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Diatom-inferred total phosphorus from dystrophic Lake Arapisto, Finland, in relation to Holocene paleoclimate

Published online by Cambridge University Press:  08 June 2012

Tomi P. Luoto*
Affiliation:
Department of Geosciences and Geography, University of Helsinki, P.O. Box 64, FI-00014 University of Helsinki, Finland
Liisa Nevalainen
Affiliation:
Department of Environmental Sciences, University of Helsinki, Niemenkatu 73, FI-15140 Lahti, Finland
Tommi Kauppila
Affiliation:
Geological Survey of Finland, P.O. Box 1237, FI-70211 Kuopio, Finland
Mira Tammelin
Affiliation:
Department of Geography and Geology, University of Turku, FI-20014 University of Turku, Finland
Kaarina Sarmaja-Korjonen
Affiliation:
Department of Geosciences and Geography, University of Helsinki, P.O. Box 64, FI-00014 University of Helsinki, Finland
*
Corresponding author. Fax: + 358 9 191 50826. Email Address:[email protected]

Abstract

A sediment core from Lake Arapisto, Finland, was examined for fossil diatom assemblages to reconstruct changes in Holocene nutrient availability. Our aim was to investigate the long-term relationship between lake trophic status and climate by comparing the diatom-based phosphorus reconstruction with paleoclimatic proxies. Our results showed that the cold early Holocene was characterized by elevated nutrient conditions concurrent with newly exposed fertile ground. As the climate rapidly warmed and ice sheet further retreated, the catchment vegetation developed, which resulted in decreased nutrient flux into the lake. The Holocene Thermal Maximum (HTM), between ~ 8000 and 4000 cal yr BP, was characterized by oligotrophic conditions, which may have been caused by low effective precipitation and stable watershed vegetation. After the HTM, the lake became more productive. There was no particular increase in the trophic state that could be connected to more recent human influence. Although lake productivity has been shown to be affected by temperature, our record indicated that the nutrient dynamics were driven by complex interactions between changes in temperature, precipitation, catchment, and in-lake processes. Understanding of long-term nutrient dynamics and the associated processes can help in resolving relationships between lake productivity and climate during past and present climate changes.

