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Comparisons of N- and P-limited productivity between high granitic islands versus low carbonate atolls in the Seychelles Archipelago: a test of the relative-dominance paradigm

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Abstract

This exploratory study suggests that different geological systems (carbonate vs. granitic) in tropical waters have contrasting patterns of photosynthetic nutrient limitation correlated with inorganic nitrogen (N) and phosphorus (P) availability. Physiological assays for 21 predominant macrophyte species show that inorganic N and P are much less limiting to photosynthesis on granitic islands than is the case on carbonate islands and that, of the two, P is more likely to limit production in carbonate-rich tropical waters. Patterns of nutrient limitation in turn are reflected by differences in the relative dominance of functional groups of sessile, epilithic, photosynthetic organisms. Surveys at 33 sites on 10 islands revealed that nearshore waters on high granitic islands tend to be characterized by large and species-rich standing stocks of frondose macroalgae, often dominated by Sargassum spp., whereas waters around low carbonate islands tend to be dominated by hermatypic corals. Macrophyte tissue and seawater analyses also indicate a possible trend toward higher levels of N and P in granitic vs. carbonate islands. Pagode Island, a low carbonate island influenced by guano from seabird colonies, is an exception, with few corals, relatively high levels of tissue and seawater N and P, and a predominance of macroalgae (mostly Dictyosphaeria cavernosa).

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References

  • Adey WH, Adey PJ, Burke R, Kaufman L (1977) The Holocene reef systems of eastern Martinique, French West Indies. Atoll Res Bull 218:1–40

    Google Scholar 

  • Aspila I, Agemian H, Chau ASY (1976) A semi-automated method for the determination of inorganic, organic and total phosphate in sediments. Analyst 101:187–197

    Google Scholar 

  • Atkinson MJ, Smith SV (1983) C:N:P ratios of benthic marine plants. Limnol Oceanogr 28:568–574

    Google Scholar 

  • Banner AH (1974) Kaneohe Bay, Hawaii: urban pollution and a coral reef ecosystem. Proc 2nd Int Coral Reef Symp 2:685–702

    Google Scholar 

  • Benedict B (1984) The human population of the Seychelles. In: Stoddart DR (ed) Biogeography and ecology of the Seychelles Islands. Junk, The Hague, pp 627–639

    Google Scholar 

  • Berner RA (1984) Kinetic models for the early diagenesis of nitrogen, phosphorus, and silicon in anoxic marine sediments. In: Goldberg ED (ed) The sea, vol 5. Wiley-Interscience, New York

    Google Scholar 

  • Braithwaite CJR (1984) Geology of the Seychelles. In: Stoddart DR (ed) Biogeography and ecology of the Seychelles Islands. Junk, The Hague, pp 17–38

    Google Scholar 

  • Broecker WS, Peng TH (1982) Tracers in the sea. Eldigio, New York

    Google Scholar 

  • Chapman ARO, Craigie JS (1977) Seasonal growth in Laminaria longicruris: relations with dissolved inorganic nutrients and internal reserves of nitrogen. Mar Biol 40:107–205

    Google Scholar 

  • Crossland CJ (1983) Dissolved nutrients in coral reef waters. In: Barnes DJ (ed) Perspectives on coral reefs. Australian Institute of Marine Science, Townsville, pp 56–68

    Google Scholar 

  • DeKanel J, Morse JW (1978) The chemistry of orthophosphate uptake from seawater onto calcite and aragonite. Geochem Cosm A 42:1335–1340

    Google Scholar 

  • Dodge RE, Jickells TD, Knap AH, Boyd S, Bak RPM (1984) Reef-building coral skeletons as chemical pollution (phosphorus) indicators. Mar Poll Bull 15:178–187

    Google Scholar 

  • Doty MS (1973) Marine organisms-tropical algal ecology and conservation. In: Costin AB, Groves RH (eds) Nature conservation in the Pacific. Australian National University Press, canberra, pp 183–196

    Google Scholar 

  • Fagineli J, Vukovic A, Saleh FI, Pedzic J (1986) C:N:P ratios and stable carbon and hydrogen isotopes in the benthic marine algae Ulva rigida C. Ag. and Fucas virsoides J. Ag. J Exp Mar Biol Ecol 102:153–166

    Google Scholar 

  • Fishelson L (1973) Ecology of coral reefs in the Gulf of Aqaba (Red Sea) influenced by pollution. Oecologia 12:55–67

    Google Scholar 

  • Gaudette HE, Lyons WB (1980) Phosphate geochemistry in nearshore carbonate sediments: suggestion of apatite formation. Soc Econ Paleontol Mineral Spec Publ 29:215–225

