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Abstract:

Longo, M.V. and Díaz, A.O. (2011). The claw closer muscle of two estuarine crab species, Cyrtograpsus angulatus and Neohelice granulata (Grapsoidea, Varunidae): histochemical fibre type composition. -Acta Zoologica (Stockholm) 00: 1-7. This study permitted the characterization of four types of muscle fibres in the claw closer muscles of Cyrtograpsus angulatus and Neohelice granulata. Succinic dehydrogenase (SDH) for mitochondria, periodic acid Schiff (PAS) for glycogen, Sudan Black B for lipids and myosin-adenosine triphosphatase (m-ATPase) preincubated at alkaline and acid pHs were used for that purpose. The mean fibre diameters, the relative areas and frequencies of each muscle fibre type were calculated. Types I and IV would be considered 'extreme' groups with type I fibres large, weak and acid/alkaline-labile m-ATPase, weak SDH, PAS and Sudan, and type IV fibres small, very strong and acid/alkaline-resistant m-ATPase, strong SDH and PAS, and moderate Sudan. Types II and III would belong to a predominant 'intermediate' group. Type IV fibres were scarce in C. angulatus but represented 25% of the total fibre population in N. granulata. In C. angulatus, the relative area occupied by type I fibres was bigger than its relative proportion, whereas in N. granulata, types I and II had similar patterns. Concluding, variations in fibre type composition in the claw closer muscles of C. angulatus and N. granulata would be linked to different habitats and feeding behaviours. © 2011 The Royal Swedish Academy of Sciences.

Registro:

Documento: Artículo
Título:The claw closer muscle of two estuarine crab species, Cyrtograpsus angulatus and Neohelice granulata (Grapsoidea, Varunidae): Histochemical fibre type composition
Autor:Longo, M.V.; Díaz, A.O.
Filiación:Instituto de Investigaciones Marinas y Costeras (IIMyC), Facultad de Ciencias Exactas y Naturales, Consejo Nacional de Investigaciones Cientificas y Tecnicas(CONICET)-Univ. Nacional de Mar del Plata, Funes 3250 3 piso (7600) Mar del Plata, Buenos Aires, Argentina
Idioma: Inglés
Palabras clave:Claw; Closer muscle; Cyrtograpsus angulatus; Histochemistry; Neohelice granulata; biochemistry; crab; enzyme activity; estuarine environment; feeding behavior; habitat type; histology; muscle; ultrastructure; Cyrtograpsus angulatus; Decapoda (Crustacea); Grapsoidea; Varunidae
Año:2013
Volumen:94
Número:2
Página de inicio:233
Página de fin:239
DOI: http://dx.doi.org/10.1111/j.1463-6395.2011.00548.x
Título revista:Acta Zoologica
Título revista abreviado:Acta Zool.
ISSN:00017272
CODEN:AZOSA
Registro:https://bibliotecadigital.exactas.uba.ar/collection/paper/document/paper_00017272_v94_n2_p233_Longo

Referencias:

