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Latitudinal and bathymetric distribution patterns of ophiuroids (Echinodermata: Ophiuroidea) on scallop fishing grounds at the shelf-break frontal system, south-western Atlantic

Published online by Cambridge University Press:  20 December 2013

Mariana Escolar*
Affiliation:
Instituto Nacional de Investigación y Desarrollo Pesquero (INIDEP), Paseo Victoria Ocampo 1, B7602HSA, Mar del Plata, Argentina
Daniel Raúl Hernández
Affiliation:
Instituto Nacional de Investigación y Desarrollo Pesquero (INIDEP), Paseo Victoria Ocampo 1, B7602HSA, Mar del Plata, Argentina
Claudia Silvia Bremec
Affiliation:
Instituto Nacional de Investigación y Desarrollo Pesquero (INIDEP), Paseo Victoria Ocampo 1, B7602HSA, Mar del Plata, Argentina Instituto de Investigaciones Marinas y Costeras (IIMyC), Facultad de Ciencias Exactas y Naturales, Universidad Nacional de Mar del Plata, Consejo Nacional de Investigaciones Científicas y Técnicas (CONICET), Dean Funes 3250, Mar del Plata, Argentina
*
Correspondence should be addressed to: M. Escolar, Instituto Nacional de Investigación y Desarrollo Pesquero (INIDEP), Paseo Victoria Ocampo No. 1, B7602HSA, Mar del Plata, Argentina email: [email protected]
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Abstract

Ophiuroidea represents the dominant invertebrate group in Patagonian scallop fishery by-catch in the south-western Atlantic. This study presents information that brings forward the spatial patterns and abundance of the most abundant species in the benthic community associated with this fishery at the shelf-break front in the Argentine Sea, between 37° and 44°S during the period 2002–2005. Ophiactis asperula, Ophiacantha vivipara, Ophiura (Ophiuroglypha) lymani and Gorgonocephalus chilensis show a latitudinal and bathymetric distribution pattern, explained by their natural distributional ranges and feeding habits. Our results indicate that the abundance and distribution of these species are not related to scallop fishing activities.

Type
Research Article
Copyright
Copyright © Marine Biological Association of the United Kingdom 2013 

