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The same but different: stable isotopes reveal two distinguishable, yet similar, neighbouring food chains in a coral reef

Published online by Cambridge University Press:  03 August 2017

Baptiste Le Bourg*
Affiliation:
Aix Marseille Université, CNRS/INSU, IRD, Mediterranean Institute of Oceanography (MIO), UM 110, 13288 Marseille, France Université de Liège, Laboratory of Oceanology, MARE Centre, 4000 Liège, Belgium
Yves Letourneur
Affiliation:
Université de la Nouvelle-Calédonie, Laboratoire LIVE and LABEX ‘CORAIL’, BP R4, 98851 Nouméa cedex, New Caledonia
Daniela Bănaru
Affiliation:
Aix Marseille Université, CNRS/INSU, IRD, Mediterranean Institute of Oceanography (MIO), UM 110, 13288 Marseille, France
Jean Blanchot
Affiliation:
Aix Marseille Université, CNRS/INSU, IRD, Mediterranean Institute of Oceanography (MIO), UM 110, 13288 Marseille, France
Cristèle Chevalier
Affiliation:
Aix Marseille Université, CNRS/INSU, IRD, Mediterranean Institute of Oceanography (MIO), UM 110, 13288 Marseille, France
Gérard Mou-Tham
Affiliation:
Institut de Recherche pour le Développement (IRD), Centre de Nouméa, 98848 Nouméa, New Caledonia
Benoit Lebreton
Affiliation:
Université de La Rochelle, UMR CNRS 7266 LIENSs, 17000 La Rochelle, France
Marc Pagano
Affiliation:
Aix Marseille Université, CNRS/INSU, IRD, Mediterranean Institute of Oceanography (MIO), UM 110, 13288 Marseille, France
*
Correspondence should be addressed to: B. Le Bourg, Université de Liège, Laboratory of Oceanology, MARE Centre, 4000 Liège, Belgium email: [email protected]

Abstract

Stable isotope compositions were studied in particulate organic matter (POM), zooplankton and different trophic groups of teleosts to compare food chains based on plankton at two sites (lagoon and outer slope) in a New Caledonian coral reef. For each trophic compartment, δ13C values were always lower in the outer slope than in the lagoon. This result may be explained by potential differences in POM composition between the two environments, suggesting that the two food chains are based on different primary sources of carbon. In contrast, δ15N values did not vary between the lagoon and the outer slope, indicating that these two food chains presented similar length and trophic levels, despite being distinguishable.

Type
Research Article
Copyright
Copyright © Marine Biological Association of the United Kingdom 2017 

