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Phosphatase activity as an early warning indicator of wetland eutrophication: problems and prospects

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Abstract

A phosphorus (P) loading experiment conducted in the oligotrophic P-limited Everglades was used to assess the utility of phosphatase activity (PA) of periphyton as an early warning (EW) indicator of wetland eutrophication. Phosphorus loads of 0, 0.4, 0.8, 1.6, 3.2, 6.4 and 12.8 g P m−2 yr−1 were applied to mesocosms placed in a slough community consisting of Cladium jamaicense Crantz, Eleocharis spp. and calcareous periphyton mats. Phosphatase activity, expressed on a biomass-specific basis, was not a sensitive indicator of P enrichment for epiphytic periphyton growing on acrylic dowels or floating mat periphyton. However, surface-area-specific PA was a sensitive indicator of P enrichment, responding within 2–3 weeks of the initiation of dosing. Surface-area-specific PA of unenriched periphyton ranged from 0.42 to 0.7 nmol cm−2 min−1, while PA of periphyton growing in the highest load (12.8 g P m−2 yr−1), ranged from 0.11 to 0.29 nmol cm−2 min−1. Conclusions drawn from PA analyses were consistent with those obtained from periphyton primary productivity and P content. Phosphatase activity is a potentially valuable EW indicator when used in conjunction with other complementary indicators.

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References

  • Belanger T.V., Scheidt D.J. and Platko J.R. II 1989. Effects of nutrient enrichment on the Florida Everglades. Lake Reservoir Manage 5: 101–111.

    Google Scholar 

  • Bothwell M.L. 1989. Phosphorus-limited growth dynamics of lotic periphyton diatom communities: areal biomass and cellular growth rate responses. Can. J. Fish. aquat. Sci. 46: 1293–1301.

    Google Scholar 

  • Burkholder J.A. and Wetzel R.G. 1990. Epiphytic alkaline phosphatase on natural and artificial plants in an oligotrophic lake: re-evaluation of the role of macrophytes as a phosphorus source for epiphytes. Limnol. Oceanogr. 35: 736–747.

    Google Scholar 

  • Cairns J. Jr and McCormick P.V. 1992. Developing an ecosystembased capability for ecological risk assessments. Environmental Professional 14: 186–196.

    Google Scholar 

  • Cembella A.D., Antia N.J. and Harrison P.J. 1984. The utilization of inorganic and organic phosphorus compounds as nutrients by eukaryotic microalgae: a multidisciplinary perspective. Part 1. CRC Crit. Rev. Microbiol. 10: 317–391.

    Google Scholar 

  • Chappell K.R. and Goulder R. 1994. Seasonal variation of epiphytic extracellular enzyme activity on two freshwater plants, Phragmites australis and Elodea canadensis. Arch. Hydrobiol. 132: 237–253.

    Google Scholar 

  • Davis S.M. 1991. Growth, decomposition and nutrient retention of Cladium jamaicense Crantz and Typha domingensis Pers. in the Florida Everglades. Aquat. Bot. 40: 203–224.

    Google Scholar 

  • Elser J.J. and Kimmel B.L. 1986. Alteration of phytoplankton phosphorus status during enrichment experiments: implications for interpreting nutrient enrichment bioassay results. Hydrobiologia 133: 217–222.

    Google Scholar 

  • Fitzgerald G.P. and Nelson T.C. 1966. Extractive and enzymztic anzlyses for limiting or surplus phosphorus in algac. J. Phycol.

  • Gage M.A. and Gorham E. 1985. Alkaline phosphatase activity and cellular phosphorus as an index of the phosphorus status of phytoplankton in Minnesota lakes. Freshwat. Biol. 15: 227–233.

    Google Scholar 

  • Healey F.P. and Hendzel L.L. 1980. Physiological indicators of nutrient deficiency in lake phytoplankton. Can. J. Fish. aquat. Sci. 37: 442–453.

    Google Scholar 

  • Heath R.T. 1986. Dissolved organic phosphorus compounds: Do they satisfy planktonic phosphate demand in summer. Can. J. Fish. aquat. Sci. 43: 343–350.

    Google Scholar 

  • Hino S. 1988. Fluctuation of algal alkaline phosphatase activity and the possible mechanisms of hydrolysis of dissolved organic phosphorus in Lake Barato. Hydrobiologia 157: 77–84.

    Google Scholar 

  • Jansson M., Olsson H. and Pettersson K. 1988. Phosphatases; origin, characteristics and function in lakes. Hydrobiologia 170: 157–175.

    Google Scholar 

  • Jensen J.J., Rutchey K., Koch M.S. and Narumalani S. 1995. Inland wetland change detection in the Everglades Water Conservation Area 2A using a time series of normalized remotely sensed data. Photogramm. Eng. Remote Sens. 61: 199–209.

    Google Scholar 

  • Klotz R.L. 1985. Influence of light on the alkaline phosphatase activity of Selenastrum capricornutum (Chlorophyceae) in streams. Can. J. Fish. aquat. Sci. 42: 384–388.

