Histochemical and Morphometric Analyses of the Musculature of the Forelimb of the Subterranean Rodent Ctenomys talarum (Octodontoidea)

Histochemical and morphometric analyses were performed to characterize the fibre-type composition of two forelimb muscles of the South American subterranean rodent Ctenomys talarum. The studied muscles were the triceps lateralis, an extensor of the elbow, and the teres major, a flexor of the shoulde...

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Autor principal: Alvarez, G.I
Otros Autores: Díaz, A.O, Longo, M.V, Becerra, F., Vassallo, A.I
Formato: Capítulo de libro
Lenguaje:Inglés
Publicado: 2012
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100 1 |a Alvarez, G.I. 
245 1 0 |a Histochemical and Morphometric Analyses of the Musculature of the Forelimb of the Subterranean Rodent Ctenomys talarum (Octodontoidea) 
260 |c 2012 
270 1 0 |m Longo, M.V.; Departamento de Biología, Instituto de Investigaciones Marinas y Costeras, FCEyN, CONICET Universidad Nacional de Mar del Plata, Provincia de Buenos Aires, Argentina; email: mvlongo@mdp.edu.ar 
506 |2 openaire  |e Política editorial 
504 |a Alnaqeeb, M.A., Goldspink, G., Changes in fibre type, number and diameter in developing and ageing skeletal muscle (1986) J. Anat., 153, pp. 31-45 
504 |a Andrews, F.M., Spurgeon, T.L., Histochemical staining characteristics of normal horse skeletal muscle (1986) Am. J. Vet. Res., 47, pp. 1843-1852 
504 |a Antinuchi, C.D., Busch, C., Burrow structure in the subterranean rodent Ctenomys talarum (1992) Z. Säugetierkunde., 57, pp. 163-168 
504 |a Becerra, F., Echeverría, A.I., Vassallo, A.I., Casinos, A., Bite force and jaw biomechanics in the subterranean rodent Ctenomys talarum (Caviomorpha: Octodontoidea) (2011) Can. J. Zool., 89, pp. 334-342 
504 |a Biewener, A.A., (2003) Animal Locomotion, , New York: Oxford University Press 
504 |a Bonine, K.E., Gleeson, T.T., Garland Jr, T., Comparative analysis of fiber-type composition in the iliofibularis muscle of phrynosomatid lizards (Squamata) (2001) J. Morphol., 250, pp. 265-280 
504 |a Brooke, M., Kaiser, K., Muscle fiber types: how many and what kindarticle (1970) Arch. Neurol., 23, pp. 369-379 
504 |a Burke, R.E., Motor units: Anatomy, physiology and functional organization (1981) Motor Control. Handbook of Physiology. Sect 1. The Nervous System, 1, pp. 345-422. , V. B. Brooks, ed). Vol. Part 2. Bethesda: Williams and Wilkins - 
504 |a Burkholder, T.J., Fingado, B., Baron, S., Lieber, R.L., Relationship between muscle fiber types and size and muscle architectural properties in the mouse hindlimb (1994) J. Morphol., 221, pp. 177-190 
504 |a Camin, S., Madoery, L., Roig, V., The burrowing behavior of Ctenomys mendocinus (Rodentia) (1995) Mammalian., 59, pp. 9-17 
504 |a Deffendi, V., Pearson, B., Quantitative estimation of succinate dehydrogenase activity in a single microscope tissue section (1955) J. Histochem. Cytochem., 3, pp. 61-69 
504 |a Devincenti, C.V., Díaz, A.O., García, A.M., Goldemberg, A.L., Pectoral fins of Micropogonias furnieri: a histochemical and ultrastructural study (2009) Fish Physiol. Biochem., 35, pp. 317-323 
504 |a Feldhamer, G.A., Drickamer, L.C., Vessey, S.H., Merritt, J.F., (1999) Mammalogy: Adaptation, Diversity and Ecology, , Boston: McGraw-Hill 
504 |a Fernández, M.E., Vassallo, A.I., Zárate, M., Functional morphology and paleobiology of the Pliocene rodent Actenomys (Caviomorpha: Octodontidae): the evolution to a subterranean mode of life (2000) Biol. J. Linn. Soc., 71, pp. 71-90 
504 |a Fuentes, I., Cobos, A.R., Segade, L.A.G., Muscle fibre types and their distribution in the biceps and triceps brachii of the rat and rabbit (1998) J. Anat., 192, pp. 203-210 