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References

REFERENCES

Barnett, A., Bellwood, D.R. and Hoey, A.S. (2006) Trophic ecomorphology of cardinalfish. Marine Ecology Progress Series 322, 249257.Google Scholar
Briand, M.J., Bonnet, X., Goiran, C., Guillou, G. and Letourneur, Y. (2015) Major sources of organic matter in a complex coral reef lagoon: identification from isotopic signatures (δ13C and δ15N). PLoS ONE 10, e0131555.Google Scholar
Briand, M.J., Bonnet, X., Guillou, G. and Letourneur, Y. (2016) Complex food webs in highly diversified coral reefs: insights from δ13C and δ15N stable isotopes. Food Webs 8, 1222.Google Scholar
Bunn, S.E., Loneragan, N.R. and Kempster, M.A. (1995) Effects of acid washing on stable isotope ratios of C and N in penaeid shrimp and seagrass: implications for food-web studies using multiple stable isotopes. Limnology and Oceanography 40, 622625.Google Scholar
Carassou, L., Kulbicki, M., Nicola, T.J.R. and Polunin, N.V.C. (2008) Assessment of fish trophic status and relationships by stable isotope data in the coral reef lagoon of New Caledonia, southwest Pacific. Aquatic Living Resources 21, 112.Google Scholar
Carleton, J.H. and Doherty, P.J. (1998) Tropical zooplankton in the highly-enclosed lagoon of Taiaro Atoll (Tuamotu Archipelago, French Polynesia). Coral Reefs 17, 2935.Google Scholar
Ceccarelli, D.M. (2007) Modification of benthic communities by territorial damselfish: a multi-species comparison. Coral Reefs 26, 853866.Google Scholar
Champalbert, G. (1993) Plankton inhabiting the surface layer of the southern and southwestern lagoon of New Caledonia. Marine Biology 115, 223228.Google Scholar
Chevalier, C., Devenon, J.L. and Rey, V. (2012) Impact of cross-reef fluxes on the Ouano lagoon circulation. In Yellowlees, D. and Hughes, T.P. (eds) Proceedings of the 12th International Coral Reef Symposium, Cairns, Australia, 9–13 July 2012. Townsville, Queensland: James Cook University, ICRS2012_4A_1.Google Scholar
Chevalier, C., Sous, D., Devenon, J.L., Pagano, M., Rougier, G. and Blanchot, J. (2015) Impact of cross-reef water fluxes on lagoon dynamics: a simple parameterization for coral lagoon circulation model, with application to the Ouano Lagoon, New Caledonia. Ocean Dynamics 65, 15091534.Google Scholar
Chisholm, L.A. and Roff, J.C. (1990) Size-weight relationships and biomass of tropical off Kingston, Jamaica. Marine Biology 106, 7177.Google Scholar
Cortés, E. (1997) A critical review of methods of studying fish feeding based on analysis of stomach contents: application to elasmobranch fishes. Canadian Journal of Fisheries and Aquatic Sciences 54, 726738.Google Scholar
Crossman, D.J., Choat, J.H., Clements, K.D., Hardy, T. and McConochie, J. (2001) Detritus as food for grazing fishes on coral reefs. Limnology and Oceanography 46, 15961605.Google Scholar
Cuet, P., Atkinson, M.J., Blanchot, J., Casareto, B.E., Cordier, E., Falter, J., Frouin, P., Fujimura, H., Pierret, C., Susuki, Y. and Tourrand, C. (2011) CNP budgets of a coral-dominated fringing reef at La Réunion, France: coupling of oceanic phosphate and groundwater nitrate. Coral Reefs 30, 4555.Google Scholar
Davenport, S.R. and Bax, N.J. (2002) A trophic study of a marine ecosystem off southeastern Australia using stable isotopes of carbon and nitrogen. Canadian Journal of Fisheries and Aquatic Sciences 59, 514530.Google Scholar
de Brye, B., de Brauwere, A., Gourgue, O., Delhez, E.J. and Deleersnijder, E. (2013) Reprint of water renewal timescales in the Scheldt Estuary. Journal of Marine Systems 128, 316.Google Scholar
Delesalle, B. and Sournia, A. (1992) Residence time of water and phytoplankton biomass in coral reef lagoons. Continental Shelf Research 12, 939949.Google Scholar
DeNiro, M.J. and Epstein, S. (1978) Influence of diet on the distribution of carbon isotopes in animals. Geochimica and Cosmochimica Acta 42, 495506.Google Scholar
DeNiro, M.J. and Epstein, S. (1981) Influence of diet on the distribution of nitrogen isotopes in animals. Geochimica and Cosmochimica Acta 45, 341351.Google Scholar