    Google Scholar 

  • Klotz R.L. 1992. Factors influencing alkaline phosphatase activity of stream epithilon. J. freshwat. Ecol. 2: 233–242.

    Google Scholar 

  • McCormick P.V., Newman S., Miao S.L., Gawlik D.E., Marley D., Reddy K.R. et al. 2001a. Effects of anthropogenic P inputs on the Everglades. In: Porter K.G. and Porter J. (eds), The Everglades, Florida Bay, and Coral Reefs of the Florida Keys: An Ecosystem Sourcebook. CRC Press, Boca Raton, FL, USA, pp. 83–126.

    Google Scholar 

  • McCormick P.V. and O'Dell M.B. 1996. Quantifying periphyton responses to phosphorus in the Florida Everglades: a synopticexperimental approach. J. N. Am. benthol. Soc. 15: 450–468.

    Google Scholar 

  • McCormick P.V., O'Dell M.B., Shuford R.B.E. III, Backus J.G. and Kennedy W.C. 2001b. Periphyton responses to experimental phosphorus enrichment in a subtropical wetland. Aquat. Bot. 71: 119–139.

    Google Scholar 

  • McCormick P.V., Rawlik P.S., Lurding K., Smith E.P. and Sklar F.H. 1996. Periphyton-water quality relationships along a nutrient gradient in the northern Everglades. J. N. Am. benthol. Soc. 15: 433–449.

    Google Scholar 

  • McCormick P.V., Shuford R.B.E. III, Backus J.G. and Kennedy W.C. 1998. Spatial and seasonal patterns of periphyton biomass and productivity in the northern Everglades, Florida, USA. Hydrobiologia 362: 185–208.

    Google Scholar 

  • McCormick P.V. and Stevenson R.J. 1998. Periphyton as a tool for ecological assessment and management in the Florida Everglades. J. Phycol. 34: 726–733.

    Google Scholar 

  • Mulholland P.J. and Rosemond A.D. 1992. Periphyton response to longitudinal nutrient depletion in a woodland stream: evidence of upstream-downstream linkage. J. N. Am. benthol. Soc. 11: 405–419.

    Google Scholar 

  • Pettersson K. 1980. Alkaline phosphatase activity and algal surplus phosphorus as phosphorus deficiency indicators in Lake Erken. Arch. Hydrobiol. 89: 54–87.

    Google Scholar 

  • Pick F.R. 1987. Interpretations of alkaline phosphate activity in Lake Ontario. Can. J. Fish. aquat. Sci. 8: 2087–2094.

    Google Scholar 

  • Rejmánková E. and Komárková J. 2000. A function of cyanobacterial mats in phosphorus-limited tropical wetlands. Hydrobiologia 431: 135–153.

    Google Scholar 

  • SAS Institute Inc. 1989. SAS/STAT® User's Guide, Version 6. SAS Institute Inc, Cary, NC, USA.

    Google Scholar 

  • Scholz O. and Boon P.I. 1993. Alkaline phosphatase, aminopeptidase and _-D glucosidase activities associated with billabong periphyton. Arch. Hydrobiol. 126: 429–443.

    Google Scholar 

  • Sinsabaugh R.L. and Linkins A.E. 1988. Exoenzyme activity associated with lotic epilithon. Freshwat. Biol. 0: 249–261.

    Google Scholar 

  • Steinman A.D. and Mulholland P.J. 1996. Phosphorus limitation, uptake, and turnover in stream algae. In: Hauer F.R. and Lamberti G.A. (eds), Methods in Stream Ecology. Academic Press, New York, USA, pp. 161–189.

    Google Scholar 

  • Stevenson R.J. and Glover R. 1993. Effects of algal density and current on ion transport through periphyton communities. Limnol. Oceanogr. 38: 1276–1281.

    Google Scholar 

  • Urban N.H., Davis S.M. and Aumen N.G. 1993. Fluctuations in sawgrass and cattail densities in Everglades Water Conservation Area 2A under varying nutrient, hydrologic and fire regimes. Aquat. Bot. 46: 203–223.

    Google Scholar 

  • USEPA 1983. Methods for the chemical analysis of water and wastes. EPA-600/4-79-0-20, revised. Office of Research and Development, United States Environmental Protection Agency, Cincinnati, Ohio, USA.

    Google Scholar 

  • Wetzel R.G. 1992. Gradient-dominated ecosystems: sources and regulatory functions of dissolved organic matter in freshwater ecosystems. Hydrobiologia 229: 181–198.

    Google Scholar 

  • Wetzel R.G. and Likens G.E. 1991. Limnological Analyses. 2nd edn. Springer-Verlag, New York, 391 pp.

    Google Scholar 

  • Whitton B.A. 1991. Use of phosphatase assays with algae to assess phosphorus status of aquatic environments. In: Jeffrey D.W. and Madden B. (eds), Bioindicators and Environmental Management. Academic Press, London, UK, pp. 295–310.

    Google Scholar 

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Newman, S., McCormick, P. & Backus, J. Phosphatase activity as an early warning indicator of wetland eutrophication: problems and prospects. Journal of Applied Phycology 15, 45–59 (2003). https://doi.org/10.1023/A:1022971204435

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