How important are skeletal muscle mechanics in setting limits on jumping performance?
暂无分享,去创建一个
[1] J. Fleagle,et al. Body size and leaping kinematics in Malagasy vertical clingers and leapers , 1996 .
[2] R. Marsh,et al. Thermal dependence of isotonic contractile properties of skeletal muscle and sprint performance of the lizardDipsosaurus dorsalis , 2004, Journal of Comparative Physiology B.
[3] J. Losos,et al. Correlates of sprinting, jumping and parachuting performance in the butterfly lizard, Leiolepis belliani , 1989 .
[4] S. Katz,et al. ONTOGENETIC SCALING AND MECHANICAL BEHAVIOUR OF THE TIBIAE OF THE AFRICAN DESERT LOCUST (SCHISTOCERCA GREGARIA) , 1992 .
[5] R. Ricklefs,et al. Morphometric relationships of take-off speed in anuran amphibians. , 2003, Journal of experimental zoology. Part A, Comparative experimental biology.
[6] Raymond D. Semlitsch,et al. Differential Morphology and Jumping Performance of Newly Metamorphosed Frogs of the Hybridogenetic Rana esculenta Complex , 2000 .
[7] J. Losos,et al. The effect of perch diameter on escape behaviour of Anolis lizards : laboratory predictions and field tests , 1996, Animal Behaviour.
[8] C. Reggiani,et al. Human skeletal muscle fibres: molecular and functional diversity. , 2000, Progress in biophysics and molecular biology.
[9] Peter Aerts,et al. Vertical jumping in Galago senegalensis: the quest for an obligate mechanical power amplifier , 1998 .
[10] R J Full,et al. How animals move: an integrative view. , 2000, Science.
[11] M. Evans,et al. The jump of the click beetle (Coleoptera, Elateridae)—a preliminary study , 2009 .
[12] L. Rome,et al. Jumping Performance of Frogs (Rana Pipiens) as a Function of Muscle Temperature , 1984 .
[13] M F Bobbert,et al. Dependence of human squat jump performance on the series elastic compliance of the triceps surae: a simulation study. , 2001, The Journal of experimental biology.
[14] I. Johnston,et al. Thermal plasticity of skeletal muscle phenotype in ectothermic vertebrates and its significance for locomotory behaviour. , 2002, The Journal of experimental biology.
[15] Brackenbury,et al. Ballistics and visual targeting in flea-beetles (Alticinae) , 1995, The Journal of experimental biology.
[16] R. Marsh,et al. Probing the limits to muscle-powered accelerations: lessons from jumping bullfrogs , 2003, Journal of Experimental Biology.
[17] Julie M. Gabriel. The Development of the Locust Jumping Mechanism: II. Energy Storage and Muscle Mechanics , 1985 .
[18] D. Bechler,et al. Herpetology. , 2020, Science.
[19] R. S. Wilson. Geographic variation in thermal sensitivity of jumping performance in the frog Limnodynastes peronii. , 2001, The Journal of experimental biology.
[20] A. Biewener,et al. In vivo muscle force-length behavior during steady-speed hopping in tammar wallabies. , 1998, The Journal of experimental biology.
[21] Relation between fibre composition and daily duration of spontaneous activity in ankle muscles of the cat. , 1998, Archives italiennes de biologie.
[22] R. S. Wilson,et al. Allometric scaling relationships of jumping performance in the striped marsh frog Limnodynastes peronii. , 2000, The Journal of experimental biology.
[23] A. F. Bennett,et al. THERMAL DEPENDENCE OF LOCOMOTION AND AGGRESSION IN A XANTUSIID LIZARD , 1992 .
[24] A. Rand. Jumping Ability of Certain Anurans, with Notes on Endurance , 1952 .
[25] R. Marsh. Ontogenesis of contractile properties of skeletal muscle and sprint performance in the lizard Dipsosaurus dorsalis. , 1988, The Journal of experimental biology.
[26] A. Herrel,et al. A biomechanical analysis of intra- and interspecific scaling of jumping and morphology in Caribbean Anolis lizards , 2003, Journal of Experimental Biology.