  • Alnaqueeb, M.A., Goldspink, G., Changes in fibre type, number and diameter in developing and ageing skeletal muscle (1986) - Journal of Anatomy, 153, pp. 31-45
  • Andrews, F.M., Spurgeon, T.L., Histochemical staining characteristics of normal horse skeletal muscle (1986) - American Journal of Veterinarian Research, 47, pp. 1843-1852
  • Atwood, H.L., An attempt to account for the diversity of crustacean muscles (1973) -American Zoologist, 13, pp. 357-378
  • Boschi, E.E., Los crustáceos decápodos Brachyura del litoral bonaerense (R Argentina) (1964) - Boletín del Instituto de Biología Marina, Mar del Plata, 6, pp. 1-99
  • Boschi, E.E., El ecosistema estuarial del Río de la Plata (Argentina y Uruguay) (1988) - Anales del Instituto de Biología de la Universidad Nacional Autónoma de México, Serie Ciencias del Mar y Limnología, 15, pp. 159-182
  • Botto, F., Iribarne, O., Contrasting effects of two burrowing crabs (Chasmagnathus granulata and Uca uruguayensis) on sediment composition and transport in estuarine environments (2000) - Estuarine, Coastal and Shelf Scienc, 51, pp. 141-151
  • Claxton, W.T., Govind, C.K., Elner, R.W., Chela function, morphometric maturity, and the mating embrace in male snow crab, Chionoecetes opilio (1994) - Canadian Journal of Fishery and Aquatic Sciences, 51, pp. 1110-1118
  • Deffendi, V., Pearson, B., Quantitative estimation of succinic dehydrogenase activity in a single microscopic tissue section (1955) - Journal of Histochemistry and Cytochemistry, 3, pp. 61-69
  • El Haj, A.J., Whiteley, N.M., Molecular regulation of muscle growth in Crustacea (1997) - Journal of the Marine Biological Association of the United Kingdom, 77, pp. 95-106
  • Fernández Giménez, A.V., Goldemberg, A.L., Díaz, A.O., Studies of the claws of the crab Cyrtograpsus angulatus Dana (Crustacea, Brachyura, Grapsidae) (2007) - Biociencias, 15, pp. 29-39. , (On line). Brazil
  • Gruhn, M., Rathmayer, W., Phenotype plasticity in postural muscles of the crayfish Orconectes limosus Raf.: Correlation of myofibrillar ATPase-based fiber typing with electrophysiological fiber properties and the effect of chronic nerve stimulation (2002) - Journal of Experimental Zoology, 293, pp. 127-140
  • Günzel, D., Galler, S., Rathmayer, W., Fibre heterogeneity in the closer and opener muscles of crayfish walking legs (1993) - Journal of Experimental Biology, 175, pp. 267-281
  • Guth, L., Samaha, F.J., Procedure for the histochemical demonstration of actomyosin ATPase (1970) - Experimental Neurology, 28, pp. 365-367
  • Hooper, S.L., Thuma, J.B., Invertebrate muscles: Muscle specific genes and proteins (2005) - Physiological Reviews, 85, pp. 1001-1060
  • Iribarne, O.O., Bortolus, A., Botto, F., Between-habitats differences in burrow characteristics and trophic modes in the southwestern Atlantic burrowing crab Chasmagnathus granulata (1997) - Marine Ecology Progress Series, 155, pp. 137-145
  • Iribarne, O.O., Martinetto, P., Schwindt, E., Botto, F., Bortolus, A., Garcia Borboroglu, P., Evidences of habitat displacement between two common soft-bottom SW Atlantic intertidal crabs (2003) - Journal of Experimental Marine Biology and Ecology, 296, pp. 167-182
  • Johnson, P.T., (1980) Histology of the Blue Crab, Callinectes sapidus. A Model for the Decapoda, , Praeger Publishers, New York
  • Koenders, A., Lamey, T.M., Medler, S., West, J.M., Mykles, D.L., Two fast-type fibres in claw closer and abdominal deep muscles of the Australian freshwater crustacean, Cherax destructor, differ in Ca2+ sensitivity and troponin-I isoforms (2004) - Journal of Experimental Zoology, 301, pp. 588-598
  • Lang, F., Costello, W.J., Govind, C.K., Development of the dimorphic claw closer muscles of the lobster Homarus americanus: I. Regional distribution of muscle fiber types in adults (1977) - Biological Bulletin, 152, pp. 75-83
  • Lee, S.Y., Cheliped size and structure: The evolution of a multi-functional decapod organ (1995) - Journal of Experimental Marine Biology and Ecology, 193, pp. 161-176
  • Longo, M.V., Díaz, A.O., Goldemberg, A.L., The claw closer muscle of Neohelice granulata (Grapsoidea, Varunidae): A morphological and histochemical study (2011) - Acta Zoologica Stockholm, 92, pp. 126-133
  • Maier, L., Rathmayer, W., Pette, D., pH lability of myosin ATPase activity permits discrimination of different muscle fibre types in crustaceans (1984) - Histochemistry, 81, pp. 75-77
  • Mc Manus, J.F.A., Histological and histochemical uses of periodic acid (1948) - Stain Technology, 23, pp. 99-108
  • McDermott, M.P., Stephens, P.J., Fiber types in the limb bender muscle of a crab (Pachygrapsus crassipes) (1988) - Biological Bulletin, 175, pp. 284-288
  • Medler, S., Mykles, D.L., Analysis of myofibrillar proteins and transcripts in adult skeletal muscles of the American lobster Homarus americanus: Variable expression of myosins, actin and troponins in fast, slow-twitch and slow-tonic fibres (2003) - Journal of Experimental Biology, 206, pp. 3557-3567
  • Medler, S., Lilley, T., Mykles, D.L., Fiber polymorphism in skeletal muscles of the American lobster, Homarus americanus: Continuum between slow twitch(S-1) and slowtonic (S-2) fibres (2004) - Journal of Experimental Biology, 207, pp. 2755-2767
  • Mellon Jr, F., Connective tissue and supporting structures (1992) Microscopic Anatomy of Invertebrates, Decapod Crustacea, 10, pp. 77-116. , Harrison, F. W. and Humes, A. G. (Eds): Wiley-Liss. New York
  • Moriyasu, M., Mallet, P., Molt stages of the snow crab Chionoecetes opilio by observation of morphogenesis of setae on the maxilla (1986) - Journal of Crustacean Biology, 6, pp. 709-718
  • Mykles, D.L., Histochemical and biochemical characterization of two slow fiber types in decapod crustacean muscles (1988) - Journal of Experimental Zoology, 245, pp. 232-243
  • Neil, D.M., Fowler, W.S., Tobasnick, G., Myofibrillar protein composition correlates with histochemistry in fibres of the abdominal flexor muscles of the Norway lobster Nephrops norvegicus (1993) - Journal of Experimental Biology, 183, pp. 185-201
  • O' Connor, K., Stephens, P.J., Leferovich, J.M., Regional distribution of muscle fiber types in the asymmetric claws of Californian snapping shrimp (1982) - Biological Bulletin, 163, pp. 329-336
  • Olivier, S.R., Escofet, A., Penchaszadeh, P., Oresanz, J.M., Estudios ecológicos de la región estuarial de Mar Chiquita (Bs. As., Argentina). II. Relaciones tróficas interespecíficas (1972) - Anales de la Sociedad Científica Argentina, 194, pp. 89-104
  • Perry, M.J., Tait, J., Hu, J., White, S.C., Medler, S., Skeletal muscle fiber types in the ghost crab, Ocypode quadrata: Implications for running performance (2009) - Journal of Experimental Biology, 212, pp. 673-683
  • Silverman, H., Charlton, M.P., A fast-oxidative crustacean muscle: Histochemical comparison with other crustacean muscle (1980) - Journal of Experimental Zoology, 211, pp. 267-273
  • Spivak, E., Luppi, T., Bas, C., Cangrejos y camarones: Las relaciones organismo-ambiente en las distintas fases del ciclo de vida (2001) Reserva de Biosfera de Mar Chiquita: Características físicas, biológicas y ecológicas, pp. 129-151. , Iribarne, O. (Ed.): Editorial Martín, Mar del Plata
  • Sustaita, D., Musculoskeletal underpinnings to differences in killing behaviour between North American accipiters (Falconiformes: Accipitridae) and falcons (Falconidae) (2008) - Journal of Morphology, 269, pp. 283-301
  • Taylor, G.M., Maximum force production: Why are crabs so strong? (2000) - Proceedings of the Royal Society of London B, 267, pp. 1475-1480
  • Tse, F.W., Govind, C.K., Atwood, H.L., Diverse fiber composition of swimming muscles in the blue crab: Callinectes sapidus (1983) - Canadian Journal of Zoology, 61, pp. 52-59
  • Wernig, A., Irintchev, A., Weisshaupt, P., Muscle injury, cross-sectional area and fibre type distribution in mouse soleus after intermittent wheel-running (1990) - Journal of Physiology, 428, pp. 639-652
  • Zar, J.H., (2010) Biostatistical Analysis, , 5th edn, Pearson Prentice Hall, New Jersey

