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Research/review articles

Using visible reflectance spectroscopy to reconstruct historical changes in chlorophyll a concentration in East Antarctic ponds

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Article: 19932 | Published online: 27 Dec 2013

References

  • Anderson W.B, Polis G.A. Nutrient fluxes from water to land: seabirds affect plant nutrient status on Gulf of California islands. Oecologia. 1999; 118: 324–332.
  • Blais J.M, Kimpe L.E, McMahon D, Keatley B.E, Mallory M.L, Douglas M.S.V. Arctic seabirds transport marine-derived contaminants. Science. 2005; 309: 445–445.
  • Blais J.M, Macdonald R.W, Mackay D, Webster E, Harvey C, Smol J.P. Biologically mediated transport of contaminants to aquatic systems. Environmental Science & Technology. 2007; 41: 1075–1084.
  • Broady P.A. Broadscale patterns in the distribution of aquatic and terrestrial vegetation at three ice-free regions on Ross Island, Antarctica. Hydrobiologia. 1989; 172: 77–95.
  • Butkutë B, Šlepetienė A. Near-infrared reflectance spectroscopy as a fast method for simultaneous prediction of several soil quality components. Chemija. 2004; 15: 12–20.
  • Carrere V, Spilmont N, Davoult D. Comparison of simple techniques for estimating chlorophyll a concentration in the intertidal zone using high spectral-resolution field-spectrometer data. Marine Ecology Progress Series. 2004; 274: 31–40.
  • Chen Q.Q, Liu X.D, Liu W.Q, Jiang S. Near infrared reflectance spectroscopy (NIRS): a novel approach to reconstructing historical changes of primary productivity in Antarctic lake. Spectroscopy and Spectral Analysis. 2011; 31: 2688–2691. (In Chinese with English abstract.).
  • Cohen M.J, Prenger J.P, DeBusk W.F. Visible-near infrared reflectance spectrocopy for rapid, nondestructive assessment of wetland soil quality. Journal of Environmenatal Quality. 2005; 34: 1422–1434.
  • Cozzolino D, Morón A. Potential of near-infrared reflectance spectroscopy and chemometrics to predict soil organic carbon fractions. Soil & Tillage Research. 2006; 85: 78–85.
  • Das B. Reconstruction of historical productivity using visible-near-infrared (VNIR) reflectance properties from boreal and saline lake sediments. Aquatic Ecology. 2007; 41: 209–220.
  • Das B, Vinebrooke R.D, Sanchez-Azofeifa A, Rivard B, Wolfe A.P. Inferring sedimentary chlorophyll concentrations with reflectance spectroscopy: a novel approach to reconstructing historical changes in the trophic status of mountain lakes. Canadian Journal of Fisheries and Aquatic Sciences. 2005; 62: 1067–1078.
  • Datt B. Visible/near infrared reflectance and chlorophyll content in eucalyptus leaves. International Journal of Remote Sensing. 1999; 20: 2741–2759.
  • Emslie S.D, Berkman P.A, Ainley D.G, Coats L, Polito M. Late-Holocene initiation of ice-free ecosystems in the southern Ross Sea, Antarctica. Marine Ecology Progress Series. 2003; 262: 19–25.
  • Emslie S.D, Coats L, Licht K. A 45,000 yr record of Adelie penguins and climate change in the Ross Sea, Antarctica. Geology. 2007; 35: 61–64.
  • Emslie S.D, Woehler E.J. A 9000-year record of Adelie penguin occupation and diet in the Windmill Islands, East Antarctica. Antarctic Science. 2005; 17: 57–66.
  • Fariña J.M, Salazar S, Wallem K.P, Witman J.D, Ellis J.C. Nutrient exchanges between marine and terrestrial ecosystems: the case of the Galapagos sea lion. Zalophus wollebaecki. Journal of Animal Ecology. 2003; 72: 873–887.
  • Foley W.J, Mcllwee A, Lawler I, Aragones L, Woolnough A.P, Berding N. Ecological applications of near infrared reflectance spectroscopy—a tool for rapid, cost-effective prediction of the composition of plant and animal tissues and aspects of animal performance. Oecalogia. 1998; 116: 293–305.
  • Font R, Del Río M, Vélez D, Montoro R, De Haro A. Use of near-infrared spectroscopy for determining the total arsenic content in prostrate amaranth. Science of the Total Environment. 2004; 327: 93–104.