[27] H. Shaffer. Herpetology.—F. Harvey Pough, R. M. Andrews, J. E. Cadle, M. L. Crump, A. H. Savitzky, and K. D. Wells. 1998. Prentice-Hall, Upper Saddle River, New Jersey. , 1998 .
[28] R. Marsh,et al. Jumping performance of hylid frogs measured with high-speed cine film. , 1994, The Journal of experimental biology.
[29] R. Lieber,et al. Myosin isoforms in anuran skeletal muscle: Their influence on contractile properties and in vivo muscle function , 2000, Microscopy research and technique.
[30] R. Marsh,et al. Thermal dependence of contractile properties of skeletal muscle from the lizard Sceloporus occidentalis with comments on methods for fitting and comparing force-velocity curves. , 1986, The Journal of experimental biology.
[31] F. Seebacher,et al. Biochemical acclimation of metabolic enzymes in response to lowered temperature in tadpoles of Limnodynastes peronii. , 2004, Comparative biochemistry and physiology. Part A, Molecular & integrative physiology.
[32] R H Fitts,et al. Contractile properties of rat, rhesus monkey, and human type I muscle fibers. , 1997, The American journal of physiology.
[33] Julie M. Gabriel. The Development of the Locust Jumping Mechanism: I. Allometric Growth and its Effect on Jumping Performance , 1985 .
[34] R. Alexander,et al. The mechanics of hopping by kangaroos (Macropodidae) , 2009 .
[35] L. E. Ford,et al. Shortening velocity and power output of skinned muscle fibers from mammals having a 25,000-fold range of body mass , 1991, The Journal of general physiology.
[36] John M. Gosline,et al. ONTOGENETIC SCALING OF JUMP PERFORMANCE IN THE AFRICAN DESERT LOCUST (SCHISTOCERCA GREGARIA) , 1993 .
[37] N. Curtin,et al. Power Output and Force-velocity Relationship of Live Fibres from White Myotomal Muscle of the Dogfish, Scyliorhinus Canicula , 2022 .
[38] R. Lieber,et al. Influence of myosin isoforms on contractile properties of intact muscle fibers from Rana pipiens. , 2002, American journal of physiology. Cell physiology.
[39] Michelle A Harris,et al. The relationship between maximum jumping performance and hind limb morphology/physiology in domestic cats (Felis silvestris catus). , 2002, The Journal of experimental biology.
[40] M. Noble,et al. Enhancement of mechanical performance by stretch during tetanic contractions of vertebrate skeletal muscle fibres. , 1978, The Journal of physiology.
[41] J. Murray,et al. Scale Effects in Animal Locomotion. , 1978 .
[42] L. Rome. The design of vertebrate muscular systems: comparative and integrative approaches. , 2002, Clinical orthopaedics and related research.
[43] G. Zug. Anuran locomotion--structure and function, 2: jumping performance of semiaquatic, terrestrial, and arboreal frogs , 1978 .
[44] A. Herrel,et al. THE QUICK AND THE FAST: THE EVOLUTION OF ACCELERATION CAPACITY IN ANOLIS LIZARDS , 2006, Evolution; international journal of organic evolution.
[45] G. Goldspink. Muscle growth and muscle function: a molecular biological perspective. , 1996, Research in veterinary science.
[46] J. Fridén,et al. Functional and clinical significance of skeletal muscle architecture , 2000, Muscle & nerve.
[47] G. Zug. Anuran locomotion-structure and function , 1978 .
[48] R. James,et al. Constraints on muscular performance: trade–offs between power output and fatigue resistance , 2004, Proceedings of the Royal Society of London. Series B: Biological Sciences.
[49] S. Emerson. ALLOMETRY AND JUMPING IN FROGS: HELPING THE TWAIN TO MEET , 1978, Evolution; international journal of organic evolution.
[50] R L Marsh,et al. Work and power output in the hindlimb muscles of Cuban tree frogs Osteopilus septentrionalis during jumping. , 1997, The Journal of experimental biology.
