Skip to main content
Log in

Productivity and nutrient relationships in psammophytic versus epilithic forms of Bryopsidales (Chlorophyta): comparisons based on a short-term physiological assay

  • Functional seaweed morphology and relation to seaweed productivity
  • Published:
Hydrobiologia Aims and scope Submit manuscript

Abstract

Members of the green algal order Bryopsidales (= Caulerpales) are important calcifying agents of tropical reefs and comprise two fundamentally different life-form groups: (1) epilithic species with limited attachment structures and (2) psammophytic forms that have extensive subterranean rhizoidal systems. Because the shallow-water habitats of the former have relatively low nitrogen (N) to phosphorus (Pi) ratios compared to the pore waters of the sedimentary carbonate-rich substrata in which the latter are anchored, we hypothesized that epilithic forms should tend to be relatively more limited by N, while psammophytic species should tend to show Pi limitation. In partial support of the hypothesis, light-saturated net photosynthesis (Pmax) in the epilithic forms, Halimeda opuntia, H. lacrimosa and H. copiosa, tended to be enhanced by N, while Pi was inhibitory or had no effect. In contrast, the psammophytic forms, Udotea sp., U. conglutinata, H. monde, H. tuna and H. simulans, tended to be stimulated more by Pi, whereas N had little effect. The utility of a bioassay to assess macroalgal nutrient limitation, based on a physiological response (net Pmax) to short-term nutrient pulses, is demonstrated.

This is a preview of subscription content, log in via an institution to check access.

Access this article

Price excludes VAT (USA)
Tax calculation will be finalised during checkout.

Instant access to the full article PDF.

Similar content being viewed by others

References

  • Auer, M. T. & R. P. Canale, 1982. Ecological studies and mathematical modeling of Cladophora in Lake Huron: 3. The dependence of growth rates on internal phosphorus pool size. J. great. Lakes Res. 8: 93–99.

    Google Scholar 

  • Berner, R. A., 1974. Kinetic models for the early diagenesis of nitrogen, phosphorus, and silicon in anoxic marine sediments. In E. D. Goldberg (ed), The sea, vol. 5. Wiley, New York: 427–445.

    Google Scholar 

  • Broecker, W. S. & T. H. Peng, 1982. The tracers in the sea. Eldigio Press, New York, pp. 690.

    Google Scholar 

  • Capone, D. G., 1977. N2(C2H2) fixation (nitrogen fixation as measured by acetylene reduction) by macroalgal epiphytes. Third International Coral Reef Symposium, University of Miami, Miami, Florida: 337–342.

    Google Scholar 

  • Capone, D. G. & B. F. Taylor, 1977. Nitrogen fixation (acetylene reduction) in the phyllosphere of Thalassia testudinum. Mar. Biol. 40: 19–28.

    Google Scholar 

  • Capone, D. G. & B. F. Taylor, 1980. Microbial nitrogen cycling in a seagrass community. In V. Kennedy (ed), Estuarine perspectives. Academic Press, New York: 151–161.

    Google Scholar 

  • Capone D. G., D. L. Taylor & B. F. Taylor, 1977. Nitrogen fixation (acetylene reduction) associated with macroalgae in a coral-reef community in the Bahamas. Mar. Biol. 40: 29–32.

    Google Scholar 

  • Chapman, A. R. O. & J. S. Craigie, 1977. Seasonal growth in Laminaria longicruris: relation with dissolved inorganic nutrients and internal reserves of nitrogen. Mar. Biol. 40: 197–205.

    Google Scholar 

  • Chapman, F. & D. Mawson, 1906. On the importance of Halimeda as a reef-forming organism: with a description of the Halimeda-limestones of the New Hebrides. J. geol. Soc. Lond. 62: 702–711.

    Google Scholar 

  • Crossland, C. J. & D. J. Barnes, 1976. Acetylene reduction by corals. Limnol. Oceanogr. 21: 153–155.

    Google Scholar 

  • DeKanel, J. & J. W. Morse, 1978. The chemistry of orthophosphate uptake from seawater onto calcite and aragonite. Geochim. Cosmochim. Acta 42: 1335–1340.