  • Hannan L.B, Roth J.D, Ehrhart L.M, Weishampel J.F. Dune vegetation fertilization by nesting sea turtles. Ecology. 2007; 88: 1053–1058.
  • Hawes I. Nutrients and their effects on phytoplankton populations in lakes on Signy Island, Antarctica. Polar Biology. 1983; 2: 115–126.
  • Hodgson D.A, Doran P.T, Roberts D, McMinn A, Pienitz R. Paleolimnological studies from the Antarctic and Subantarctic islands. Long-term environmental change in Arctic and Antarctic lakes. Developments in palaeoenvironmental research. 2004; Dordrecht: Springer. 419–474.
  • Hodgson D.A, Noon P.E, Vyverman W, Bryant C.L, Gore D.B, Appleby P, Gilmour M, Verleyen E, Sabbe K, Jones V.J. Were the Larsemann Hills ice-free through the Last Glacial Maximum?. Antarctic Science. 2001; 13: 440–454.
  • Huang T, Sun L.G, Wang Y.H, Liu X.D, Zhu R.B. Penguin population dynamics for the past 8500 years at Gardner Island, Vestfold Hills. Antarctic Science. 2009; 21: 571–578.
  • Keatley B.E, Douglas M.S.V, Blais J.M, Mallory M.L, Smol J.P. Impacts of seabird-derived nutrients in water quality and diatom assemblages from Cape Vera, Devon Island, Canadian High Arctic. Hydrobiologia. 2009; 621: 191–205.
  • Kooistra L, Wehrens R, Leuven R.S.E.W, Buydens L.M.C. Possibilities of visible-near-infrared spectroscopy for the assessment of soil contamination in river floodplains. Analytica Chimica Acta. 2001; 446: 97–105.
  • Korsman T, Nilsson M, Oehman J, Renberg I. Near-infrared reflectance spectroscopy of sediments: a potential method to infer the past pH of lakes. Environmental Science & Technology. 1992; 26: 2122–2126.
  • Korsman T, Nilsson M.B, Landgren K, Renberg I. Spatial variability in surface sediment composition characterised by near-infrared (NIR) reflectance spectroscopy. Journal of Paleolimnology. 1999; 21: 61–71.
  • Leavitt P.R, Hodgson D.A, Smol J.P . Sedimentary pigments. Tracking environmental change using lake sediments. Terrestrial, algal and siliceous indicators. 2001; Vol. 3 Dordrecht: Kluwer Academic Publishers. 295–325.
  • Liu X, Nie Y, Sun L, Emslie S.D. Eco-environmental implications of elemental and carbon distributions in ornithogenic sediments from the Ross Sea region, Antarctic. Geochimica et Cosmochimica Acta. 2013; 117: 99–114.
  • Liu X.D, Sun J, Sun L.G, Liu W.Q, Wang Y.H. Reflectance spectroscopy: a new approach for reconstructing penguin population size from Antarctic ornithogenic sediments. Journal of Paleolimnology. 2011; 45: 213–222.
  • Liu X.D, Sun L.G, Xie Z.Q, Yin X.B, Zhu R.B, Wang Y.H. A preliminary record of the historical seabird population in the Larsemann Hills, East Antarctica, from geochemical analyses of Mochou Lake sediments. Boreas. 2007; 36: 182–197.
  • Liu X.D, Zhao S.P, Sun L.G, Yin X.B, Xie Z.Q, Luo H.H, Wang Y.H. P and trace metal contents in biomaterials, soils, sediments and plants in colony of red-footed booby (Sula sula) in the Dongdao Island of South China Sea. Chemosphere. 2006; 65: 707–715.
  • Lobell D.B, Asner G.P. Moisture effects on soil reflectance. Soil Science Society of America Journal. 2002; 66: 722–727.
  • Malley D.F. Use of near-infrared reflectance spectroscopy in prediction of heavy metals in freshwater sediment by their association with organic matter. Environmental Science & Technology. 1997; 31: 3461–3467.
  • Michelutti N, Blais J.M, Cumming B.F, Paterson A.M, Rühland K, Wolfe A.P, Smol J.P. Do spectrally inferred determinations of chlorophyll a reflect trends in lake trophic status?. Journal of Paleolimnology. 2010; 43: 205–217.
  • Michelutti N, Blais J.M, Mallory M.L, Brash J, Thienpont J, Kimpe L.E, Douglas M.S.V, Smol J.P. Trophic position influences the efficacy of seabirds as metal biovectors. Proceedings of the National Academy of Sciences of the United Stated of America. 2010; 107: 10543–10548.