Type
Articles
Copyright
University of Washington

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References

Anderson, N.J., Brodersen, K.P., Ryves, D.B., McGowan, S., Johansson, L.S., Jeppesen, E., and Leng, M.J. Climate versus in-lake processes as controls on the development of community structure in a low-Arctic lake (South-West Greenland). Ecosystems 11, (2008). 307324.CrossRefGoogle Scholar
Anderson, N.J., Foy, R.H., Engstrom, D.R., Rippey, B., and Alamgir, F. Climate forcing of diatom productivity in a lowland, eutrophic lake: White Lough revisited. Freshwater Biology (2012). http://dx.doi.org/10.1111/j.1365-2427.2012.02791.x Google Scholar
Bigler, C., Larocque, I., Peglar, S.M., Birks, H.J.B., and Hall, R.I. Quantitative multiproxy assessment of long-term patterns of Holocene environmental change from a small lake near Abisko, northern Sweden. The Holocene 12, (2002). 481496.Google Scholar
Bigler, C., Grahn, E., Larocque, I., Jeziorski, A., and Hall, R. Holocene environmental change at Lake Njulla (999 m a.s.l.), northern Sweden: a comparison with four small nearby lakes along an altitudinal gradient. Journal of Paleolimnology 29, (2003). 1329.CrossRefGoogle Scholar
Brodersen, K.P., and Anderson, N.J. Distribution of chironomids (Diptera) in low arctic West Greenland lakes: trophic conditions, temperature and environmental reconstruction. Freshwater Biology 47, (2002). 11371157.Google Scholar
Carpenter, S.R., and Pace, M.L. Dystrophy and eutrophy in lake ecosystems: implications of fluctuating inputs. Oikos 78, (1997). 314.Google Scholar
Engstrom, D.R., Fritz, S.C., Almendinger, J.E., and Juggins, S. Chemical and biological trends during lake evolution in recently deglaciated terrain. Nature 408, (2000). 161166.Google Scholar
Gross, L. Metabolism predicts ecological response to warming. PLoS Biology 7, 8 (2009). e1000180 Google Scholar
Hall, R.I., and Smol, J.P. Diatoms as indicators of lake eutrophication. Stoermer, E.F., and Smol, J.P. The diatoms: Applications for the Environmental and Earth Sciences. (1999). Cambridge University Press, 128168.Google Scholar
Hammer, Ø., Harper, D.A.T., and Ryan, P.D. PAST: Paleontological statistics software package for education and data analysis. Palaeontologia Electronica 4, (2001). 9pp. Google Scholar
Heiri, O., and Lotter, A.F. Holocene and Lateglacial summer temperature reconstruction in the Swiss Alps based on fossil assemblages of aquatic organisms: a review. Boreas 34, (2005). 506516.CrossRefGoogle Scholar
Hill, M.O., and Gauch, H.G. Detrended correspondence analysis: an improved ordination technique. Vegetatio 42, (1980). 4758.CrossRefGoogle Scholar
Hyvärinen, H., and Alhonen, P. Holocene lake-level changes in the Fennoscandian tree-line region, western Finnish Lapland: diatom and cladoceran evidence. The Holocene 4, (1994). 251258.CrossRefGoogle Scholar
Jeppesen, E., Moss, B., Bennion, H., Carvalho, L., DeMeester, L., Feuchtmayr, H., Friberg, N., Gessner, M.O., Hefting, M., Lauridsen, T.L., Liboriussen, L., Malmquist, H.J., May, L., Meerhoff, M., Olafsson, J.S., Soons, M.B., and Verhoeven, J.T.A. Interaction of climate change and eutrophication. Kernan, M., Battarbee, R.W., and Moss, B. Climate Change Impacts on Freshwater Ecosystems. (2009). 119150.Google Scholar
Johnsen, S.J., Dahl-Jensen, D., Gundestrup, N., Steffensen, J.P., Clausen, H.B., Miller, H., Masson-Delmotte, V., Sveinbjörnsdottir, A.E., and White, J. Oxygen isotope and palaeotemperature records from six Greenland ice-core stations: Camp Century, Dye-3, GRIP, GRISP 2, Renland and NorthGRIP. Journal of Quaternary Science 16, (2001). 299307.Google Scholar
Jylhä, K., Tuomenvirta, H., and Ruosteenoja, K. Climate change projections for Finland during the 21st century. Boreal Environment Research 9, (2004). 127152.Google Scholar
Kaufman, D.S. et al. Erratum to: Holocene thermal maximum in the western Arctic (0–180 degrees W). Quaternary Science Reviews 23, (2004). 20592060.Google Scholar
Kauppila, T., Moisio, T., and Salonen, V.-P. A diatom inference model for autumn epilimnetic total phosphorus concentration and its application to a presently eutrophic boreal lake. Journal of Paleolimnology 27, (2002). 261273.Google Scholar
Kirilova, E., Heiri, O., Enters, D., Cremer, H., Lotter, A., Zolitschka, B., and Hübener, T. Climate-induced changes in the trophic status of a Central European lake. Journal of Limnology 68, (2009). 7182.Google Scholar
Korhola, A., and Tikkanen, M. Holocene development and early extreme acidification in a small hilltop lake studied in southern Finland. Boreas 20, (1991). 333356.Google Scholar
Korsman, T. Temporal and spatial trends of lake acidity in northern Sweden. Journal of Paleolimnology 22, (1999). 115.CrossRefGoogle Scholar
Krammer, K., and Lange-Bertalot, H. Bacillariophyceae. Etl, H., Gerloff, J., Heynig, H., Mollenhauer, D. Süßwasserflora von Mitteleuropa vol. 2, (1986–1991). Gustav Fischer Verlag, Stuttgart/Jena.Google Scholar