    Google Scholar 

  • Doremus, C., 1982. Geochemical control of dinitrogen fixation in the open ocean. Biol. Oceanogr. 1: 429–436.

    Google Scholar 

  • Ginsburg, R. N., 1956. Environmental relationships of grain size and constituent particles in some south Florida carbonate sediments. Bull. am. Ass. Petrol. Geol. 40: 2384–2427.

    Google Scholar 

  • Gulbrandsen, R. A. & C. E. Robertson, 1973. Inorganic phosphorus in seawater. In E. J. Griffith, A. Beeton, J. M. Spencer & D. T. Mitchell (eds), Environmental phosphorus handbook. Wiley-Interscience, New York: 117–140.

    Google Scholar 

  • Hanisak, M. D., 1979. Growth patterns of Codium fragile spp. tomentosoides in response to temperature, irradiance, salinity, and nitrogen source. Mar. Biol. 50: 319–332.

    Google Scholar 

  • Hatcher, B. G. & A. W. D. Larkum, 1983. An experimental analysis of factors controlling the standing crop of the epilithic algal community on a coral reef. J. exp. mar. Biol. Ecol. 69: 61–84.

    Google Scholar 

  • Hillis-Colinvaux, L., 1980. Ecology and taxonomy of Halimeda: primary producer of coral reefs. Adv. mar. Biol. 17: 1–327.

    Google Scholar 

  • Hillis-Colinvaux, L., 1986. Halimeda growth and diversity on the deep fore-reef of Enewetak Atoll. Coral Reefs 5: 19–21.

    Google Scholar 

  • Lapointe, B. E., 1985. Strategies for pulsed nutrient supply to Gracilaria cultures in the Florida Keys: interactions between concentration and frequency of nutrient pulses. J. exp. mar. Biol. Ecol. 93: 211–222.

    Google Scholar 

  • Lapointe, B. E., 1986. Phosphorus-limited photosynthesis and growth of Sargassum natans and Sargassum fluitans (Phaeophyceae) in the western North Atlantic. Deep-Sea Res. 33: 391–399.

    Google Scholar 

  • Lapointe, B. E., 1987. Phosphorus- and nitrogen-limited photosynthesis and growth of Gracilaria tikvahiae (Rhodophyceae) in the Florida Keys: an experimental field study. Mar. Biol 93: 561–568.

    Google Scholar 

  • Lapointe, B. E., 1989. Macroalgal production and nutrient relations in oligotrophic areas of Florida Bay. Bull. mar. Sci. 44: 312–323.

    Google Scholar 

  • Lapointe, B. E., M. M. Littler & D. S. Littler, 1987. A comparison of nutrient-limited productivity in macroalgae from a Caribbean reef and from a mangrove ecosystem. Aquat. Bot. 28: 243–255.

    Google Scholar 

  • Littler, D. S. & M. M. Littler, 1990. Systematics of Udotea species (Bryopsidales, Chlorophyta) in the tropical western Atlantic. Phycologia 29: in press.

  • Littler, M. M., 1979. The effects of bottle volume, thallus weight, oxygen saturation levels, and water movement on apparent photosynthetic rates in marine algae. Aquat. Bot. 7: 21–37.

    Google Scholar 

  • Littler, M. M., D. S. Littler & B. E. Lapointe, 1986. Baseline studies of herbivory and eutrophication on dominant reef communities of Looe Key National Marine Sanctuary. National Oceanic and Atmospheric Administration, U.S. Department of Commerce, Washington, D. C., pp. 49.

    Google Scholar 

  • Littler, M. M., D. S. Littler & B. E. Lapointe, 1988. A comparison of nutrient- and light-limited photosynthesis in psammophytic versus epilithic forms of Halimeda (Caulerpales, Halimedaceae) from the Bahamas. Coral Reefs 6: 219–225.

    Google Scholar 

  • Mague, T. H. & O. Holm-Hansen, 1975. Nitrogen fixation on a coral reef. Phycologia 14: 87–92.

