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Quantitative relationships between benthic diatom assemblages and water chemistry in Macquarie Island lakes and their potential for reconstructing past environmental changes

Published online by Cambridge University Press:  10 June 2008

Krystyna M. Saunders*
Affiliation:
Institute of Antarctic and Southern Ocean Studies, University of Tasmania, Private Bag 77, Hobart, TAS 7001, Australia
Dominic A. Hodgson
Affiliation:
British Antarctic Survey, NERC, High Cross, Madingley Road, Cambridge CB3 0ET, UK
Andrew McMinn
Affiliation:
Institute of Antarctic and Southern Ocean Studies, University of Tasmania, Private Bag 77, Hobart, TAS 7001, Australia

Abstract

This study is the first published survey of diatom-environment relationships on sub-Antarctic Macquarie Island. Fifty-eight sites in 50 coastal and inland lakes were sampled for benthic diatoms and water chemistry. 208 diatom species from 34 genera were identified. Multivariate analyses indicated that the lakes were distributed along nutrient and conductivity gradients. Conductivity, pH, phosphate (SRP), silicate and temperature all explained independent portions of the variance in the diatom data. Transfer functions provide a quantitative basis for palaeolimnological studies of past climate change and human impacts, and can be used to establish baseline conditions for assessing the impacts of recent climate change and the introduction of non-native plants and animals. Statistically robust diatom transfer functions for conductivity, phosphate and silicate were developed, while pH and temperature transfer functions performed less well. The lower predictive abilities of the pH and temperature transfer functions probably reflect the broad pH tolerance range of diatoms on Macquarie Island and uneven distribution of lakes along the temperature gradient. This study contributes to understanding the current ecological distribution of Macquarie Island diatoms and provides transfer functions that will be applied in studies of diatoms in lake sediment cores to quantitatively reconstruct past environmental changes.