Lacoul, P., and Freedman, B.I. Physical and chemical limnology of 34 lentic waterbodies aloing a tropical-to-alpine altitudinal gradient in Nepal. International Revue der Gesamten Hydrobiologie 90, (2005). 254276.Google Scholar
Laird, K.R., Kingsbury, M.V., and Cumming, B.F. Diatom habitats, species diversity and water-depth inference models across surface-sediment transects in Worth Lake, northwest Ontario, Canada. Journal of Paleolimnology 44, (2010). 10091024.Google Scholar
Luoto, T.P. Subfossil Chironomidae (Insecta: Diptera) along a latitudinal gradient in Finland: development of a new temperature inference model. Journal of Quaternary Science 24, (2009). 150158.Google Scholar
Luoto, T.P. A Finnish chironomid- and chaoborid-based inference model for reconstructing past lake levels. Quaternary Science Reviews 28, (2009). 14811489.Google Scholar
Luoto, T.P., and Nevalainen, L. Larval chaoborid mandibles in surface sediments of small shallow lakes in Finland – implications for palaeolimnology. Hydrobiologia 631, (2009). 185195.Google Scholar
Luoto, T.P., and Salonen, V.-P. Fossil midge larvae (Diptera: Chironomidae) as quantitative indicators of late-winter hypolimnetic oxygen in southern Finland: a calibration model, case studies and potentialities. Boreal Environment Research 15, (2010). 118.Google Scholar
Luoto, T.P., and Sarmaja-Korjonen, K. Midge-inferred Holocene effective moisture fluctuations in a subarctic lake, northern Lapland. Boreas 40, (2011). 650659.Google Scholar
Luoto, T.P., Sarmaja-Korjonen, K., Nevalainen, L., and Kauppila, T. A 700 year record of temperature and nutrient changes in a small eutrophied lake in southern Finland. The Holocene 19, (2009). 10631072.CrossRefGoogle Scholar
Luoto, T.P., Kultti, S., Nevalainen, L., and Sarmaja-Korjonen, K. Temperature and effective moisture variability in southern Finland during the Holocene quantified with midge-based calibration models. Journal of Quaternary Science 25, (2010). 13171326.Google Scholar
Luoto, T.P., Nevalainen, L., Kubischta, F., Kultti, S., Knudsen, K.L., and Salonen, V.-P. Late Quaternary ecological turnover in high arctic Lake Einstaken, Nordaustlandet, Svalbard (80° N). Geografiska Annaler: Series A, Physical Geography 93, (2011). 337354.CrossRefGoogle Scholar
Meriläinen, J.J., Hynynen, J., Teppo, A., Palomäki, A., Granberg, K., and Reinikainen, P. Importance of diffuse nutrient loading and lake level changes to the eutrophication of an originally oligotrophic boreal lake: a palaeolimnological diatom and chironomid analysis. Journal of Paleolimnology 24, (2000). 251270.Google Scholar
Meriläinen, J.J., Hynynen, J., Palomäki, A., Mäntykoski, K., and Witick, A. Environmental history of an urban lake: a palaeolimnological study of Lake Jyväsjärvi, Finland. Journal of Paleolimnology 30, (2003). 387406.Google Scholar
Michelutti, M., Douglas, M.S.V., and Smol, J.P. Tracking recent recovery from eutrophication in a high arctic lake (Meretta Lake, Cornwallis Island, Nunavut, Canada) using fossil diatom assemblages. Journal of Paleolimnology 28, (2002). 377381.Google Scholar
Miettinen, J.O. A diatom-total phosphorus transfer function for freshwater lakes in southeastern Finland, including cross-validation with independent test lakes. Boreal Environment Research 8, (2003). 215228.Google Scholar
Mumm, H. Effects of competitors and Chaoborus predation on the cladocerans of a eutrophic lake: an enclosure study. Hydrobiologia 360, (1997). 253264.CrossRefGoogle Scholar
Nevalainen, L., (2004). Karkkilan Arapisto-järven paleolimnologinen kehitys vesikirppujen ja piilevien kuvastamana. University of Helsinki, unpublished MSc thesis.Google Scholar
Nevalainen, L., and Luoto, T.P. Implications for the use of sedimentary invertebrate communities to infer past presence of fish. Knowledge and Management of Aquatic Ecosystems 396, 5 (2010). 113.Google Scholar
Nevalainen, L., Luoto, T.P., Kultti, S., and Sarmaja-Korjonen, K. Do subfossil Cladocera and chydorid ephippia disentangle Holocene climate trends?. The Holocene 22, (2012). 291299.Google Scholar
Palm, F., El-Daoushy, F., and Svensson, J.-E. Fragmented subfossil Chaoborus mandibles reveal periods of cyprinid presence in lake histories. Journal of Paleolimnology 45, (2011). 101113.Google Scholar
Palm, F., El-Daoushy, F., and Svensson, J.-E. Development of subfossil Daphnia and Chaoborus assemblages in relation to progressive acidification and fish community alterations in SW Sweden. Hydrobiologia 684, (2012). 8395.Google Scholar
Pienitz, R., and Smol, J.P. Diatom assemblages and their relationship to environmental variables in lakes from the boreal forest-tundra ecotone near Yellowknife, Northwest Territories, Canada. Hydrobiologia 269, 270 (1993). 391404.Google Scholar