    Google Scholar 

  • Meyer, J. L., E. T. Schultz & G. S. Helfman, 1983. Fish schools: an asset to corals. Science 220: 1047–1049.

    Google Scholar 

  • Milliman, J. D., 1974. Recent sedimentary carbonates. Marine carbonates, part I. Springer, Berlin, pp. 375.

    Google Scholar 

  • Myers, V. B. & R. I. Iverson, 1981. Phosphorus and nitrogen limited phytoplankton productivity in northeastern Gulf of Mexico coastal estuaries. In B. J. Neilson & L. E. Cronin (eds), Estuaries and nutrients. Humana, Clifton, N. J.: 569–582.

  • Pilson, M. E. Q. & S. B. Betzer, 1973. Phosphorus flux across a coral reef. Ecology 54: 581–588.

    Google Scholar 

  • Redfield, A. C., 1958. The biological control of chemical factors in the environment. Am. Sci. 46: 205–221.

    Google Scholar 

  • Rosenberg, G. & J. Ramus, 1984. Uptake of inorganic nitrogen and seaweed surface area: volume ratios. Aquat. Bot. 19: 65–72.

    Google Scholar 

  • Rosenfeld, J. K., 1979. Interstitial water and sediment chemistry of two cores from Florida Bay. J. Sed. Petrol. 49: 989–994.

    Google Scholar 

  • Ryther, J. H. & W. M. Dunstan, 1971. Nitrogen, phosphorus, and eutrophication in the coastal marine environment. Science 171: 1008–1013.

    Google Scholar 

  • Schmitt, M. R. & M. S. Adams, 1981. Dependence of rates of apparent photosynthesis on tissue phosphorus concentrations in Myriophyllum spicatum L. Aquat. Bot. 11: 379–387.

    Google Scholar 

  • Silva, P. C., 1982. Chlorophyceae. In S. P. Parker (ed), Synopsis and classification of living organism, vol. 1. McGraw-Hill, New York: 133–161.

    Google Scholar 

  • Smith, S. V., 1984. Phosphorus versus nitrogen limitation in the marine environment. Limnol. Oceanogr. 29: 1149–1160.

    Google Scholar 

  • Smith, V. H. & M. J. Atkinson, 1984. Phosphorus limitation of net production in a confined aquatic ecosystem. Nature 307: 626–627.

    Google Scholar 

  • Topinka, J. A. & J. V. Robbins, 1976. Effects of nitrate and ammonium enrichment on growth and nitrogen physiology in Fucus spiralis. Limnol. Oceanogr. 21: 659–664.

    Google Scholar 

  • Vince, S. & I. Valiela, 1973. The effects of ammonium and phosphate enrichments on chlorophyll a, pigment ratio and species composition of phytoplankton of Vineyard Sound. Mar. Biol. 19: 69–73.

    Google Scholar 

  • Wiebe, W. J., R. E. Johannes & K. L. Webb, 1975. Nitrogen fixation in a coral reef community. Science 188: 257–259.

    Google Scholar 

  • Williams, S. L., 1984. Uptake of sediment ammonium and translocation in a marine green macroalga Caulerpa cupressoides. Limnol. Oceanogr. 29: 374–379.

    Google Scholar 

  • Williams, S. L. & T. R. Fisher, 1985. Kinetics of nitrogen-15 labeled ammonium uptake by Caulerpa cupressoides (Chlorophyta). J. Phycol. 21: 287–296.

    Google Scholar 

  • Zimmerman, R. C. & J. N. Kremer, 1984. Episodic nutrient supply to a kelp forest ecosystem in southern California. J. mar. Res. 42: 591–604.

    Google Scholar 

Download references

Author information

Authors and Affiliations

Authors

Rights and permissions

Reprints and permissions

About this article

Cite this article

Littler, M.M., Littler, D.S. Productivity and nutrient relationships in psammophytic versus epilithic forms of Bryopsidales (Chlorophyta): comparisons based on a short-term physiological assay. Hydrobiologia 204, 49–55 (1990). https://doi.org/10.1007/BF00040214

Download citation

  • Issue Date:

  • DOI: https://doi.org/10.1007/BF00040214

Key words

Navigation