Muscle Response to Changing Neuronal Input in the Lobster(Panulirus Interruptus) Stomatogastric System: Slow Muscle Properties Can Transform Rhythmic Input into Tonic Output
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[1] T. Bullock. Neuromuscular facilitation in scyphomedusae , 1943 .
[2] G. Hoyle. ‘Slow’ and ‘Fast’ Nerve Fibres in Locusts , 1953, Nature.
[3] G. Hoyle,et al. A further study of the paradox phenomenon of crustacean muscle. , 1965, The Journal of physiology.
[4] H. Atwood. An Attempt to Account for the Diversity of Crustacean Muscles , 1973 .
[5] D. Maynard,et al. The structure of the stomatogastric neuromuscular system in Callinectes sapidus, Homarus americanus and Panulirus argus (Decapoda Crustacea). , 1974, Philosophical transactions of the Royal Society of London. Series B, Biological sciences.
[6] A. Selverston,et al. The stomatogastric nervous system: Structure and function of a small neural network , 1976, Progress in Neurobiology.
[7] C. Govind,et al. Nonhomogeneous excitatory synapses of a crab stomach muscle. , 1978, Journal of neurobiology.
[8] T. Hetherington,et al. Electromyography of the opercularis muscle of Rana catesbeiana: An amphibian tonic muscle , 1983, Journal of morphology.
[9] E. Bizzi,et al. Posture control and trajectory formation in single- and multi-joint arm movements. , 1983, Advances in neurology.
[10] J. Desmedt. Motor control mechanisms in health and disease , 1983 .
[11] L. D. Leake. Leech Retzius cells and 5-hydroxytryptamine. , 1986, Comparative biochemistry and physiology. C, Comparative pharmacology and toxicology.
[12] G. ten Bruggencate. Muscles and their neural control. , 1986, Applied neurophysiology.
[13] A. Selverston,et al. The Crustacean Stomatogastric System , 1987, Springer Berlin Heidelberg.
[14] R. Josephson,et al. The Contractile Properties of a Crab Respiratory Muscle , 1987 .
[15] Lawrence C. Rome,et al. Why animals have different muscle fibre types , 1988, Nature.
[16] D. Carrier. Ventilatory action of the hypaxial muscles of the lizard Iguana iguana: a function of slow muscle. , 1989, The Journal of experimental biology.
[17] P. E. Lloyd,et al. Involvement of pedal peptide in locomotion in Aplysia: modulation of foot muscle contractions. , 1990, Journal of Neurobiology.
[18] J. Blankenship,et al. Neuronal modulation of foot and body-wall contractions in Aplysia californica. , 1992, Journal of Neurophysiology.
[19] R. Harris-Warrick. In: Dynamic Biological Networks: The Stomatogastric Nervous System , 1992 .
[20] C. I. Smith,et al. MYOTOMAL MUSCLE FUNCTION AT DIFFERENT LOCATIONS IN THE BODY OF A SWIMMING FISH , 1993 .
[21] Paul W. Webb,et al. Mechanics and Physiology of Animal Swimming: The biology of fish swimming , 1994 .
[22] M. S. Tu,et al. MODULATION OF NEGATIVE WORK OUTPUT FROM A STEERING MUSCLE OF THE BLOWFLY CALLIPHORA VICINA , 1994, The Journal of experimental biology.
[23] I. V. Orekhova,et al. Control of time-dependent biological processes by temporally patterned input. , 1997, Proceedings of the National Academy of Sciences of the United States of America.
[24] S. Hooper,et al. Muscle Response to Changing Neuronal Input in the Lobster (Panulirus interruptus) Stomatogastric System: Spike Number- versus Spike Frequency-Dependent Domains , 1997, The Journal of Neuroscience.
[25] P. De Koninck,et al. Sensitivity of CaM kinase II to the frequency of Ca2+ oscillations. , 1998, Science.
[26] L. Maddock. Mechanics and physiology of animal swimming , 2004, Reviews in Fish Biology and Fisheries.