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Journal Articles
Functional morphology of undulatory pectoral fin locomotion in the stingray taeniura lymma (Chondrichthyes: dasyatidae)
L.J. Rosenberger, M.W. Westneat
Journal of Experimental Biology 1999 202: 3523-3539;
L.J. Rosenberger
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M.W. Westneat
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Summary

Rajiform locomotion is a unique swimming style found in the batoid fishes (skates and rays) in which thrust is generated by undulatory waves passing down the enlarged pectoral fins. We examined the kinematic patterns of fin motion and the motor patterns of pectoral fin muscles driving the locomotor system in the blue-spot stingray Taeniura lymma. Our goals in this study were to determine overall patterns of fin motion and motor control during undulatory locomotion, to discover how these patterns change with swimming velocity and to correlate muscle function with kinematics and pectoral morphology. Kinematic data were recorded from five individuals over a range of swimming speeds from 22 to 55 cm s(−)(1) (0.9-3.0 DL s(−)(1), where DL is body disc length). Electromyographic (EMG) data were recorded from three individuals over a range of velocities (1.2-3.0 DL s(−)(1)) at seven locations (four dorsal, three ventral) along the pectoral fin. As swimming velocity increases, fin-beat frequency, wavespeed and stride length increase, number of waves and reduced frequency decrease and fin amplitude remains constant. There is variability among individuals in frequency and amplitude at a given speed. An inverse relationship was found in which a high fin-beat frequency is associated with a low fin amplitude and a low fin-beat frequency is associated with a high fin amplitude. The motor pattern of undulatory locomotion is alternate firing activity in the dorsal and ventral muscles as the wave moves along the fin from anterior to posterior. Fin muscles are active along the entire length of the fin except at the lowest speeds. As swimming velocity and fin-beat frequency increase, the time of activation of posterior muscles becomes earlier relative to the onset of activity in the anterior dorsal muscles. The duration of muscle activity is longer in the ventral muscles than in the dorsal muscles, indicating that they play a central role in the power stroke of the fin-beat cycle. The anterior muscles (dorsal and ventral) are active for a relatively longer part of the stride cycle than the posterior muscles. Both the anterior position and the large duty factor of the anterior muscles reflect the role of these muscles in initial wave generation. Synchronous recordings of kinematic data with EMG data reveal that the anterior dorsal and middle ventral muscles do mostly positive work, whereas the dorsal and ventral posterior muscles do negative work at most swimming speeds.