Type
Biological Science
Copyright
Copyright © Antarctic Science Ltd 2009

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References

Battarbee, R.W., Jones, V.J., Flower, R.J., Cameron, N.G., Bennion, H., Carvalho, L. & Juggins, S. 2001. Diatoms. In Smolm, J.P., Birks, H.J.B. & Last, W.M., eds. Tracking environmental change using lake sediments: terrestrial, algal and siliceous indicators. Dordrecht: Kluwer, 155202.Google Scholar
Birks, H.J.B. 1998. Numerical tools in palaeolimnology - progress, potentialities, and problems. Journal of Paleolimnology, 20, 307322.CrossRefGoogle Scholar
Brothers, N.P. & Copson, G.R. 1988. Macquarie Island flora and fauna management - interpreting progress and predictions for the future. Papers and Proceedings of the Royal Society of Tasmania, 122, 129136.CrossRefGoogle Scholar
Bryden, M.M. 1988. Southern elephant seals as subjects for physiological research. Papers and Proceedings of the Royal Society of Tasmania, 122, 153158.CrossRefGoogle Scholar
Buckney, R.T. & Tyler, P.A. 1974. Reconnaissance limnology of sub-Antarctic islands II: additional features of the chemistry of Macquarie Island lakes and tarns. Australian Journal of Marine and Freshwater, 25, 8995.CrossRefGoogle Scholar
Copson, G. & Whinham, J. 2001. Review of ecological restoration programmes on subantarctic Macquarie Island: pest management progress and future directions. Ecological Management and Restoration, 2, 129138.CrossRefGoogle Scholar
Crosta, X., Pichon, J.J. & Burckle, L.H. 1998. Reappraisal of Antarctic seasonal sea ice at Last Glacial Maximum. Geophysical Research Letters, 25, 27032706.CrossRefGoogle Scholar
Davis, B.W. 1988. Heritage conservation in Antarctic and subantarctic jurisdictions: the case of Macquarie Island. Papers and Proceedings of the Royal Society of Tasmania, 122, 914.CrossRefGoogle Scholar
Eriksen, R. 1997. A practical manual for the determination of salinity, dissolved oxygen, and nutrients in seawater. Antarctic Cooperative Research Centre Report, No. 11. Hobart, TAS: Antarctic CRC, 83 pp.Google Scholar
Gillie, S.T. 2002. Warming of the Southern Ocean since the 1950s. Science, 295, 12751277.CrossRefGoogle Scholar
Glew, J.R. 1991. Miniature gravity corer for recovering short gravity cores. Journal of Paleolimnology, 5, 285287.CrossRefGoogle Scholar
Gremmen, N.J.M., Van de Vijver, B., Frenot, Y. & Lebouvier, M. 2007. Distribution of moss-inhabiting diatoms along the altitudinal gradient at sub-Antarctic Iles Kerguelen. Antarctic Science, 19, 1724.CrossRefGoogle Scholar
Hodgson, D.A. & Johnston, N.M. 1997. Inferring seal populations from lake sediments. Nature, 387, 3031.CrossRefGoogle Scholar
Hodgson, D.A., Vyverman, W.G. & Tyler, P.A. 1997. Diatoms of meromictic lakes adjacent to the Gordon River, and of the Gordon River estuary in south-west Tasmania. Bioliotheca Diatomologica, Band 35. Berlin: Cramer, 172 pp.Google Scholar
Hodgson, D.A., Roberts, D., McMinn, A., Verleyen, E., Terry, B., Corbett, C. & Vyverman, W. 2006. Recent rapid salinity rise in three East Antarctic lakes. Journal of Paleolimnology, 36, 385406.Google Scholar
Jones, V.J. & Birks, H.J.B. 2004. Lake-sediment records of recent environmental change on Svalbard: results of diatom analysis. Journal of Paleolimnology, 31, 445466.CrossRefGoogle Scholar
Jones, V.J. & Juggins, S. 1995. The construction of a diatom-based chlorophyll a transfer function and its application at three lakes on Signy Island (maritime Antarctic) subject to differing degrees of nutrient enrichment. Freshwater Biology, 34, 433445.CrossRefGoogle Scholar
Jones, V.J., Juggins, S. & Ellis-Evans, J.C. 1993. The relationship between water chemistry and surface sediment diatom assemblages in maritime Antarctic lakes. Antarctic Science, 5, 339348.CrossRefGoogle Scholar
Juggins, S. 2003. C2 User Guide. Software for ecological and palaeoecological data analysis and visualisation. Newcastle-upon-Tyne, UK: University of Newcastle.Google Scholar
Köster, D., Racca, J.M.J. & Pienitz, R. 2004. Diatom-based inference models and reconstructions revisited: methods and transformations. Journal of Paleolimnology, 32, 233246.CrossRefGoogle Scholar
Kumke, T., Kienel, U., Weckstrom, J., Korhola, A. & Hubberten, H.W. 2004. Inferred Holocene paleotemperatures from diatoms at Lake Lama, Central Siberia. Arctic Antarctic and Alpine Research, 36, 624634.CrossRefGoogle Scholar
Lamy, F., Hebbeln, D., Röhl, U. & Wefer, G. 2001. Holocene rainfall variability in southern Chile: a marine record of latitudinal shifts in the southern westerlies. Earth and Planetary Science Letters, 185, 369382.CrossRefGoogle Scholar
Lim, D.S.S., Smol, J.P. & Douglas, M.S.V. 2007. Diatom assemblages and their relationship to lakewater nitrogen levels and other limnological variables from 36 lakes and ponds on Banks Island, N.W.T., Canadian Arctic. Journal of Paleolimnology, 18, 313333.Google Scholar
Marshall, G.J. & Connolley, W.M. 2006. The effect of changing Southern Hemisphere winter sea surface temperatures on Southern Annular Mode strength. Geophysical Research Letters, 33, 10.1029/2006GL026627.CrossRefGoogle Scholar
