Features of entrainment of spinal pattern generators for locomotor activity in the lamprey spinal cord
暂无分享,去创建一个
[1] S. Grillner,et al. Entrainment of the spinal pattern generators for swimming by mechano-sensitive elements in the lamprey spinal cord in vitro , 1981, Brain Research.
[2] C. Rovainen. Effects of groups of propriospinal interneurons on fictive swimming in the isolated spinal cord of the lamprey. , 1985, Journal of neurophysiology.
[3] G. P. Moore,et al. Pacemaker Neurons: Effects of Regularly Spaced Synaptic Input , 1964, Science.
[4] P. Wallén,et al. Fictive locomotion in the lamprey spinal cord in vitro compared with swimming in the intact and spinal animal. , 1984, The Journal of physiology.
[5] S. Grillner,et al. Phasic gain control of the transmission in cutaneous reflex pathways to motoneurones during ‘fictive’ locomotion , 1978, Brain Research.
[6] E. Marder,et al. A mechanism for production of phase shifts in a pattern generator. , 1984, Journal of neurophysiology.
[7] E L Peterson,et al. Dynamic analysis of a rhythmic neural circuit in the leech Hirudo medicinalis. , 1982, Journal of neurophysiology.
[8] J. Duysens. Reflex control of locomotion as revealed by stimulation of cutaneous afferents in spontaneously walking premammillary cats. , 1977, Journal of neurophysiology.
[9] G. P. Moore,et al. PACEMAKER NEURONS: EFFECTS OF REGULARLY SPACED SYNAPTIC INPUT. , 1964, Science.
[10] K. Pearson,et al. Phase-dependent influences of wing stretch receptors on flight rhythm in the locust. , 1983, Journal of neurophysiology.
[11] F. Delcomyn. Neural basis of rhythmic behavior in animals. , 1980, Science.
[12] H. Pinsker. Aplysia bursting neurons as endogenous oscillators. II. Synchronization and entrainment by pulsed inhibitory synaptic input. , 1977, Journal of neurophysiology.
[13] H. Pinsker. Aplysia bursting neurons as endogenous oscillators. I. Phase-response curves for pulsed inhibitory synaptic input. , 1977, Journal of neurophysiology.
[14] M. Selzer,et al. Projections of lamprey spinal neurons determined by the retrograde axonal transport of horseradish peroxidase , 1979, The Journal of comparative neurology.
[15] S. Grillner,et al. Initiation and sensory gating of ‘fictive’ swimming and withdrawal responses in an in vitro preparation of the lamprey spinal cord , 1983, Brain Research.
[16] D. M. Schroeder,et al. Is the intimate relationship between ligaments and marginal specialized cells in the snake's spinal cord indicative of a CNS mechanoreceptor? , 1985, Brain Research.
[17] S. Grillner,et al. On peripheral control mechanisms acting on the central pattern generators for swimming in the dogfish. , 1982, The Journal of experimental biology.
[18] A. McClellan. Descending control and sensory gating of ‘fictive’ swimming and turning responses elicited in an in vitro preparation of the lamprey brainstem/spinal cord , 1984, Brain Research.
[19] S. Grillner,et al. Activation of NMDA-receptors elicits "fictive locomotion" in lamprey spinal cord in vitro. , 1981, Acta physiologica Scandinavica.
[20] S. Grillner,et al. N-methyl-d-aspartate (NMDA), kainate and quisqualate receptors and the generation of fictive locomotion in the lamprey spinal cord , 1985, Brain Research.
[21] P. Wallén,et al. The effect of current passage on N-methyl-d-aspartate-induced, tetrodotoxin-resistant membrane potential oscillations in lamprey neurons active during locomotion , 1985, Neuroscience Letters.
[22] C. Rovainen. Synaptic interactions of identified nerve cells in the spinal cord of the sea lamprey , 1974, The Journal of comparative neurology.
[23] W. Wickelgren,et al. Sensory cells in the spinal cord of the sea lamprey , 1971, The Journal of physiology.
[24] S. Grillner,et al. Peripheral feedback mechanisms acting on the central pattern generators for locomotion in fish and cat. , 1981, Canadian journal of physiology and pharmacology.
[25] M. Selzer. Variability in maps of identified neurons in the sea Lamprey spinal cord examined by a wholemount technique , 1979, Brain Research.
[26] K. Pearson,et al. Interneurons in the flight system of the locust: Distribution, connections, and resetting properties , 1983, The Journal of comparative neurology.
[27] S. Grillner,et al. Mechanosensitive neurons in the spinal cord of the lamprey , 1982, Brain Research.
[28] S. Grillner,et al. Activation of NMDA receptors elecits fictive locomotion and bistable membrane properties in the lamprey spinal cord , 1985, Brain Research.
[29] C. Wiersma,et al. AUTOGENIC RHYTHMICITY IN THE ABDOMINAL GANGLIA OF THE CRAYFISH: THE CONTROL OF SWIMMERET MOVEMENTS. , 1964, Comparative biochemistry and physiology.
[30] S. Grillner,et al. The edge cell, a possible intraspinal mechanoreceptor. , 1984, Science.
[31] S. Grillner. Neurobiological bases of rhythmic motor acts in vertebrates. , 1985, Science.
[32] P. Wallén,et al. The Role of Movement-Related Feedback in The Control of Locomotion in Fish and Lamprey , 1985 .
[33] S. Grillner,et al. How does the Lamprey Central Nervous System make the Lamprey Swim , 1984 .
[34] R. Young,et al. PHASE CO-ORDINATION IN THE CARDIAC AND VENTILATORY RHYTHMS OF THE LOBSTER HOMARUS AMERICANUS , 1979 .
[35] P. Stein. Mechanisms of Interlimb Phase Control , 1976 .
[36] R. Robertson,et al. Control of rhythmic behaviour by a hierarchy of linked oscillators in crustacea , 1981, Neuroscience Letters.
[37] P. Stein. Intersegmental coordination of swimmeret motoneuron activity in crayfish. , 1971, Journal of neurophysiology.