  • Michelutti N, Keatley B.E, Brimble S, Blais J.M, Liu H.J, Douglas M.S.V, Mallory M.L, Macdonald R.W, Smol J.P. Seabird-driven shifts in Arctic pond ecosystems. Proceedings of the Royal Society B-Biological Sciences. 2008; 276: 591–596.
  • Michelutti N, Wolfe A.P, Vinebrooke R.D, Rivard B, Briner J.P. Recent primary production increases in Arctic lakes. Geophysical Research Letters. 2005; 32: 19715.
  • Monaghan A.J, Bromwich D.H, Powers J.G, Manning K.W. The climate of the McMurdo, Antarctica, region as represented by one year of forecasts from the Antarctic Mesoscale Prediction System. Journal of Climate. 2005; 18: 1174–1189.
  • Morón A, Cozzolino D. Determination of potentially mineralizable nitrogen and nitrogen in particulate organic matter fractions in soil by visible and near-infrared reflectance spectroscopy. Journal of Agricultural Science. 2004; 142: 335–343.
  • Nie Y.G, Liu X.D, Sun L.G, Emslie S.D. Effect of penguin and seal excrement on mercury distribution in sediments from the Ross Sea region, East Antarctica. Science of the Total Environment. 2012; 433: 132–140.
  • Nilsson M.B, Dåbakk E, Korsman T, Renberg I. Quantifying relationships between near-infrared reflectance spectra of lake sediments and water chemistry. Environmental Science & Technology. 1996; 30: 2586–2590.
  • Osborne B.G, Fearn T, Hindle P.H. Practical NIR spectroscopy with applications in food and beverage analysis. 1993; Harlow, UK: Longman Scientific and Technical. 13–35.
  • Pasquini C. Near infrared spectroscopy: fundamentals, practical aspects and analytical applications. Journal of the Brazilian Chemical Society. 2003; 14: 198–219.
  • Polis G.A, Anderson W.B, Holt R.D. Toward an integration of landscape and food web ecology: the dynamics of spatially subsidized food webs. Annual Review of Ecology and Systematics. 1997; 28: 289–316.
  • Rosén P. Total organic carbon (TOC) of lake water during the Holocene inferred from lake sediments and near-infrared spectroscopy (NIRS) in eight lakes from northern Sweden. Biogeochemistry. 2005; 76: 503–516.
  • Rouillard A, Rosén P, Douglas M.S.V, Pienitz R, Smol J.P. A model for inferring dissolved organic carbon (DOC) in lakewater from visible-near-infrared spectroscopy (VNIRS) measures in lake sediment. Journal of Paleolimnology. 2011; 46: 187–202.
  • Rundquist D.C, Han L, Schalles J.F, Peake J.S. Remote measurement of algal chlorophyll in surface waters: the case for the first derivative of reflectance near 690 nm. Photogrammetric Engineering and Remote Sensing. 1996; 62: 195–200.
  • Shen J, Xu R.M, Zhou G.F. Research on the structure and relationship of terrestrial, freshwater, intertidaland shallow sea ecosystems in Fildes Peninsula, Antarctica. Chinese Journal of Polar Research. 1999; 11: 100–112. (In Chinese with English abstract.).
  • Squier A.H, Hodgson D.A, Keely B.J. Sedimentary pigments as markers for environmental change in an Antarctic lake. Organic Geochemistry. 2002; 33: 1655–1665.
  • Sun L.G, Xie Z.Q, Zhao J.L. A 3,000-year record of penguin populations. Nature. 2000; 407: 858.
  • Trachsel M, Grosjean M, Schnyder D, Kamenik C, Rein B. Scanning reflectance spectroscopy (380–730 nm): a novel method for quantitative high-resolution climate reconstructions from minerogenic lake sediments. Journal of Paleolimnology. 2010; 44: 979–994.
  • Wang J.Q, Liu J.L. Amino acids and stable carbon isotope distributions in Taihu Lake, China, over the last 15,000 years, and their paleoecological implications. Quaternary Research. 2000; 53: 223–228.
  • Wolfe A.P, Vinebrooke R.D, Michelutti N, Rivard B, Das B. Experimental calibration of lake-sediment spectral reflectance to chlorophyll a concentrations: methodology and paleolimnological validation. Journal of Paleolimnology. 2006; 36: 91–100.