[51] C. Navas. Metabolic Physiology, Locomotor Performance, and Thermal Niche Breadth in Neotropical Anurans , 1996, Physiological Zoology.
[52] H. Bennet-Clark,et al. The energetics of the jump of the locust Schistocerca gregaria. , 1975, The Journal of experimental biology.
[53] H. Bekkering,et al. Developmental psychology: Rational imitation in preverbal infants , 2002, Nature.
[54] G. Zug. Anuran Locomotion: Structure and Function. I. Preliminary Observations on Relation between Jumping and Osteometrics of Appendicular and Postaxial Skeleton , 1972 .
[55] R. James,et al. Interindividual Differences in Leg Muscle Mass and Pyruvate Kinase Activity Correlate with Interindividual Differences in Jumping Performance of Hyla multilineata , 2005, Physiological and Biochemical Zoology.
[56] T. Watkins. Predator-Mediated Selection on Burst Swimming Performance in Tadpoles of the Pacific Tree Frog, Pseudacris regilla , 1996, Physiological Zoology.
[57] Kyoungsook Park,et al. VARIATIONS IN TAKE-OFF VELOCITY OF ANURAN AMPHIBIANS : RELATION TO MORPHOLOGY, MUSCLE CONTRACTILE FUNCTION AND ENZYME ACTIVITY , 1996 .
[58] Richard Shine,et al. Invasion and the evolution of speed in toads , 2006, Nature.
[59] J. Losos,et al. THE EVOLUTION OF FORM AND FUNCTION: MORPHOLOGY AND LOCOMOTOR PERFORMANCE IN WEST INDIAN ANOLIS LIZARDS , 1990, Evolution; international journal of organic evolution.
[60] C. Navas,et al. A preliminary assessment of anuran physiological and morphological adaptation to the Caatinga, a Brazilian semi-arid environment , 2004 .
[61] Eviatar Nevo,et al. Fight versus flight: Body temperature influences defensive responses of lizards , 1982, Animal Behaviour.
[62] S. Medler,et al. Comparative trends in shortening velocity and force production in skeletal muscles. , 2002, American journal of physiology. Regulatory, integrative and comparative physiology.
[63] D. Bramble,et al. Functional vertebrate morphology , 1985 .
[64] H. Bennet-Clark,et al. The jump of the flea: a study of the energetics and a model of the mechanism. , 1967, The Journal of experimental biology.
[65] C. Reggiani,et al. Expression of eight distinct MHC isoforms in bovine striated muscles: evidence for MHC-2B presence only in extraocular muscles , 2005, Journal of Experimental Biology.
[66] J A Faulkner,et al. Shortening velocity extrapolated to zero load and unloaded shortening velocity of whole rat skeletal muscle. , 1985, The Journal of physiology.
[67] Andrew A. Biewener,et al. Elastic energy storage in the hopping of kangaroo rats (Dipodomys spectabilis) , 2009 .
[68] T. Fukunaga,et al. Behavior of fascicles and tendinous structures of human gastrocnemius during vertical jumping. , 2001, Journal of applied physiology.
[69] C. Navas,et al. Physiological basis for diurnal activity in dispersing juvenile Bufo granulosus in the Caatinga, a Brazilian semi-arid environment. , 2007, Comparative biochemistry and physiology. Part A, Molecular & integrative physiology.
[70] R. James,et al. Scaling effects on muscle function in fast and slow muscles of Xenopus laevis , 1996 .
[71] C. Rocha,et al. Thermal biology and flight distance of Tropidurus oreadicus (Sauria Iguanidae) in an area of Amazonian Brazil , 1990 .
[72] Steven Vogel,et al. Living in a physical world II. The bio-ballistics of small projectiles , 2005, Journal of Biosciences.
[73] R. James,et al. Interindividual variation of isolated muscle performance and fibre-type composition in the toad Bufo viridus , 2004, Journal of Comparative Physiology B.
[74] A. F. Bennett,et al. Histochemical, enzymatic, and contractile proper of skeletal muscles of three anuran amphibians. , 1983, The American journal of physiology.
