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Does seabird carrion contribute to the diet of the shore crab Carcinus maenas on the Isle of May, Scotland? An isotopic perspective

Published online by Cambridge University Press:  28 February 2011

A.J.R. Watts*
Affiliation:
University of Glasgow, College of Medical, Veterinary and Life Sciences, Graham Kerr Building, Glasgow, G12 8QQ, UK
D.J. McCafferty
Affiliation:
University of Glasgow, College of Medical, Veterinary and Life Sciences, Graham Kerr Building, Glasgow, G12 8QQ, UK University of Glasgow, College of Social Sciences, St Andrew's Building, 11 Eldon Street, Glasgow G3 6NH, UK
J. Newton
Affiliation:
NERC Life Sciences Mass Spectrometry Facility, Scottish Universities Environmental Research Centre, Rankine Avenue, Scottish Enterprise Technology Park, East Kilbride G75 0QF, UK
D.M. Bailey
Affiliation:
University of Glasgow, College of Medical, Veterinary and Life Sciences, Graham Kerr Building, Glasgow, G12 8QQ, UK
*
Correspondence should be addressed to: A.J.R. Watts, University of Glasgow, College of Medical, Veterinary and Life Sciences, Graham Kerr Building, Glasgow, G12 8QQ, UK email: c/o [email protected]

Abstract

Scavengers are common in marine environments and provide an essential ecosystem service, helping to return nutrients and energy contained in carrion to the system. Knowledge of the prevalence of scavenging is required to fully understand marine food webs. As most scavengers are also predators it is usually unclear what proportion of their diet is derived from carrion, and if this proportion varies in time. In this study we set out to determine whether the input of seabird or other carrion could be detected in the stable isotope composition of the shore crab (Carcinus maenas). Shore crabs were captured in the intertidal zone of the Isle of May (Scotland) before and after the peak fledging of Atlantic puffins (Fratercula arctica). The stable isotope (δ15N and δ13C) compositions of crabs and the proposed carrion source were determined. Fifty crabs were selected (25 from before (IOM1) and 25 after the fledging period (IOM2)). IOM1 had a mean δ15N value of +13.85‰ and IOM2 a mean of +13.53‰. The mean δ13C values were –15.46‰ for IOM1 and –15.87‰ for IOM2. In contrast to our expectations, there was no evidence that shore crabs were feeding on seabird carrion following the post-fledging period of Atlantic puffins. Future sampling in autumn months following the grey seal (Halichoerus grypus) breeding season may be useful in establishing if there is another route for nutrient and energy cycling between higher predators and marine scavengers at this location.

Type
Research Article
Copyright
Copyright © Marine Biological Association of the United Kingdom 2011