Pienitz, R., Smol, J.P., and Birks, H.J.B. Assessment of freshwater diatoms as quantitative indicators of past climatic change in the Yukon and Northwest Territories, Canada. Journal of Paleolimnology 13, (1995). 2149.Google Scholar
Pienitz, R., Smol, J.P., and MacDonald, G.M. Paleolimnological reconstruction of Holocene climatic trends from two boreal treeline lakes, Northwest Territories, Canada. Arctic, Antarctic, and Alpine Research 31, (1999). 8293.CrossRefGoogle Scholar
Renberg, I., and Hellberg, T. The pH history of lakes in south-western Sweden, as calculated from subfossil diatom flora of the sediments. Ambio 11, (1982). 3033.Google Scholar
Rosén, P., Segerström, U., Eriksson, L., Renberg, I., and Birks, H.J.B. Holocene climatic change reconstructed from diatoms, chironomids, pollen and near-infrared spectroscopy at an alpine lake (Sjuodjijaure) in northern Sweden. The Holocene 11, (2001). 551562.Google Scholar
Rühland, K., and Smol, J.P. Freshwater diatoms from the Canadian Arctic treeline and development of paleolimnological inference models. Journal of Phycology 38, (2002). 249264.Google Scholar
Sarmaja-Korjonen, K., and Alhonen, P. Cladoceran and diatom evidence of lake-level fluctuations from a Finnish lake and the effect of aquatic-moss layers on microfossil assemblages. Journal of Paleolimnology 22, (1999). 277290.Google Scholar
Sarmaja-Korjonen, K., and Seppä, H. Abrubt and consistent responses of aquatic and terrestrial ecosystems to the 8200 cal yr cold event — a lacustrine record from Lake Arapisto, Finland. The Holocene 17, (2007). 457467.Google Scholar
Sauer, J.D. Plant migration the dynamics of geographic patterning in seed plant species. (1988). University of California Press, Berkeley and Los Angeles, California.Google Scholar
Scheffer, M. Fish and nutrients interplay determines algal biomass: a minimal model. Oikos 62, (1991). 271282.Google Scholar
Schindler, D.W. Evolution of phosphorus limitation in lakes. Science 195, (1977). 260262.Google Scholar
Seppä, H., and Weckström, J. Holocene vegetational and limnological changes in the Fennoscandian tree-line area as documented by pollen and diatom records from Lake Tsuolbmajavri, Finland. Ecoscience 6, (1999). 621635.Google Scholar
Seppä, H., Birks, H.J.B., Odland, A., Poska, A., and Veski, S. Modern pollen surface sample set from northern Europe: developing and testing a tool for palaeoclimatological reconstructions. Journal of Biogeography 31, (2004). 251267.Google Scholar
Seppä, H., Hammarlund, D., and Antonsson, K. Low-frequency and high-frequency changes in temperature and effective humidity during the Holocene in south-central Sweden: implications for atmospheric and oceanic forcings of climate. Climate Dynamics 25, (2005). 285297.Google Scholar
Seppälä, M. Wind as a Geomorphic Agent in Cold Climates. (2004). Cambridge University Press, Google Scholar
Smol, J.P. Pollution of lakes and rivers: a paleoenvironmental perspective. 2nd ed. (2008). Blackwell Pub, Malden, MA.Google Scholar
Stefan, H.G., Hondzo, M., and Fang, X. Lake water quality modeling for projected future cliamte scenarios. Journal of Environmental Quality 22, (1993). 417431.Google Scholar
ter Braak, C.J.F., and Juggins, S. Weighted averaging partial least squares regression (WA-PLS): an improved method for reconstructing environmental variables from species assemblages. Hydrobiologia 269, 270 (1993). 485502.Google Scholar
ter Braak, C.J.F., and Šmilauer, P. CANOCO Reference manual and CanoDraw for Windows User's guide: Software for Canonical Community Ordination (version 4.5). (2002). Microcomputer Power, Google Scholar
Tolonen, K., Liukkonen, M., Harjula, R., and Pätilä, A. Acidification of small lakes in Finland documented by sedimentary diatom and chrysophycean remains. Smol, J.P., Batterbee, R.W., Davis, R.B., and Meriläinen, J. Diatoms and Lake Acidity. (1986). DrW Junk Publishers, Dordrecht. 169199.Google Scholar
Turkia, J., Sandman, O., and Huttunen, P. Palaeolimnological evidence of forestry practices disturbing small lakes in Finland. Boreal Environment Research 3, (1998). 4561.Google Scholar
Väliranta, M., Korhola, A., Seppä, H., Tuittila, E.-S., Sarmaja-Korjonen, K., Laine, J., and Alm, J. High-resolution reconstruction of wetness dynamics in a southern boreal raised bog, Finland, during the late Holocene: a quantitative approach. The Holocene 17, (2007). 10931107.CrossRefGoogle Scholar
Visconti, A., Manca, M., and de Bernardi, R. Eutrophication-like response to climate warming: an analysis of Lago Maggiore (N. Italy) zooplankton in contrasting years. Journal of Limnology 67, (2008). 8792.Google Scholar
Weckström, J., Korhola, A., Erästö, P., and Holmström, L. Temperature patterns over the past eight centuries in Northern Fennoscandia inferred from sedimentary diatoms. Quaternary Research 66, (2006). 7886.Google Scholar
Wetzel, R.G. Limnology. (2001). Academic Press, Lake and river ecosystems.Google Scholar