    Google Scholar 

  • Graneli E (1978) Algal assay of limiting nutrients for phytoplankton production in the Oresund. Vatten 2:117–128

    Google Scholar 

  • Gulbrandsen RA, Robertson CE (1973) Inorganic phosphorus in seawater. In: Griffith EJ, Beeton A, Spencer JM, Mitchell DT (eds) Environmental phosphorus handbook. Wiley-Interscience, New York, pp 117–140

    Google Scholar 

  • Hallock P, Schlager W (1986) Nutrient excess and the demise of coral reefs and carbonate platforms. Palaios 1:389–398

    Google Scholar 

  • Hatcher BG, Larkum AWD (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 

  • Kalugina-Gutnik AA, Perestenko LP, Titlyanova TV (in press) Species composition, distribution and abundance of algae and sea-grasses of the Seychelles Islands. Atoll Res Bull

  • Kinsey DW, Davies PJ (1979) Effects of elevated nitrogen and phosphorus on coral reef growth. Limnol Oceanogr 24:935–940

    Google Scholar 

  • Kinsey DW, Domm A (1974) Effects of fertilization on a coral reef environment — primary production studies. Proc 2nd Int Coral Reef Symp 1:49–66

    Google Scholar 

  • Kornfeldt RA (1982) Relation between nitrogen and phosphorus content of macroalgae and the waters of Northern Oresund. Bot Mar 15:197–201

    Google Scholar 

  • Lapointe BE (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 BE (1987) Nitrogen and phosphorus limited photosynthesis and growth of Gracilaria tikvahiae in the Florida Keys: an experimental field study. Mar Biol 93:561–568

    Google Scholar 

  • Lapointe BE (1989a) Are we killing the reef? Florida Keys Magazine 12:19–28

    Google Scholar 

  • Lapointe BE (1989b) Macroalgal production and nutrient relations in oligotrophic areas of Florida Bay. Bull Mar Sci 44:312–323

    Google Scholar 

  • Lapointe BE, Littler MM, Littler DS (1987) A comparison of nutrient-limited productivity in macroalgae from a Caribbean barrier reef and from a mangrove ecosystem. Aquat Bot 28:243–255

    Google Scholar 

  • Lapointe BE, Littler MM, Littler DS (in press) N:P availability to marine macroalgae in siliciclastic versus carbonate-rich coastal waters. Estuaries

  • Littler MM (1976) Calcification and its role among the macroalgae. Micronesica 12:27–41

    Google Scholar 

  • Littler MM (1979) The effects of bottle volume, thallus weight, oxygen saturation levels, and water movement on apparent photosynthetic rates in marine algae. Aquat Bot 7:21–34

    Google Scholar 

  • Littler MM, Littler DS (1984) Models of tropical reef biogenesis: the contribution of algae. In: Round FE, Chapman DJ (eds) Progress in phycological research, vol 3. Biopress, Bristol, pp 323–364

    Google Scholar 

  • Littler MM, Littler DS (1988) Structure and role of algae in tropical reef communities. In: Lembi CA, Waaland JR (eds) Algae and human affairs. Cambridge University Press, Cambridge, pp 30–56

    Google Scholar 

  • Littler MM, Littler DS (1990) Productivity and nutrient relationships in psammophytic versus epilithic forms of Bryopsidales (Chlorophyta): comparisons based on a short-term physiological assay. Hydrobiologia 204/205:73–77

    Google Scholar 

  • Littler MM, Littler DS, Lapointe BE (1986) Baseline studies of herbivory and eutrophication on dominant reef communities of Looe Key National Marine Sanctuary. NOAA Tech Mem Ser NOS MEMD 1:49

    Google Scholar 

  • Littler MM, Littler DS, Lapointe BE (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 

  • Littler MM, Taylor PR, Littler DS (1989) Complex interactions in the control of coral zonation on a Caribbean reef flat. Oecologia 80:331–340

    Google Scholar 

  • Marsh JA Jr (1977) Terrestrial inputs of nitrogen and phosphorus on fringing reefs of Guam. Proc 3rd Int Coral Reef Symp 3:331–336

    Google Scholar 

  • Mshigeni KE, Dhanjee V, Jivan Shah MO (1986) Marine algal resources of the Seychelles: a survey of the species occurring on the islands and an assessment of their potential for agriculture, commerce, phycocolloid industry and other uses. Commonwealth Science Council, London, p 75

    Google Scholar 

  • Murphy J, Riley JP (1962) A modified single solution method for the determination of phosphate in natural waters. Anal Chim Acta 26:31–36