Dromard, R.C., Bouchon-Navaro, Y., Cordonnier, S., Fontaine, M.F., Verlaque, M., Harmelin-Vivien, M. and Bouchon, C. (2013) Resource use of two damselfishes, Stegastes planifrons and Stegastes adustus, on Guadeloupean reefs (Lesser Antilles): inference from stomach content and stable isotope analysis. Journal of Experimental Marine Biology and Ecology 440, 116125.Google Scholar
Frédérich, B., Fabri, G., Lepoint, G., Vandewalle, P. and Parmentier, E. (2009) Trophic niches of thirteen damselfishes (Pomacentridae) at the Grand Récif of Toliara, Madagascar. Ichthyological Research 56, 1017.Google Scholar
Friedlander, A.M. and DeMartini, E.E. (2002) Contrasts in density, size, and biomass of reef fishes between the northwestern and the main Hawaiian islands: the effects of fishing down apex predators. Marine Ecology Progress Series 230, 253264.Google Scholar
Gottfried, M. and Roman, M.R. (1983) Ingestion and incorporation of coral-mucus detritus by reef zooplankton. Marine Biology 72, 211218.Google Scholar
Hamner, W.M., Colin, P.L. and Hamner, P.P. (2007) Export-import dynamics of zooplankton on a coral reef in Palau. Marine Ecology Progress Series 334, 8392.Google Scholar
Hamner, W.M., Jones, M.S., Carleton, J.H., Hauri, I.R. and Williams, D. McB. (1988) Zooplankton, planktivorous fish, and water currents on a windward reef face: Great Barrier Reef, Australia. Bulletin of Marine Science 42, 459479.Google Scholar
Harmelin-Vivien, M., Loizeau, V., Mellon, C., Beker, B., Arlhac, D., Bodiguel, X., Ferraton, F., Hermand, R., Pillippon, X. and Salen-Picard, C. (2008) Comparison of C and N stable isotope ratios between surface particulate organic matter and microphytoplankton in the Gulf of Lions (NW Mediterranean). Continental Shelf Research 28, 19111919.Google Scholar
Hobson, E.S. (1974) Feeding relationships of teleostean fishes on coral reefs in Kona, Hawaii. Fishery Bulletin 72, 9151031.Google Scholar
Hobson, K.A. (1999) Tracing origins and migration of wildlife using stable isotopes: a review. Oecologia 120, 314326.Google Scholar
Houlbrèque, F., Delesalle, B., Blanchot, J., Montel, Y. and Ferrier-Pagès, C. (2006) Picoplankton removal by the coral reef community of La Prévoyante, Mayotte Island. Aquatic Microbial Ecology 44, 5970.Google Scholar
Howe, J.C. (1993) A comparative analysis of the feeding apparatus in pomacanthids, with special emphasis of oesophageal papillae in Genicanthus personatus. Journal of Fish Biology 43, 593602.Google Scholar
Jacquet, S., Delesalle, B., Torréton, J.P. and Blanchot, J. (2006) Response of phytoplankton communities to increased anthropogenic influences (southwestern lagoon, New Caledonia). Marine Ecology Progress Series 320, 6578.Google Scholar
Jaschinski, S., Hansen, T. and Sommer, U. (2008) Effects of acidification in multiple stable isotope analyses. Limnology and Oceanography: Methods 6, 1215.Google Scholar
Kennedy, P., Kennedy, H. and Papadimitriou, S. (2005) The effect of acidification on the determination of organic carbon, total nitrogen and their stable isotopic composition in algae and marine sediment. Rapid Communications in Mass Spectrometry 19, 10631068.Google Scholar
Kolasinski, J., Rogers, K. and Frouin, P. (2008) Effects of acidification on carbon and nitrogen stable isotopes of benthic macrofauna from a tropical coral reef. Rapid Communications in Mass Spectrometry 22, 29552960.Google Scholar
Lecchini, D., Adjeroud, M., Pratchett, M.S., Cadoret, L. and Galzin, R. (2003) Spatial structure of coral reef fish communities in the Ryukyu Islands, southern Japan. Oceanologica Acta 26, 537547.Google Scholar
Leichter, J.L., Alldredge, A.L., Bernardi, G., Brooks, A.J., Carlson, C.A., Carpenter, R.C., Edmunds, P.J., Fewings, M.R., Hanson, K.M., Hench, J.L., Holbrook, S.L., Nelson, C.E., Schmitt, R.J., Toonen, R.J., Washburn, L. and Wyatt, A.S.J. (2013) Biological and physical interactions on a tropical island coral reef: transport and retention processes on Moorea, French Polynesia. Oceanography 26, 5263.Google Scholar
Letourneur, Y., Lison de Loma, T., Richard, P., Harmelin-Vivien, M.L., Cresson, P., Banaru, D., Fontaine, M.F., Gref, T. and Planes, S. (2013) Identifying carbon sources and trophic position of coral reef fishes using diet and stable isotope (δ15N and δ13C) analyses in two contrasted bays in Moorea, French Polynesia. Coral Reefs 32, 10911102.Google Scholar