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References

REFERENCES

Acha, E.M., Mianzan, H.W., Guerrero, R.A., Favero, M. and Bava, J. (2004) Marine fronts at the continental shelves of austral South America. Physical and ecological processes. Journal of Marine Systems 44, 83105.CrossRefGoogle Scholar
Ambrose, W.G., Clough, L.M., Tilney, P.R. and Beer, L. (2001) Role of echinoderms in benthic remineralization in the Chukchi Sea. Marine Biology 139, 937949.Google Scholar
Anderson, D.R., Burnham, K.P. and Thompson, W.L. (2000) Null hypothesis testing: problems, prevalence, and an alternative. Journal of Wildlife Management 64, 912923.Google Scholar
Balech, E. and Erlich, M. (2008) Esquema biogeográfico del Mar Argentino. Revista de Investigación y Desarrollo Pesquero 19, 4575.Google Scholar
Barboza, C.A., Moura, R.B., Lanna, A.M., Oackes, T. and Campos, L.S. (2011) Echinoderms as clues to Antarctic–South American connectivity. Oecologia Australis 15, 86110.Google Scholar
Bartsch, I. (1982) Ophiuroidea (Echinodermata) from the Patagonian Shelf. Mitteilungen Hamburgisches Zoologisches Museum und Institut 79, 211250.Google Scholar
Bergman, M. and Moore, P.G. (2001) Mortality of Asterias rubens and Ophiura ophiura discarded in the Nephrops fishery of the Clyde Sea area, Scotland. ICES Journal of Marine Research 58, 531542.Google Scholar
Bernasconi, I. and D'Agostino, M.M. (1971) Ofiuroideos Argentinos. Claves para los órdenes, subordenes, familias, subfamilias y géneros. Physis 30, 447469.Google Scholar
Bernasconi, I. and D'Agostino, M.M. (1977) Ofiuroideos del Mar Epicontinental Argentino. Revista del Museo Argentino de Ciencias Naturales ‘Bernardino Rivadavia’ Instituto Nacional de Investigaciones Científicas y Técnicas (Zoología) 5, 65114.Google Scholar
Bogazzi, E., Baldoni, A., Rivas, A., Martos, P., Reta, R., Orensanz, J.M., Lasta, M., Dell'Arcipetre, P. and Werner, F. (2005) Spatial correspondence between areas of concentration of Patagonian scallop (Zygochlamys patagonica) and frontal systems in the southwestern Atlantic. Fisheries Oceanography 14, 359376.Google Scholar
Booth, J.A.T., Ruhl, H.A., Lovell, L., Bailey, D.M. and Smith, K.L. (2008) Size–frequency dynamics of NE Pacific abyssal ophiuroids (Echinodermata: Ophiuroidea). Marine Biology 154, 933941.Google Scholar
Botto, F., Bremec, C., Marecos, A., Schejter, L., Lasta, M. and Iribarne, O. (2006) Identifying predators of the SW Atlantic Patagonian scallop Zygochlamys patagonica using stable isotopes. Fisheries Research 81, 4550.Google Scholar
Bremec, C. and Lasta, M. (2002) Epibenthic assemblage associated with scallop (Zygochlamys patagonica) beds in the Argentinian shelf. Bulletin of Marine Science 70, 89105.Google Scholar
Bremec, C., Brey, T., Lasta, M., Valero, J. and Lucifora, L. (2000) Zygochlamys patagonica beds on the Argetinian shelf. Part I: energy flow through the scallop bed community. Archive of Fishery and Marine Research 48, 295303.Google Scholar
Brogger, M., Gil, D., Rubilar, T., Martinez, M., Díaz de Vivar, M.E., Escolar, M., Epherra, L., Pérez, A. and Tablado, A. (2013) Echinoderms from Argentina: biodiversity, distribution and current state of knowledge. In Alvarado, J.J. and Solis-Marin, F.A. (eds) Echinoderm research and diversity in Latin America. Amsterdam, The Netherlands: Springer-Verlag, pp. 359402.Google Scholar
Brooks, R.A., Nizinski, M.S., Ross, S.W. and Sulak, K.J. (2007) Frequency of sublethal injury in a deepwater ophiuroid, Ophiacantha bidentata, an important component of western Atlantic Lophelia reef communities. Marine Biology 152, 307314.Google Scholar
Callaway, R., Engelhard, G.H., Dann, J., Cotter, J. and Rumohr, H. (2007) A century of North Sea epibenthos and trawling: comparison between 1902–1912, 1982–1985 and 2000. Marine Ecology Progress Series 347, 2743.Google Scholar
Chiantore, M., Guideti, M., Cavallero, M., De Domenico, F., Albertelli, G. and Cattaneo-Vetti, R. (2006) Sea urchins, sea stars and brittle stars from Terra Nova Bay (Ross Sea, Antarctica). Polar Biology 29, 467475.Google Scholar
Cranmer, T.L., Ruhl, R.J., Baldwin, R.J. and Kaufmann, R.S. (2003) Spatial and temporal variation in the abundance, distribution and population structure of epibenthic megafauna in Port Foster, Deception Island. Deep-Sea Research Part II 50, 18211842.CrossRefGoogle Scholar
Crawley, M.J. (2007) The R book. Chichester: John Wiley & Sons.Google Scholar
Dahm, C. (1999) Ophiuroids (Echinodermata) of southern Chile and the Antarctic: taxonomy, biomass, diet and growth of dominant species. Scientia Marina 63, 427432.Google Scholar