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References

REFERENCES

Aguzzi, J.F., Sarda, F. and Allue, R. (2004) Seasonal dynamics in Nephrops norvegicus (Decapoda: Nephropidae) catches off the Catalan coasts (Western Mediterranean). Fisheries Research 69, 293300.Google Scholar
Aldrich, J.C. (1986) The influences of individual variations in metabolic rate and tidal conditions on the response to hypoxia in Carcinus maenas. Comparative Biochemistry and Physiology (A) 83, 5360.Google Scholar
Baeta, A., Cabral, H.N., Neto, J.M., Marques, J.C. and Pardal, M.A. (2005) Biology, population dynamics and secondary production of the green crab Carcinus maenas (L.) in a temperate estuary. Estuarine, Coastal and Shelf Science 65, 4352.Google Scholar
Baker, J.R. and Baker, R. (1988) Effects of environment on grey seal (Halichoerus grypus) pup mortality; studies on the Isle of May. Journal of Zoology (London) 216, 529537.Google Scholar
Bergmann, M., Wieczorek, S.K., Moore, P.G. and Atkinson, R.J.A. (2002) Utilisation of invertebrates discarded from the Nephrops fishery by variously selective benthic scavengers in the west of Scotland. Marine Ecology Progress Series 233, 185198.CrossRefGoogle Scholar
Boutton, T.W. (1991) Stable carbon isotope ratios of natural materials: II. Atmospheric, terrestrial, marine, and freshwater environments. In Coleman, D.C. and Fry, B. (eds) Carbon isotope techniques. San Diego, CA: Academic Press, pp. 173185.Google Scholar
Britton, J.C. and Morton, B. (1994) Marine carrion and scavengers. Oceanography and Marine Biology: an Annual Review 32, 369434.Google Scholar
Brunet, M., Arnaud, J. and Mazza, J. (1994) Gut structure and digestive cellular processes in marine crustacean. Oceanography and Marine Biology: an Annual Review 32, 335367.Google Scholar
Carabel, S., Godínez-Domínguez, E., Verísimo, P., Fernández, L. and Freire, J. (2006) An assessment of sample processing methods for stable isotope analyses of marine food webs. Journal of Experimental Marine Biology and Ecology 336, 254261.Google Scholar
Carmichael, R.H., Rutecki, D., Annett, B., Gaines, E. and Valiela, I. (2004) Position of horseshoe crabs in estuarine food webs: N and C stable isotopic study of foraging ranges and diet composition. Journal of Experimental Marine Biology and Ecology 299, 231253.Google Scholar
Dickson, G.W. and Giesy, J.P. (1982) Seasonal variation of phosphoadenylate concentrations and adenylate energy-charge in dorsal tail muscle of the crayfish, Procambarus-acutus-acutus (Decapoda, Astacidae). Comparative Biochemistry and Physiology (A) 72, 295299.Google Scholar
Eilertsen, K., Barrett, R.T. and Pedersen, T. (2008) Diet, growth and early survival of Atlantic puffin (Fratercula arctica) chick in North Norway. Waterbirds 31, 107114.Google Scholar
Gannes, L.Z., Martı'nez del Rio, C. and Koch, P. (1998) Natural abundance variations in stable isotopes and their potential uses in animal physiological ecology. Comparative Biochemistry and Physiology 119A, 725737.CrossRefGoogle Scholar
Govind, C.K. (1992) Claw asymmetry in lobsters: case study in developmental neuroethology. Journal of Neurobiology 23, 14231445.Google Scholar
Harris, M.P., Newell, M., Daunt, F., Speakman, J.R. and Wanless, S. (2008) Snake pipefish Entelurus aequoreus are poor food for seabirds. Ibis 150, 413415.CrossRefGoogle Scholar
Ide, K., Takahashi, K., Nakano, T., Sato, M. and Omori, M. (2006) Chemoreceptive foraging in a shallow-water scavenging lysianassid amphipod: role of amino acids in the location of carrion in Scopelocheirus onagawae. Marine Ecology Progress Series 317, 93202.Google Scholar
Juanes, F., Lee, K.T., McKnight, A. and Kellogg, K. (2008) Claw allometry in green crabs, Carcinus maenas: heterochely, handedness, and sex. Marine Biology 153, 523528.Google Scholar
Kurle, C.M. (2009) Interpreting temporal variation in omnivore foraging ecology via stable isotope modeling. Functional Ecology 23, 733744.CrossRefGoogle Scholar
Mariappan, P., Balasundaram, C. and Schmitz, B. (2000) Decapod crustacean chelipeds: an overview. Journal of Biosciences 25, 301313.CrossRefGoogle ScholarPubMed