504 |a Gannon, W.L., Sikes, R.S., The animal care and use committee of the American society of mammalogists. Guidelines of the American society of mammalogists for the use of wild mammals in research. (2007) J. Mammal., 88, pp. 809-823 
504 |a Garland, T., Adolph, S.C., Why not to do two-species comparative studies: limitations on inferring adaptation (1994) Physiol. Zool., 7, pp. 797-828 
504 |a Goldstein, B., Heterogeneity of muscle fibers in some burrowing mammals (1971) J. Mammal., 52, pp. 515-527 
504 |a Green, H., Goreham, G., Ouyang, J., Ball-Burnett, M., Ranney, D., Regulation of fiber size, oxidative potential, and capillarization in human muscle by resistance exercise (1999) Am. J. Physiol. Regul. Integr. Comp. Physiol., 276, pp. 591-596 
504 |a Guth, L., Samaha, F., Procedure for histochemical demonstration of actomyosin ATPase (1970) Exptl. Neurol., 20, pp. 365-367 
504 |a Hildebrand, M., Digging of quadrupeds (1985) Functional vertebrate morphology, pp. 89-109. , (M. Hildebrand, D. M. Bramble, K. F. Liem and D. B. Wake, eds). Cambridge, Massachusetts and London: The Belknap Press of Harvard University Press - 
504 |a Hildebrand, M., Goslow, G., (2001) Analysis of Vertebrate Structure, , 5th edition. New York: John Wiley and Sons 
504 |a Hopkins, S.S.B., Davis, E.B., Quantitative morphological proxies for fossoriality in small mammals (2009) J. Mammal., 90, pp. 1449-1460 
504 |a Hotchkiss, R.D., A microchemical reaction resulting in the staining of polysaccharide structure in fixed tissue preparation (1948) Arch. Biochem., 16, pp. 131-141 
504 |a Jouffroy, F.K., Stern Jr, J.T.M.F., Larson, S.G., Function and cytochemical characteristics of postural limb muscles of the rhesus monkey: A telemetered EMG and immunofluorescence study (1999) Folia Primatol., 70, pp. 235-253 
504 |a Jouffroy, F.K., Medina, M.F., Renous, S., Gasc, J.P., Immunocytochemical characteristics of elbow, knee and ankle muscles of the five-toed jerboa (Allactaga elater) (2003) J. Anat., 202, pp. 373-386 
504 |a Kanatous, S.B., Di Michele, L.V., Cowan, D.F., Davis, R.W., High aerobic capacities in the skeletal muscles of pinnipeds: adaptations to diving hypoxia (1999) J. Appl. Physiol., 86, pp. 1247-1256 
504 |a Kanatous, S.B., Davis, R.W., Watson, R., Polasek, L., Williams, T.M., Mathieu-Costello, O., Aerobic capacities in the skeletal muscles of Weddell seals: key to longer dive durations? (2002) J. Exp. Biol., 205, pp. 3601-3608 
504 |a Kittlein, M.J., Vassallo, A.I., Busch, C., Differential predation upon sex and age classes of tuco-tucos (Ctenomys talarum, Rodentia: Octodontidae) by owls (2001) Mamm. Biol., 66, pp. 281-289 
504 |a Lacey, E.A., Patton, J.L., Cameron, G.N., Introduction (2000) Life Underground: The Biology of Subterranean Rodents, pp. 1-14. , E. A. Lacey, J. L. Patton and G. N. Cameron, eds). Chicago: University of Chicago Press - 
504 |a Lehmann, W.H., The forelimb architecture of some fossorial rodents (1963) J. Morphol., 115, pp. 59-76 
504 |a Lessa, E.P., Morphological evolution of subterranean mammals: integrating structural, functional, and ecological perspectives (1990) Prog. Clin. Biol. Res., 335, pp. 211-230 
504 |a Lessa, E.P., Vassallo, A.I., Verzi, D.H., Mora, M.S., Evolution of morphological adaptation for digging in living and extinct ctenomyid and octodontid rodents (Rodentia: Caviomorpha: Octodontoidea) (2008) Biol. J. Linn. Soc., 95, pp. 267-283 
504 |a Lind, A., Kernell, D., Myofibrillar ATPase histochemistry of rat skeletal muscles: a "two-dimensional" quantitative approach (1991) J. Histochem. Citochem., 39, pp. 589-597 
504 |a Luna, F., Antinuchi, C.D., Energetics and thermoregulation during digging in the tuco-tuco (Ctenomys talarum) (2007) Comp. Biochem. Physiol. A, 146, pp. 559-564 
504 |a Luna, F., Antinuchi, C.D., Busch, C., Digging energetics in south american rodent Ctenomys talarum (Rodentia, Ctenomydae) (2002) Can. J. Zool., 80, pp. 2144-2149 