Davoult, D., Harlay, J. and Gentil, F. (2009) Contribution of a dense population of the brittle star Acrocnida brachiata (Montagu) to the biogeochemical fluxes of CO2 in a temperate coastal ecosystem. Estuaries and Coast 32, 11031110.Google Scholar
Dormann, C.F., McPherson, J.M., Araújo, M., Bivand, R., Bolliger, J., Carl, G., Davies, R.G., Hirzel, A., Jetz, W., Kissling, D., Kühn, I., Ohlemüller, R., Peres-Neto, P.R., Reineking, B., Schröder, B., Schurr, F.M. and Wilson, R. (2007) Methods to account for spatial autocorrelation in the analysis of species distributional data: a review. Ecography 30, 609628.CrossRefGoogle Scholar
Escolar, M. (2010) Variaciones espacio-temporales en la comunidad de invertebrados bentónicos asociada al frente de talud. Equinodermos como caso de estudio. PhD thesis. Universidad de Buenos Aires, Buenos Aires, Argentina.Google Scholar
Fell, H.B. (1961) Ophiuroidea of the Ross Sea. New Zealand Oceanographic Institute Memoir 18, 179.Google Scholar
Franklin, A.B., Shenk, T.M., Anderson, D.R. and Burnham, K.P. (2001) Statistical model selection: an alternative to null hypothesis testing. In Shenk, T.M. and Franklin, A.B. (eds) Modeling in natural resource management: development, interpretation, and application. Washington, DC: Island Press, pp. 7590.Google Scholar
Gage, J.D. and Tyler, P.A. (1982) Depth-related gradients in size structure and the bathymetric zonation of deep-sea brittle stars. Marine Biology 71, 299308.Google Scholar
Gage, J.D., Lamont, P.A., Kroeger, K., Paterson, G.L.J. and Gonzalez Vecino, J.L. (2000) Patterns in deep-sea macrobenthos at the continental margin: standing crop, diversity and faunal change on the continental slope off Scotland. Hydrobiologia 440, 261271.Google Scholar
García, J., Hsin-ming, Y. and Ohta, S. (2002) Distribution and bathymetric zonation of deep-see brittle stars (Echinodermata: Ophiuroidea) off the Japanese Pacific coast. Journal of the Marine Biological Association of the United Kingdom 82, 345346.Google Scholar
Gilkinson, K.D., Gordon, D.C., MacIsaac, K.G., McKeown, D.L., Kenchington, E.L.R., Bourbonnais, C. and Vass, W.P. (2005) Immediate impacts and recovery trajectories of macrofaunal communities following hydraulic clam dredging on Banquereau, eastern Canada. ICES Journal of Marine Science 62, 925947.Google Scholar
Gutt, J. and Schickan, T. (1998) Epibiotic relationships in the Antarctic benthos. Antarctic Science 10, 398405.CrossRefGoogle Scholar
Harris, J.L., MacIsaac, K., Gilkinson, K.D. and Kenchington, E.L. (2009) Feeding biology of Ophiura sarsii Lûtken, 1855 on Banquereau bank and the effects of fishing. Marine Biology 156, 18911902.CrossRefGoogle Scholar
Hastie, T.J. and Tibshirani, R.J. (1990) Generalized Additive Models. London: Chapman & Hall.Google Scholar
Hendler, G. (2005) Two new brittle star species of the genus Ophiothrix (Echinodermata: Ophiuroidea: Ophiotrichidae) from coral reefs in the southern Caribbean Sea, with notes on their biology. Caribbean Journal of Science 41, 583599.Google Scholar
Hendler, G., Miller, J.E., Pawson, D.L. and Kier, P.M. (1995) Sea stars, sea urchins and allies: Echinoderms of Florida and the Caribbean. Washington, DC: Smithsonian Institution Press.Google Scholar
Johnson, J.B. and Omland, K.S. (2004) Model selection in ecology and evolution. Trends in Ecology and Evolution 19, 101108.CrossRefGoogle ScholarPubMed
Journel, A.G. and Huijbregts, C.J. (1978) Mining geostatistics. London: Academic Press.Google Scholar
Løkkeborg, S. (2005) Impacts of trawling and scallop dredging on benthic habitats and communities. FAO Fisheries Technical Paper 472.Google Scholar
Lyman, T. (1882) Report on the Ophiuroidea dredged by H.M.S. Challenger during the years 1873–76 under the command of Captain George S. Nares and Captain Frank Tourle Thomson. Zoology Volume V. London, Edinburgh and Dublin, 387 pp.Google Scholar
Manjón-Cabeza, M.E. and Ramos, A. (2003) Ophiuroid community structure of the South Shetland Islands and Antarctic Peninsula region. Polar Biology 26, 691699.CrossRefGoogle Scholar
Martos, P. and Piccolo, M.C. (1988) Hydrography of the Argentine continental shelf between 38° and 42°S. Continental Shelf Research 8, 10431056.Google Scholar
Mauna, A.C., Botto, F., Franco, B., Schwartz, M., Acha, M.E., Lasta, M. and Iribarne, O. (2011) Shifts in an epibenthic trophic web across a marine frontal area in the south-western Atlantic (Argentina). Journal of Sea Research 66, 248255.Google Scholar