Mente, E. (2003). Effect of ration level on individual food consumption, growth and protein and synthesis in the shore crab Carcinus maenas. In Mente, E.Nutrition, physiology and metabolism of crustaceans. Plymouth: Science Publishers Inc., pp. 5366.Google Scholar
Michener, R. and Kaufman, L. (2007) Introduction. In Marshall, J.D., Brooks, J.R. and Lajtha, K. (eds) Stable isotopes in ecology and environmental science. (Ecological methods and concepts). 2nd edition. London: Blackwell Publishing, pp. xviixxvi.Google Scholar
Minagawa, M. and Wada, E. (1984) Stepwise enrichment of n-15 along food-chains—further evidence and the relation between delta-n-15 and animal age. Geochimica et Cosmochimica Acta 48, 11351140.Google Scholar
Neal, K.J. and Pizzolla, P.F (2008) Carcinus maenas. Common shore crab. Marine Life Information Network: Biology and Sensitivity Key Information Sub-programme. Plymouth: Marine Biological Association of the United Kingdom. Available from: http://www.marlin.ac.uk/species/carcinusmaenas.htm (accessed 3 September 2009).Google Scholar
Peterson, B.J. and Fry, B. (1987) Stable isotopes in ecosystem studies. Annual Review of Ecology and Systematics 18, 293320.Google Scholar
Pomeroy, P.P., Twiss, S.D. and Duck, C.D. (2000). Expansion of a grey seal (Halichoerus grypus) breeding colony: changes in pupping site use at the Isle of May, Scotland. Journal of Zoology (London) 250, 112.CrossRefGoogle Scholar
Post, D.M. (2002) Using stable isotopes to estimate trophic position: models, methods, and assumptions. Ecology 83, 703718.Google Scholar
Renones, O., Polunin, N.V.C. and Goni, R. (2002) Size related dietary shifts of Epinephelus marginatus in a western Mediterranean littoral ecosystem: an isotope and stomach content analysis. Journal of Fish Biology 61, 122137.CrossRefGoogle Scholar
Rybczynski, S.M., Walters, D.M., Fritz, K.M. and Johnson, B.R. (2008) Comparing trophic position of stream fishes using stable isotope and gut contents analyses. Ecology of Freshwater Fish 17, 199206.Google Scholar
SNH (2008) The story of the Isle of May National Nature Reserve. Available online: http://www.snh.org.uk (accessed 4 June 2006)Google Scholar
Sotiropulos, M.A., Tonn, W.M. and Wassenaar, L.I. (2004) Effects of lipid extraction on stable carbon and nitrogen isotope analyses of fish tissues: potential consequences for food web studies. Ecology of Freshwater Fish 13, 155160.CrossRefGoogle Scholar
Thompson, D.G and Furness, R.W. (1995) Stable-isotope ratios of carbon and nitrogen in feathers indicate seasonal dietary shifts in northern fulmars. The Auk 112, 493498.Google Scholar
Vanderklift, M.A. and Ponsard, S. (2003) Sources of variation in consumer-diet δ15N enrichment: a meta-analysis. Oecologia 136, 169182.Google Scholar
Vermeij, G.J. (1977) Patterns in crab claw size: the geography of crushing. Systematic Zoology 26, 138151.Google Scholar
Waddington, K. and Macarthur, L. (2008) Diet quality and muscle tissue location influence consumer-diet discrimination in captive-reared rock lobsters (Panulirus cygnus). Marine Biology 154, 569576.Google Scholar
Wanless, S., Harris, M.P., Murray, S. and Wilson, L.J. (2003) Status of the Atlantic puffin Fratercula arctica on the Isle of May national nature reserve. Craigleigth and Fidra, Forth Island special protection area. Scottish Natural Heritage/NERC Contract AB (LJ14)030403, CEH Project C02232.Google Scholar
Watts, A.J.R. (2008) Completing the cycle: the role of marine predators as a food source for seabed communities. MRes thesis. University of Glasgow, Scotland UK.Google Scholar
Wolf, F. (1998) Red and green colour forms in the common shore crab Carcinus maenas (L.) (Crustacea: Brachyura: Portunidae): theoretical predictions and empirical data. Journal of Natural History 32, 18071812.Google Scholar
Yokoyama, H., Tamaki, A., Harada, K. and Shimoda, K. (2005) Variability of diet-tissue isotopic fractionation in estuarine macrobenthos. Marine Ecology Progress Series 296, 115128.Google Scholar
Zimmer-Faust, R.K. (1991) Chemical signal-to-noise detection by spiny lobsters. Biological Bulletin. Marine Biological Laboratory, Woods Hole 181, 3, 419426.Google Scholar