504 |a Mattson, J.P., Miller, T.A., Poole, D.C., Delp, M.D., Fiber composition and oxidative capacity of hamster skeletal muscle (2002) J. Histochem. Cytochem., 50, pp. 1685-1692 
504 |a Morgan, C., Geometric morphometrics of the scapula of South American caviomorph rodents (Rodentia: Hystricognathi): Form, function and phylogeny (2009) Mamm. Biol., 74, pp. 497-506 
504 |a Nevo, E., Mosaic evolution of subterranean mammals (1999) Regression, Progression and Global Convergence, , Oxford: Oxford University Press 
504 |a Oatis, C.A., Biomechanics of skeletal muscle (2004) Kinesiology: The Mechanics and Pathomechanics of Human Movement, pp. 44-65. , C. A. Oatis ed). Philadelphia: Lippincott Williams & Wilkins - 
504 |a Ogata, T., Morphological and cytochemical features of fiber types in vertebrate skeletal muscle (1988) Crit. Rev. Anat. Cell Biol., 1, pp. 229-275 
504 |a Peter, J., Barnard, J., Edgerton, V., Gilespie, C., Temple, K., Metabolic profiles of three types of skeletal muscle fibres in guinea pigs and rabbits (1972) Biochem., 11, pp. 2633-2672 
504 |a Reichman, O.J., Smith, S.C., Burrows and burrowing behavior by mammals (1990) Current Mammalogy, 2, pp. 197-244. , H. H. Genoways, ed.). Vol. New York: Plenum - 
504 |a Reig, O., Busch, C., Ortells, O., Contreras, J., An overview of evolution, systematics, population biology, cytogenetics, molecular biology and speciation in Ctenomys (1990) Evolution of Subterranean Mammals at the Organismal and Molecular Levels, pp. 71-96. , E. Nevo and O. Reig, eds). New York: Alan R. Liss - 
504 |a Salton, J.A., Sargis, E.J., Evolutionary morphology of the Tenrecoidea (Mammalia) forelimb skeleton (2008) Mammalian Evolutionary Morphology: A Tribute to Frederick S. Szalay, pp. 51-71. , (E. J. Sargis and M. Dagosto, eds). New York: Springer - 
504 |a Schilling, N., Characteristics of paravertebral muscles - fibre type distribution pattern in the pika, Ochotona rufescens (Mammalia: Lagomorpha) (2005) J. Zool. Syst. Evol. Res., 43, pp. 38-48 
504 |a Sinclair, A.G., Alexander, R.M., Estimates of forces exerted by the jaw muscles of some reptiles (1987) J. Zool., 213, pp. 107-115 
504 |a Singh, K., Melis, E.H., Richmond, J.R., Scott, S.H., Morphometry of Macaca mulatta forelimb. II. Fiber-type composition in shoulder and elbow muscles. (2002) J. Morphol., 251, pp. 323-332 
504 |a Stein, R.B., Morphology of subterranean rodents (2000) Life Underground: The Biology of Subterranean Rodents, pp. 19-61. , E. A. Lacey, J. P. Patton and G. N. Cameron, eds). Chicago and London: University of Chicago Press - 
504 |a Steiner-Souza, F., de Freitas, T.R.O., Cordeiro-Estrela, P., Inferring adaptation within shape diversity of the humerus of subterranean rodent Ctenomys (2010) Biol. J. Linn. Soc., 100, pp. 353-367 
504 |a Suzuki, A., Composition of myofiber types in limb muscles of the house shrew (Suncus murinus): lack of type I myofibers (1990) Anat. Rec., 228, pp. 23-30 
504 |a Suzuki, A., Hayama, S., Histochemical classification of myofiber types in the triceps surae and flexor digitorum superficialis muscle of Japanese macaques (1991) Acta Histochem. Cytochem., 24, pp. 323-328 
504 |a Suzuki, A., Tamate, H., Distribution of myofiber types in the hip and thigh musculature of sheep (1988) Anat. Rec., 221, pp. 494-502 
504 |a Thayer, R.E., Rice, C.L., Pettigrew, F.P., Noble, E.G., Taylor, A.W., The fibre composition of skeletal muscle (1993) Principles of Exercise Biochemistry. Medicine and Sport Science, pp. 25-50. , J. R. Poortman, ed). 2nd rev. ed. Vol. 38, Basel: Karger, pp - 
504 |a Vassallo, A.I., Functional morphology, comparative behaviour, and adaptation in two sympatric subterranean rodents genus Ctenomys (Caviomorpha, Octodontidae) (1998) J. Zool., 244, pp. 415-427 
504 |a Vassallo, A.I., Acquisition of subterranean habits in tuco-tucos (Rodentia, Caviomorpha, Ctenomys): Role of social transmission (2006) J. Mammal., 87, pp. 939-943 