[75] A F Bennett,et al. Individual correlation of morphology, muscle mechanics, and locomotion in a salamander. , 1989, The American journal of physiology.
[76] Julie M. Gabriel. THE DEVELOPMENT OF THE LOCUST JUMPING MECHANISM , 2005 .
[77] T Fukunaga,et al. Influence of elastic properties of tendon structures on jump performance in humans. , 1999, Journal of applied physiology.
[78] R. Alexander,et al. Allometry of the leg muscles of mammals , 1981 .
[79] W. Kargo,et al. Functional morphology of proximal hindlimb muscles in the frog Rana pipiens. , 2002, The Journal of experimental biology.
[80] L. Rome,et al. Quantitative analysis of muscle fibre type and myosin heavy chain Distribution in the frog hindlimb: implications for locomotory design , 1998, Journal of Muscle Research & Cell Motility.
[81] W. J. Heitler. The locust jump , 1974, Journal of comparative physiology.
[82] R. M. Alexander,et al. Leg design and jumping technique for humans, other vertebrates and insects. , 1995, Philosophical transactions of the Royal Society of London. Series B, Biological sciences.
[83] A. F. Bennett,et al. Histochemical determination of the fiber composition of locomotory muscles in a lizard, Dipsosaurus dorsalis. , 1980, The Journal of experimental zoology.
[84] William J Kargo,et al. Jumping in frogs: assessing the design of the skeletal system by anatomically realistic modeling and forward dynamic simulation. , 2002, The Journal of experimental biology.
[85] A. S. Rand,et al. Inverse Relationship Between Temperature and Shyness in the Lizard Anolis Lineatopus , 1964 .
[86] The role of tendon elasticity in hopping in a wallaby (Macropus rufogriseus) , 2009 .
[87] L C Rome,et al. Maximum velocity of shortening of three fibre types from horse soleus muscle: implications for scaling with body size. , 1990, The Journal of physiology.
[88] K. Miller,et al. Scaling of locomotor performance and enzyme activity in the leopard frog, Rana pipiens , 1993 .
[89] P. Aerts,et al. SPEED AND STAMINA TRADE-OFF IN LACERTID LIZARDS , 2001, Evolution; international journal of organic evolution.
[90] Anthony Herrel,et al. The Evolution of Jumping Performance in Caribbean Anolis Lizards: Solutions to Biomechanical Trade‐Offs , 2004, The American Naturalist.
[91] Carlos A. Navas,et al. Evolution of jumping capacity in Tropidurinae lizards: does habitat complexity influence obstacle‐crossing ability? , 2007 .
[92] S. Lindstedt,et al. Task-specific design of skeletal muscle: balancing muscle structural composition. , 1998, Comparative biochemistry and physiology. Part B, Biochemistry & molecular biology.
[93] C. S. Wardle,et al. Limit of fish swimming speed , 1975, Nature.
[94] Thomas Speck,et al. Ecology and Biomechanics : A Mechanical Approach to the Ecology of Animals and Plants , 2006 .
[95] R. James,et al. Trade-offs between speed and endurance in the frog Xenopus laevis: a multi-level approach. , 2002, The Journal of experimental biology.
[96] R. James,et al. An integrative study of the temperature dependence of whole animal and muscle performance during jumping and swimming in the frog Rana temporaria , 1999, Journal of Comparative Physiology B.
[97] Anthony Herrel,et al. Ontogeny of Performance in Vertebrates* , 2005, Physiological and Biochemical Zoology.
[98] A. F. Bennett,et al. BODY SIZE, MUSCLE POWER OUTPUT AND LIMITATIONS ON BURST LOCOMOTOR PERFORMANCE IN THE LIZARD DIPSOSAURUS DORSALIS , 1993 .
[99] Cole,et al. Scaling of intrinsic contractile properties and myofibrillar protein composition of fast muscle in the fish myoxocephalus scorpius L , 1998, The Journal of experimental biology.
[100] C. Navas,et al. Environmental and Physiological Factors Influence Antipredator Behavior in Scinax hiemalis (Anura: Hylidae) , 2002, Copeia.