Citas:

---------- APA ----------
Longo, M.V. & Díaz, A.O. (2013) . The claw closer muscle of two estuarine crab species, Cyrtograpsus angulatus and Neohelice granulata (Grapsoidea, Varunidae): Histochemical fibre type composition. Acta Zoologica, 94(2), 233-239.
http://dx.doi.org/10.1111/j.1463-6395.2011.00548.x
---------- CHICAGO ----------
Longo, M.V., Díaz, A.O. "The claw closer muscle of two estuarine crab species, Cyrtograpsus angulatus and Neohelice granulata (Grapsoidea, Varunidae): Histochemical fibre type composition" . Acta Zoologica 94, no. 2 (2013) : 233-239.
http://dx.doi.org/10.1111/j.1463-6395.2011.00548.x
---------- MLA ----------
Longo, M.V., Díaz, A.O. "The claw closer muscle of two estuarine crab species, Cyrtograpsus angulatus and Neohelice granulata (Grapsoidea, Varunidae): Histochemical fibre type composition" . Acta Zoologica, vol. 94, no. 2, 2013, pp. 233-239.
http://dx.doi.org/10.1111/j.1463-6395.2011.00548.x
---------- VANCOUVER ----------
Longo, M.V., Díaz, A.O. The claw closer muscle of two estuarine crab species, Cyrtograpsus angulatus and Neohelice granulata (Grapsoidea, Varunidae): Histochemical fibre type composition. Acta Zool. 2013;94(2):233-239.
http://dx.doi.org/10.1111/j.1463-6395.2011.00548.x