McMahon, K.W., Thorrold, S.R., Houghton, L.A. and Berumen, M.L. (2016) Tracing carbon flow through coral reef food webs using a compound-specific stable isotope approach. Oecologia 180, 809821.Google Scholar
Michener, R.H. and Kaufman, L. (2007) Stable isotope ratios as tracers in marine food webs: an update. In Michener, R. and Lajtha, K. (eds) Stable isotopes in ecology and environmental science. Malden, MA: Blackwell Publishing, pp. 238282.Google Scholar
Moberg, F. and Folk, C. (1999) Ecological goods and services of coral reef ecosystems. Ecological Economics 29, 215233.Google Scholar
Nash, K.L., Welsh, J.Q., Graham, N.A.J. and Bellwood, D.R. (2015) Home-range allometry in coral reef fishes: comparison to other vertebrates, methodological issues and management implications. Oecologia 177, 7383.Google Scholar
Pinkas, L.M., Oliphant, S. and Iverson, I.L.K. (1971) Food habits of albacore, bluefin tuna and bonito in Californian waters. Fish Bulletin California Department of Fish and Game 152, 1105.Google Scholar
Pitt, K.A., Clement, A.L., Connolly, R.M. and Thibault-Botha, D. (2008) Predation by jellyfish on large and emergent zooplankton: implications for benthic-pelagic coupling. Estuarine Coastal and Shelf Science 76, 827833.Google Scholar
Post, D.M. (2002) Using stable isotopes to estimate trophic position: models, methods, and assumptions. Ecology 83, 703718.Google Scholar
Post, D.M., Layman, C.A., Arrington, D.A., Takimoto, G., Quatrochi, J. and Montana, C.G. (2007) Getting to the fat of the matter: models, methods and assumptions for dealing with lipids in stable isotope analyses. Oecologia 152, 179189.Google Scholar
Randall, J.E. (1975) A revision of the Indo-Pacific angelfish genus Genicanthus, with description of three new species. Bulletin of Marine Science 25, 393421.Google Scholar
R Core Team (2013) R: a language and environment for statistical computing. Vienna: R Foundation for Statistical Computing. ISBN 3-900051-07-0, http://www.R-project.org/Google Scholar
Roman, M.R., Furnas, M.J. and Mullin, M.M. (1990) Zooplankton abundance and grazing at Davies Reef, Great Barrier Reef, Australia. Marine Biology 105, 7382.Google Scholar
Sale, P.F. (1978) Coexistence of coral reef fishes – a lottery for living space. Environmental Biology of Fishes 3, 85102.Google Scholar
Satapoomin, S. (1999) Carbon content of some common tropical Andaman Sea copepods. Journal of Plankton Research 21, 21172123.Google Scholar
Schoeninger, M.J. and DeNiro, M.J. (1984) Nitrogen and carbon isotopic composition of bone collagen from marine and terrestrial animals. Geochimica and Cosmochimica Acta 48, 625639.Google Scholar
Skinner, M.M., Martin, A.A. and Moore, B.C. (2016) Is lipid correction necessary in the stable isotope analysis of fish tissues? Rapid Communications in Mass Spectrometry 30, 881889.Google Scholar
Smith, J.E., Hunter, C.L. and Smith, C.M. (2010) The effects of top-down vs bottom-up control on benthic coral reef community structure. Oecologia 163, 497507.Google Scholar
Uye, S. (1982) Length-weight relationships in important zooplankton from the Inland Sea of Japan. Journal of the Oceanographical Society of Japan 38, 149158.Google Scholar
Veit-Köhler, G., Guilini, K., Peeken, I., Quillfeldt, P. and Mayr, C. (2013) Carbon and nitrogen stable isotope signatures of deep-sea meiofauna follow oceanographical gradients across the Southern Ocean. Progress in Oceanography 110, 6979.Google Scholar
Wyatt, A.S.J., Lowe, R.J., Humphries, S. and Waite, A.M. (2013) Particulate nutrient fluxes over a fringing coral reef: source-sink dynamics inferred from carbon to nitrogen ratios and stable isotopes. Limnology and Oceanography 58, 409427.Google Scholar
Wyatt, A.S.J., Waite, A.M. and Humphries, S. (2010) Variability in isotope discrimination factors in coral reef fishes: implications for diet and food web reconstruction. PLoS ONE 5, e13682.Google Scholar
Wyatt, A.S.J., Waite, A.M. and Humphries, S. (2012) Stable isotope analysis reveals community-level variation in fish trophodynamics across a fringing coral reef. Coral Reefs 31, 10291044.Google Scholar
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