki H, Hoshiai T (1986) Sedimentation of microalgae under the Antarctic fast ice in summer. Mem Natl Inst Polar Res, Spec Issue 40:45–55

    Google Scholar 

  • Sasaki H, Watanabe K (1984) Underwater observations of ice algae in Lützow-Holm Bay, Antarctica. Antarct Rec 81:1–8

    Google Scholar 

  • Schalk PH (1990) Biological activity in the Antarctic Zooplankton community. Polar Biol 10:405–411

    Google Scholar 

  • Shanks AL, Edmondson EW (1989) Laboratory-made artificial marine snow: a biological model of the real thing. Mar Biol 101:463–470

    Google Scholar 

  • Shanks AL, Trent JD (1980) Marine snow: sinking rates and potential role in vertical flux. Deep-Sea Res 27:137–144

    Google Scholar 

  • Smetacek V, Scharek R, Nöthig EM (1990) Seasonal and regional variation in the pelagial and its relationship to the life history cycle of krill. In: Kerry KR, Hempel G (eds) Antarctic ecosystems. Springer, Berlin Heidelberg, New York, pp 104–114

    Google Scholar 

  • Smith WO, Nelson DM (1985) Phytoplankton bloom produced by a receding ice edge in the Ross Sea: spatial coherence with the density field. Science 227:163–166

    Google Scholar 

  • Utermöhl H (1958) Zur Vervollkommnung der quantitativen Phytoplankton-Methodik. Mitt Int Verein Theor Angew Limnol 9:1–38

    Google Scholar 

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Data presented here were collected during the European Polarstern Study (EPOS) sponsored by the European Science Foundation

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Riebesell, U., Schloss, I. & Smetacek, V. Aggregation of algae released from melting sea ice: implications for seeding and sedimentation. Polar Biol 11, 239–248 (1991). https://doi.org/10.1007/BF00238457

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  • DOI: https://doi.org/10.1007/BF00238457

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