504 |a Vassallo, A.I., Kittlein, M.J., Busch, C., Owl predation on two sympatric species of tuco-tucos (Rodentia: Octodontidae) (1994) J. Mammal., 75, pp. 725-732 
504 |a Vleck, D., The energy of burrowing by the pocket gopher Thomomys bottae (1979) Phys. Zool., 52, pp. 122-136 
504 |a Vleck, D., Burrow structure and foraging costs in the fossorial rodent Thomomys bottae (1981) Oecología, 49, pp. 391-396 
504 |a Wang, L.C., Kernell, D., Fibre type regionalisation in lower hindlimb muscles of rabbit, rat and mouse: a comparative study (2001) J. Anat., 199, pp. 631-643 
504 |a Weber, J.N., Hoekstra, H.E., The evolution of burrowing behaviour in deer mice (genus Peromyscus) (2009) Anim. Behav., 77, pp. 603-609 
504 |a Wernig, A., Irintchev, A., Weisshaupt, P., Muscle injury, cross-sectional area and fibre type distribution in mouse soleus after intermittent wheel-running (1990) J. Physiol., 428, pp. 639-652 
504 |a Zar, J.H., (2010) Biostatistical Analysis, , 5th ed. New Jersey: Pearson Prentice Hall 
504 |a Zenuto, R.R., Vassallo, A.I., Busch, C., A method to study social and reproductive behavior of subterranean rodents in captivity with preliminary data from Ctenomys talarum (2001) Acta Theriol., 46, pp. 161-170 
504 |a Zenuto, R.R., Vassallo, A.I., Busch, C., Comportamiento social y reproductivo del roedor subterráneo Ctenomys talarum (Rodentia, Ctenomyidae) en condiciones de semicautiverio (2002) Rev. Chil. Hist. Nat., 75, pp. 165-177 
520 3 |a Histochemical and morphometric analyses were performed to characterize the fibre-type composition of two forelimb muscles of the South American subterranean rodent Ctenomys talarum. The studied muscles were the triceps lateralis, an extensor of the elbow, and the teres major, a flexor of the shoulder. It was found that these muscles had an elevated proportion of fast oxidative-glycolytic (FOG) fibres, and lower proportions of slow oxidative (SO) and fast glycolytic (FG) fibres. This composition probably qualifies the teres major and triceps muscles to perform the sustained effort required in tunnelling excavation. The results were discussed considering published data on fibre-type composition of mammals having different modes of life and digging behaviour. We here suggest that C. talarum has the potential of generating forces linked to rapid, powerful movements during sustained periods by means of an elevated proportion of FOG fibres, together with osteological changes that result in a great mechanical advantage of the forelimb muscles. © 2012 Blackwell Verlag GmbH.  |l eng 
593 |a Departamento de Biología, Instituto de Investigaciones Marinas y Costeras, FCEyN, CONICET Universidad Nacional de Mar del Plata, Provincia de Buenos Aires, Argentina 
690 1 0 |a ANIMAL 
690 1 0 |a ARTICLE 
690 1 0 |a CHEMISTRY 
690 1 0 |a CLASSIFICATION 
690 1 0 |a CYTOCHEMISTRY 
690 1 0 |a ENERGY METABOLISM 
690 1 0 |a FEMALE 
690 1 0 |a FORELIMB 
690 1 0 |a GLYCOLYSIS 
690 1 0 |a HISTOLOGY 
690 1 0 |a MALE 
690 1 0 |a MUSCLE CONTRACTION 
690 1 0 |a PHYSIOLOGY 
690 1 0 |a RODENT 
690 1 0 |a SKELETAL MUSCLE 
690 1 0 |a ULTRASTRUCTURE 
690 1 0 |a ANIMALS 
690 1 0 |a ENERGY METABOLISM 
690 1 0 |a FEMALE 
690 1 0 |a FORELIMB 
690 1 0 |a GLYCOLYSIS 
690 1 0 |a HISTOCYTOCHEMISTRY 
690 1 0 |a MALE 
690 1 0 |a MUSCLE CONTRACTION 
690 1 0 |a MUSCLE FIBERS, SKELETAL 
690 1 0 |a MUSCLE, SKELETAL 
690 1 0 |a RODENTIA 
690 1 0 |a CTENOMYS TALARUM 
690 1 0 |a MAMMALIA 
690 1 0 |a RODENTIA 
700 1 |a Díaz, A.O. 
700 1 |a Longo, M.V. 
700 1 |a Becerra, F. 
700 1 |a Vassallo, A.I. 
773 0 |d 2012  |g v. 41  |h pp. 317-325  |k n. 5  |p J. Vet. Med. Ser. C Anat. Histol. Embryol.  |x 03402096  |t Journal of Veterinary Medicine Series C: Anatomia Histologia Embryologia 
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