McClintock, J.B. (1994) Trophic biology of antarctic shallow-water echinoderms. Marine Ecology Progress Series 111, 191202.Google Scholar
McCullagh, P. and Nelder, J.A. (1989) Generalized linear models. New York: Chapman & Hall.Google Scholar
Metaxas, A. and Giffin, B. (2004) Dense beds of the ophiuroid Ophiacantha abyssicola on the continental slope off Nova Scotia, Canada. Deep-Sea Research Part I 51, 13071317.Google Scholar
Mortensen, T. (1936) Echinoidea and Ophiuroidea. Cambridge: Discovery Reports.Google Scholar
Neves, B.M., Pérez, C.D. and Lima, E.J.B. (2007) Brittle stars (Echinodermata: Ophiuroidea) associated with the octoral Carijo ariisei (Cnidaria: Anthozoa) from the littoral of Pernambuco, Brazil. Journal of the Marine Biological Association of the United Kingdom 87, 12631267.Google Scholar
O'Hara, T.D. (2007) Seamounts: centres of endemism or species richness for ophiuroids? Global Ecology and Biogeography 16, 720732.Google Scholar
O'Hara, T.D., Rowden, A.A. and Bax, N.J. (2011) A southern hemisphere bathyal fauna is distributed in latitudinal bands. Current Biology 21, 226230.Google Scholar
Parker, G., Paterlini, M.C. and Violante, R.A. (1997) El fondo marino In Boschi, I.E. (ed.) El Mar Argentino y sus Recursos Pesqueros. Mar del Plata: INIDEP, pp. 6582.Google Scholar
Pearson, M. and Gage, J.D. (1984) Diets of some deep-sea brittle stars in the Rockall Trough. Marine Biology 82, 247258.Google Scholar
Piepenburg, D., Jochen, V. and Gutt, J. (1997) Assemblages of sea stars (Echindermata: Asteroidea) and brittle stars (Echinodermata: Ophiuroidea) in the Weddell Sea (Antarctica) and off Northeast Greenland (Artic): a comparison of diversity and abundance. Polar Biology 17, 305322.CrossRefGoogle Scholar
Pranovi, F., Raicevich, S., Franceschini, G., Torricelli, P. and Giovanardi, O. (2001) Discard analysis and damage to non-target species in the ‘rapido’ trawl fishery. Marine Biology 139, 863875.Google Scholar
R Development Core Team (2012) R: a language and environment for statistical computing. Vienna: R Foundation for Statistical Computing.Google Scholar
Roux, A., Bastida, R. and Bremec, C. (1993) Comunidades bentónicas de la plataforma continental argentina. Campañas transección BIP ‘Oca Balda’ 1987/88/89. Boletim do Instituto Oceanografico, São Paulo 41, 8194.Google Scholar
Roux, A., Bastida, R., Lichtschein, V. and Barreto, A. (1988) Investigaciones sobre las comunidades bentónicas de plataforma a través de una transecta frente a Mar del Plata. Spheniscus 6, 1952.Google Scholar
Schejter, L. and Bremec, C.S. (2007) Benthic richness in the Argentine continental shelf: the role of Zygochlamys patagonica (Mollusca: Bivalvia: Pectinidae) as settlement substrate. Journal of the Marine Biological Association of the United Kingdom 87, 917925.Google Scholar
Schejter, L., Bremec, C. and Hernández, D. (2008) Comparison between disturbed and undisturbed areas of the Patagonian scallop (Zygochlamys patagonica) fishing ground ‘Reclutas’ in the Argentine Sea. Journal of Sea Research 60, 193200.Google Scholar
Souto, V., Escolar, M., Genzano, G. and Bremec, C. (2011) Patrones de distribución de equinodermos en el Atlántico Sudoccidental entre los 34° y 56°S. In Resúmenes del I Congreso Latinoamericano de Equinodermos, Centro Nacional Patagónico, Puerto Madryn, 13–18 November 2011, p. 37.Google Scholar
Summers, A.C. and Nybakken, J. (2000) Brittle star distribution patterns and population densities on the continental slope off central California (Echinodermata: Ophiuroidea). Deep-Sea Research Part II 47, 11071137.Google Scholar
Tuya, F., Cisneros-Aguirre, J., Ortega-Borges, L. and Haroum, R.J. (2007) Bathymetric segregation of sea urchins on reefs of the Canarian Archipelago: role of flow-induced forces. Estuarine, Coastal and Shelf Science 73, 481488.Google Scholar
Valero, J. (2002) Analysis of temporal and spatial variation in growth and natural mortality estimation with an integrated dynamic model in the Patagonian scallop (Zygochlamys patagonica) . PhD thesis. University of Washington, Washington, USA.Google Scholar
Ventura, C. and da Costa Fernandes, F. (1995) Bathymetric distribution and population size structure of paxillosid seastars (ECHINODERMATA) in the Cabo Frio upwelling ecosystem of Brazil. Bulletin of Marine Science 56, 268282.Google Scholar
Warner, G. (1982) Food and feeding mechanisms: Ophiuroidea. In Jangoux, M. and Lawrence, J.M. (eds) Echinoderm nutrition. Rotterdam, The Netherlands: Balkema, pp. 161181.Google Scholar
Wood, S.N. (2006) Generalized additive models, an introduction with R. Boca Raton, FL: Chapman & Hall/CRC.CrossRefGoogle Scholar