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Bennett, A. F (1990). Thermal dependence of locomotor capacity. Am. J. Physiol 259, 253-.

Chapman, R. A (1967). Dependence on temperature of the conduction velocity of the action potential of the squid giant axon. Nature 2, 1143-.

Dexter, M. E. and Swenberg, C. E (1975). Temperature and impulse velocity in giant axon of squid Loligo pealei. Am. J. Physiol 229, 1249-.

Ferguson, G. P., Martini, F. M. and Pinsker, H. M (1988). Chromatophore motor fields in the squid, Lolliguncula brevis. J. Exp. Biol 134, 281-.[Abstract/Free Full Text]

Friedlander, M. J., Kotchabhakdi, N. and Prosser, C. L (1976). Effects of cold and heat on behavior and cerebellar function in goldfish. J. Comp. Physiol 112, 19-.

Gilly, W. F., Preuss, T. and McFarlane, M. B (1996). All-or-none contraction and sodium channels in a subset of circular muscle fibers of squid mantle. Biol. Bull 191, 337-.[Abstract]

Keynes, R. D. and Meves, H (1993). Properties of the voltage sensor for the opening and closing of the sodium channels in the squid giant axon. Proc. R. Soc. Lond. B 253, 61-.[Medline]

Lagerspetz, K. Y. H (1974). Temperature acclimation and the nervous system. Biol. Rev 49, 477-.[Medline]

Macdonald, J. A (1981). Temperature compensation in the peripheral nervous system: Antarctic vs. temperate poikilotherms. J. Comp. Physiol 142, 411-.

Mackie, G. O (1990). Giant axons and control of jetting in the squid Loligo and the jellyfish Aglantha. Can. J. Zool 68, 799-.

Marchand, P. and Marmet, L (1983). Binomial smoothing filter: A way to avoid some pitfalls of least-squares polynomial smoothing. Rev. Sci. Instrument 54, 1034-.

Matteson, D. R. and Armstrong, C. M (1982). Evidence for a population of sleepy sodium channels in squid axon at cold temperature. J. Gen. Physiol 79, 739-.[Abstract/Free Full Text]

Miles, C. I (1992). Temperature compensation in the nervous system of the grasshopper. Physiol. Ent 17, 169-.

Montgomery, J. C (1988). Temperature compensation in the vestibulo-ocular reflex: a novel hypothesis of cerebellar function. J. Theor. Biol 132, 163-.[Medline]

Montgomery, J. C. and Macdonald, J. A (1990). Effects of temperature on nervous system: implications for behavioral performance. Am. J. Physiol 259, 191-.

O'Dor, R. K (1988). The forces acting on swimming squid. J. Exp. Biol 137, 421-.[Abstract/Free Full Text]

O'Dor, R. K (1988). Limitations on locomotor performance in squid. J. Appl. Physiol 64, 128-.[Abstract/Free Full Text]

Packard, A (1969). Jet propulsion and the giant fiber response of Loligo. Nature 221, 875-.[Medline]

Packard, A (1972). Cephalopods and fish: The limits of convergence. Biol. Rev 47, 241-.

Parnas, I (1972). Differential block at high frequency of branches of a single axon innervating two muscles. J. Neurophysiol 35, 903-.[Free Full Text]

Preuss, T., Lebaric, Z. N. and Gilly, W. F (1997). Post-hatchingdevelopment of circular mantle muscles in the squid Loligo opalescens. Biol. Bull 192, 375-.[Abstract]

Prosser, C. L. and Nelson, D. O (1981). The role of the nervous systems in temperature adaptation of poikilotherms. Annu. Rev. Physiol 43, 281-.[Medline]

Prosser, C. L. and Young, J. Z (1937). Responses of muscles of the squid to repetitive stimulation of the giant nerve fibers. Biol. Bull 73, 237-.[Abstract/Free Full Text]

Rome, L. C (1990). Influence of temperature on muscle recruitment and muscle function in vivo. Am. J. Physiol 259, 210-.

Stanley, E. F (1984). The action of cholinergic agonists on the squid stellate ganglion giant synapse. J. Neurosci 4, 1904-.[Abstract]

Weight, F. F. and Erulkar, S. D (1976). Synaptic transmission and effects of temperature at the squid giant synapse. Nature 261, 720-.[Medline]

Westerfield, M., Joyner, R. W. and Moore, J. W (1978). Temperature sensitive conduction failure at axonal branch points. J. Neurophysiol 41, 1-.[Abstract/Free Full Text]

Wilson, D. M (1960). Nervous control of movement in cephalopods. J. Exp. Biol 37, 57-.[Abstract]

Young, J. Z (1938). The functioning of the giant nerve fibres of the squid. J. Exp. Biol 15, 150-.

Young, J. Z (1939). Fused neurons and synaptic contacts in the giant nerve fibres of cephalopods. Phil. Trans. R. Soc. Lond. B 229, 465-.




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