  • © 1999 by Company of Biologists

REFERENCES

    1. Arreola, V. I. and
    2. Westneat, M. W.
    (1996). Mechanics of propulsion by multiple fins: kinematics of aquatic locomotion in the burrfish (Chilomycterus schoepfi). Proc. R. Soc. Lond. B 263, 1689–.
    OpenUrlAbstract/FREE Full Text
    1. Blake, R. W.
    (1983). Swimming in the electric eels and knifefishes. Can. J. Zool 61, 1432–.
    OpenUrl
    1. Breder, C. M.
    (1926). The locomotion of fishes. Zoologica 50, 159–.
    OpenUrl
    1. Campbell, B.
    (1951). The locomotor behavior of spinal elasmobranchs with an analysis of stinging in Urobatis. Copeia 1951, 277–.
    OpenUrlCrossRef
    1. Daniel, T. L.
    (1984). Unsteady aspects of aquatic locomotion. Am. Zool 24, 121–.
    OpenUrl
    1. Daniel, T. L.
    (1988). Forward flapping flight from flexible fins. Can. J. Zool 66, 630–.
    OpenUrl
    1. Dial, K. P.,
    2. Goslow, G. E. and
    3. Jenkins, F. A. Jr..
    (1991). The functional anatomy of the shoulder of the European starling (Sturnus vulgaris). J. Morph 207, 327–.
    1. Dingerkus, G. and
    2. Uhler, L. D.
    (1977). Enzyme clearing of alcian blue stained whole vertebrates for demonstration of cartilage. Stain Technol 52, 229–.
    OpenUrlPubMedWeb of Science
    1. Drucker, E. G. and
    2. Jensen, J. S.
    (1996). Pectoral fin locomotion in the striped surfperch. I. Kinematic effects of swimming speed and body size. J. Exp. Biol 199, 2235–.
    OpenUrlAbstract/FREE Full Text
    1. Drucker, E. G. and
    2. Jensen, J. S.
    (1997). Kinematic and electromyographic analysis of steady pectoral fin swimming in the surfperches. J. Exp. Biol 200, 1709–.
    OpenUrlAbstract
    1. Fish, F. E. and
    2. Baudinette, R. V.
    (1999). Energetics of locomotion by the Australian water rat (Hydromys chrysogaster): a comparisonof swimming and running in a semi-aquatic mammal. J. Exp. Biol 202, 353–.
    OpenUrlAbstract/FREE Full Text
    1. Gibb, A. C.,
    2. Jayne, B. C. and
    3. Lauder, G. V.
    (1994). Kinematics of pectoral fin locomotion in the bluegill sunfish Lepomis macrochirus. J. Exp. Biol 189, 133–.
    OpenUrlAbstract/FREE Full Text
    1. Gillis, G. B.
    (1996). Undulatory locomotion in elongate aquatic vertebrates: anguilliform swimming since Sir James Gray. Am. Zool 36, 656–.
    OpenUrl
    1. Gillis, G. B.
    (1998). Environmental effects on undulatory locomotion in the American eel Anguilla rostrata: kinematics in water and on land. J. Exp. Biol 201, 949–.
    OpenUrlAbstract/FREE Full Text
    1. Gillis, G. B.
    (1998). Neuromuscular control of anguilliform locomotion: patterns of red and white muscle activity during swimming in the American eel Anguilla rostrata. J. Exp. Biol 201, 3245–.
    OpenUrlAbstract/FREE Full Text
    1. Gray, J.
    (1933). Studies in animal locomotion. I. The movement of fish with special reference to the eel. J. Exp. Biol 10, 88–.
    OpenUrlAbstract
    1. Jayne, B. C. and
    2. Lauder, G. V.
    (1995). Are muscle fibers within fish myotomes activated synchronously? Patterns of recruitment within deep myomeric musculature during swimming in largemouth bass. J. Exp. Biol 198, 805–.
    OpenUrlAbstract/FREE Full Text
    1. Long, J. H. Jr..,
    2. McHenry, M. J. and
    3. Boetticher, N. C.
    (1994). Undulatory swimming: how traveling waves are produced and modulated in sunfish (Lepomis gibbosus). J. Exp. Biol 192, 129–.
    OpenUrlAbstract/FREE Full Text
    1. Rice, W. R.
    (1989). Analyzing tables of statistical tests. Evolution 43, 223–.
    OpenUrlCrossRefWeb of Science
    1. Rome, L. C.,
    2. Swank, D. and
    3. Corda, D.
    (1993). How fish power swimming. Science 261, 340–.
    OpenUrlAbstract/FREE Full Text
    1. Tobalske, B. W.
    (1995). Neuromuscular control and kinematics of intermittent flight in the European starling (Sturnus vulgaris). J. Exp. Biol 198, 1259–.
    OpenUrlAbstract/FREE Full Text
    1. Tu, M. S. and
    2. Dickinson, M. H.
    (1994). Modulation of negative work output from a steering muscle of the flowfly Calliphora vicina. J. Exp. Biol 192, 207–.
    OpenUrlAbstract/FREE Full Text
    1. Vogel, S.
    (1994). Life in Moving Fluids. Princeton: Princeton University Press.
    1. Walker, J. A. and
    2. Westneat, M. W.
    (1997). Labriform propulsion in fishes: kinematics of flapping aquatic flight in the bird wrasse Gomphosus varius (Labridae). J. Exp. Biol 200, 1549–1569.
    OpenUrlAbstract
    1. Wardle, C. S.,
    2. Videler, J. J. and
    3. Altringham, J. D.
    (1995). Tuning in to fish swimming: body form, swimming mode and muscle function. J. Exp. Biol 198, 1629–.
    OpenUrlAbstract/FREE Full Text
    1. Webb, P. W.
    (1973). Kinematics of pectoral fin propulsion in Cymatogaster aggregata. J. Exp. Biol 59, 697–.
    OpenUrl
    1. Webb, P. W.
    (1988). Simple physical principles and vertebrate aquatic locomotion. Am. Zool 28, 709–.
    OpenUrlAbstract
    1. Webb, P. W.
    (1993). The effect of solid and porous channel walls on steady swimming of steelhead trout Oncorhynchus mykiss. J. Exp. Biol 178, 97–.
    OpenUrl
    1. Westneat, M. W.
    (1996). Functional morphology of aquatic flight in fishes: Mechanical modeling, kinematics and electromyography of labriform locomotion. Am. Zool 36, 582–.
    OpenUrlAbstract/FREE Full Text
    1. Westneat, M. W. and
    2. Walker, J. A.
    (1997). Motor patterns of labriform locomotion: kinematic and electromyographic analysis of pectoral fin swimming in the labrid fish Gomphosus varius. J. Exp. Biol 200, 1881–.
    OpenUrl
    1. Wright, B.
    (1997). Oscillation versus undulation in balistiform locomotion. Am. Zool 37, 26–.
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Journal Articles
Functional morphology of undulatory pectoral fin locomotion in the stingray taeniura lymma (Chondrichthyes: dasyatidae)
L.J. Rosenberger, M.W. Westneat
Journal of Experimental Biology 1999 202: 3523-3539;
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Journal Articles
Functional morphology of undulatory pectoral fin locomotion in the stingray taeniura lymma (Chondrichthyes: dasyatidae)
L.J. Rosenberger, M.W. Westneat
Journal of Experimental Biology 1999 202: 3523-3539;

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