    Google Scholar 

  • Niell FX (1976) C:N ratio in some marine macrophytes and its possible ecological significance. Bot Mar 19:347–350

    Google Scholar 

  • Parsons TR, Takahashi M, Hargrave B (1977) Biological oceanographic processes. Pergamon, New York, p 332

    Google Scholar 

  • Procter J (1984) Vegetation of the granitic islands of the Seychelles. In: Stoddart DR (ed) Biogeography and ecology of the Seychelles Islands. Junk, The Hague, pp 193–207

    Google Scholar 

  • Sander F, Moore E (1979) Significance of ammonium in determining the N:P ratio of the seawater off Barbados, West Indies. Mar Biol 55:17–21

    Google Scholar 

  • SAS (1985) SAS users guide: statistics, version, 5th edn. SAS Institute, Cary, NC, p 956

    Google Scholar 

  • Short FT, Davis MW, Gibson RA, Zimmerman CF (1985) Evidence for phosphorus limitation in carbonate sediments of the seagrass Syringodium filiforme. Est Coast Shelf Sci 20:419–430

    Google Scholar 

  • Short FT, Dennison WC, Capone DG (1989) Phosphorus-limited growth of the tropical seagrass Syringodium filiforme in carbonate sediments. Mar Ecol Prog Ser 62:169–174

    Google Scholar 

  • Simkiss K (1964) Phosphates as crystal poisons of calcification. Biol Rev 39:487–505

    Google Scholar 

  • Smith SV (1984) Phosphorus versus nitrogen limitation in the marine environment. Limnol Oceanogr 29:1149–1160

    Google Scholar 

  • Smith SV, Kimmerer WJ, Laws EA, Brock RE, Walsh TW (1981) Kaneohe Bay sewage diversion experiment: perspectives on ecosystem response to nutritional perturbation. Pac Sci 35:279–397

    Google Scholar 

  • Sokal RP, Rohlf FJ (1969) Biometry. Freeman, San Francisco, p 776

    Google Scholar 

  • Stoddart DR (ed) (1984a) Biogeography and ecology of the Seychelles Islands. Junk, The Hague, p 691

    Google Scholar 

  • Stoddart DR (1984b) Impact of man in the Seychelles. In: Stoddart DR (ed) Biogeography and ecology of the Seychelles Islands. Junk, The Hague, pp 641–654

    Google Scholar 

  • Strickland JDH, Parsons TR (1972) A practical handbook of seawater analysis. Bull 167, Fish Res Bd, Ottawa, Canada, pp 310

    Google Scholar 

  • Taylor JD, Lewis MS (1970) The flora, fauna and sediments of the Seychelles marine grass beds of Mahè. J Nat Hist 4:199–220

    Google Scholar 

  • Wade BA (1976) The pollution ecology of Kingston Harbour, Jamaica. Scientific Report of the U.W.I.-O.D.M. Kingston Harbour Research Project, 1972–1975. Res Rept Zool Dept, Univ W Indies, No 5, Mona, Univ W Indies

    Google Scholar 

  • Walker DI, Ormond RFG (1982) Coral death from sewage and phosphate pollution at Aqaba, Red Sea. Mar Pollut Bull 13:21–25

    Google Scholar 

  • Wallentinus I (1976) Productivity studies on Cladophora glomerata (L.) Kützing in the northern Baltic proper. In: Persoone G, Jaspers E (eds) 10th European Symposium on Marine Biology, Ostend, Belgium, 17–23 September 1975. Universa Press, Belgium, pp 631–651

    Google Scholar 

  • Walsh RPD (1984) Climate of the Seychelles. In: Stoddart DR (ed) Biogeography and ecology of the Seychelles Islands. Junk, The Hague, pp 39–62

    Google Scholar 

  • Wanders JBW (1976) The role of benthic algae in the shallow reef of Curaçao (Netherlands Antilles) II. Primary productivity of the Sargassum beds on the north-east coast submarine plateau. Aquat Bot 2:327–335

    Google Scholar 

  • Weiss MP, Goddard DA (1977) Man's impact on coastal reefs: an example from Venezuela. Am Assoc Pet Geol Stud Geol 4:111–124

    Google Scholar 

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Littler, M.M., Littler, D.S. & Titlyanov, E.A. Comparisons of N- and P-limited productivity between high granitic islands versus low carbonate atolls in the Seychelles Archipelago: a test of the relative-dominance paradigm. Coral Reefs 10, 199–209 (1991). https://doi.org/10.1007/BF00336775

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