McGlone, M.S. 2002. The Late Quaternary peat, vegetation and climate history of the Southern Ocean islands of New Zealand. Quaternary Science Reviews, 21, 683707.CrossRefGoogle Scholar
Pienitz, R., Smol, J.P. & Birks, H.J.B. 1995. Assessment of fresh-water diatoms as quantiative indicators of past climatic-change in the Yukon and Northwest-Territories, Canada. Journal of Paleolimnology, 13, 2149.CrossRefGoogle Scholar
PWS. 2007. Plan for the eradication of rabbits and rodents on Subantarctic Macquarie Island. Parks and Wildlife Service. Department of Tourism, Arts and the Environment, Tasmania, March 2007, 30 pp.Google Scholar
R Development Core Team. 2006. R: a language and environment for statistical computing. R Foundation for Statistical Computing. Vienna, Austria (available from http://www.R-project.org).Google Scholar
Rintoul, S.R., Hughes, C.W. & Olbers, D. 2001. The Antarctic Circumpolar Current system. In Siedler, G., Church, J. & Gould, J., eds. Ocean, circulation and climate: observing and modeling the global ocean. London: Academic Press, 271302.CrossRefGoogle Scholar
Roberts, D. & McMinn, A. 1999. Diatoms of the saline lakes of the Vestfold Hills, Antarctica. Bibliotheca Diatomologica, Band 44. Berlin: Cramer, 83 pp.Google Scholar
Sabbe, K., Hodgson, D.A., Verleyen, E., Taton, A., Wilmotte, A., Vanhoutte, K. & Vyverman, W.G. 2004. Salinity, depth and the structure and composition of microbial mats in continental Antarctic lakes. Freshwater Biology, 49, 296319.CrossRefGoogle Scholar
Selkirk, P.M., Seppelt, R.D. & Selkirk, D.R. 1990. Subantarctic Macquarie Island: environment and biology. Studies in Polar Research. Cambridge: Cambridge University Press, 285 pp.Google Scholar
Shindell, D.T. & Schmidt, G.A. 2004. Southern Hemisphere climate response to ozone changes and greenhouse gas increases. Geophysical Research Letters, 31, 10.1029/2004GL020724.CrossRefGoogle Scholar
Stoemer, E.F. & Smol, J.P. 1999 The diatoms: applications for the environmental and earth sciences. Cambridge: Cambridge University Press, 469 pp.CrossRefGoogle Scholar
Sun, L.G., Xie, Z.Q. & Zhao, J.L. 2000. Palaeoecology - a 3000-year record of penguin populations. Nature, 407, 858.CrossRefGoogle Scholar
Toggweiler, J.R., Russell, J.L. & Carson, S.R. 2006. Midlatitude westerlies, atmospheric CO2, and climate change during the ice ages. Paleoceanography, 21, A2005A2005.CrossRefGoogle Scholar
Tweedie, C.E. & Bergstrom, D.M. 2000. A climate change scenario for surface air temperature at Subantarctic Macquarie Island. In Davison, W., Howard-Williams, C. & Broady, P., eds. Antarctic ecosystems: models for wider understanding Christchurch: Caxton Press, 272281.Google Scholar
Van de Vijver, B. & Beyens, L. 1999. Moss diatom communities from Ile de la Possession (Crozet, Subantarctica) and their relationship with moisture. Polar Biology, 22, 219231.CrossRefGoogle Scholar
Van de Vijver, B., Beyens, L., Vincke, S. & Gremmen, N.J.M. 2004. Moss-inhabiting diatom communities from Heard Island, sub-Antarctica. Polar Biology, 27, 532543.CrossRefGoogle Scholar
Van de Vijver, B., Ledeganck, P. & Beyens, L. 2002a. Soil diatom communities from Ile de la Possession (Crozet, sub-Antarctica). Polar Biology, 25, 721729.CrossRefGoogle Scholar
Van de Vijver, B., Frenot, Y. & Beyens, L. 2002b. Freshwater diatoms from Ile de la Possession (Crozet Archipelago, Subantarctica). Bioliotheca Diatomologica, Band 46. Berlin: Cramer, 412 pp.Google Scholar
Verleyen, E., Hodgson, D.A., Vyverman, W.G., Roberts, D., McMinn, A., Vanhoutte, K. & Sabbe, K. 2003. Modelling diatom responses to climate induced fluctuations in the moisture balance in continental Antarctic lakes. Journal of Paleolimnology, 30, 195215.CrossRefGoogle Scholar
Vyverman, W., Vyverman, R., Hodgson, D.A. & Tyler, P.A. 1995. Diatoms from Tasmanian mountain lakes: a reference dataset (TASDIAT) for environmental reconstructions and a systematic auteocological study. Bioliotheca Diatomologica, Band 33. Berlin: Cramer, 192 pp.Google Scholar
Wagner, B. & Melles, M. 2001. A Holocene seabird record from Raffles Sø, East Greenland, in response to climatic and oceanic changes. Boreas, 30, 228–39.CrossRefGoogle Scholar
Weckström, K. & Juggins, S. 2006. Coastal diatom-environment relationships from the Gulf of Finland, Baltic Sea. Journal of Phycology, 42, 2135.CrossRefGoogle Scholar
Wolfe, A.P. 2003. Diatom community responses to late-Holocene climatic variability, Baffin Island, Canada: a comparison of numerical approaches. Holocene, 13, 2937.Google Scholar
Wong, A.P.S., Bindoff, N.L. & Church, J.L. 1999. Large scale freshening of intermediate waters in the Pacific and Indian Oceans. Nature, 400, 440443.CrossRefGoogle Scholar
Zale, R. 1994. Changes in the size of the Hope Bay Adelie penguin rookery as inferred from Lake Boeckella sediments. Ecography, 17, 297304.CrossRefGoogle Scholar
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