Intersegmental coordination: influence of a single walking leg on the neighboring segments in the stick insect walking system.
暂无分享,去创建一个
[1] J. Redtenbacher,et al. Die Insektenfamilie der Phasmiden , 1908 .
[2] C. Wiersma,et al. INTERNEURONS COMMANDING SWIMMERET MOVEMENTS IN THE CRAYFISH, PROCAMBARUS CLARKI (GIRARD). , 1964, Comparative biochemistry and physiology.
[3] M. L. Shik,et al. [Organization of locomotor synergism]. , 1966, Biofizika.
[4] Shik Ml,et al. Organization of locomotor synergism , 1966 .
[5] C. L. Hambltn. Starting and Stopping , 1969 .
[6] W. Davis,et al. Command interneurons controlling swimmeret movements in the lobster. II. Interaction of effects on motoneurons. , 1972, Journal of neurophysiology.
[7] W. Davis,et al. Command interneurons controlling swimmeret movements in the lobster. 3. Temporal relationship among bursts in different motoneurons. , 1972, Journal of neurophysiology.
[8] W. Davis,et al. Command interneurons controlling swimmeret movements in the lobster. I. Types of effects on motoneurons. , 1972, Journal of neurophysiology.
[9] James L. Larimer,et al. Command Fibres in the Circumoesophageal Connectives of Crayfish , 1974 .
[10] S. Grillner,et al. How detailed is the central pattern generation for locomotion? , 1975, Brain Research.
[11] Douglas G. Stuart,et al. Neural Control of Locomotion , 1976, Advances in Behavioral Biology.
[12] J. L. Larimer. Command Interneurons and Locomotor Behavior in Crustaceans , 1976 .
[13] J V Wait,et al. Kinematics of locomotion by cats with a single hindlimb deafferented. , 1976, Journal of neurophysiology.
[14] S. Grillner,et al. Phasic gain control of the transmission in cutaneous reflex pathways to motoneurones during ‘fictive’ locomotion , 1978, Brain Research.
[15] Holk Cruse. Modellvorstellungen zu Bewußtseinsvorgängen , 1979 .
[16] U. Bässler. Interaction of central and peripheral mechanisms during walking in first instar stick insects, Extatosoma tiaratum , 1979 .
[17] G. Wendler,et al. Motor output to the protractor and retractor coxae muscles in stick insects walking on a treadwheel , 1981 .
[18] 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.
[19] S. Grillner. Control of Locomotion in Bipeds, Tetrapods, and Fish , 1981 .
[20] E. Batschelet. Circular statistics in biology , 1981 .
[21] H. Cruse,et al. COORDINATED WALKING OF STICK INSECTS ON A MERCURY SURFACE , 1981 .
[22] A. Prochazka,et al. Muscle Receptors and Movement , 1981, Palgrave Macmillan UK.
[23] J. C. Weeks. Neuronal basis of leech swimming: separation of swim initiation, pattern generation, and intersegmental coordination by selective lesions. , 1981, Journal of neurophysiology.
[24] S. Rossignol,et al. State-dependent responses during locomotion , 1981 .
[25] S. Grillner,et al. Activation of NMDA-receptors elicits "fictive locomotion" in lamprey spinal cord in vitro. , 1981, Acta physiologica Scandinavica.
[26] D. Graham,et al. Behaviour and Motor Output of Stick Insects Walking on a Slippery Surface: I. Forward Walking , 1983 .
[27] S. Grillner,et al. Peripheral control of the cat's step cycle. II. Entrainment of the central pattern generators for locomotion by sinusoidal hip movements during "fictive locomotion.". , 1983, Acta physiologica Scandinavica.
[28] U. Bässler,et al. Motor Output of the Denervated Thoracic Ventral Nerve Cord in the Stick Insect Carausius Morosus , 1983 .
[29] Professor Dr. Ulrich Bässler. Neural Basis of Elementary Behavior in Stick Insects , 1983, Studies of Brain Function.
[30] J. Kien,et al. Intra- and intersegmental pathways active during walking in the locust , 1983, Proceedings of the Royal Society of London. Series B. Biological Sciences.
[31] J. Dean,et al. Stick Insect Locomotion on a Walking Wheel: Interleg Coordination of Leg Position , 1983 .
[32] A. Roberts,et al. Excitatory amino acid receptors in Xenopus embryo spinal cord and their role in the activation of swimming. , 1984, The Journal of physiology.
[33] S. Grillner,et al. Activation of ‘fictive swimming’ by electrical microstimulation of brainstem locomotor regions in an in vitro preparation of the lamprey central nervous system , 1984, Brain Research.
[34] M. Gladden,et al. Feedback and Motor Control in Invertebrates and Vertebrates , 1985, Springer Netherlands.
[35] Ulrich Bässler,et al. THE INHERENT WALKING DIRECTION DIFFERS FOR THE PROTHORACIC AND METATHORACIC LEGS OF STICK INSECTS , 1985 .
[36] D. Graham,et al. Behaviour and Motor Output for an Insect Walking on a Slippery Surface: II. Backward Walking , 1985 .
[37] D. Graham. Pattern and Control of Walking in Insects , 1985 .
[38] H. Cruse. Which parameters control the leg movement of a walking insect? II: The start of the swing phase , 1985 .
[39] F. Clarac,et al. Stepping Reflexes and The Sensory Control of Walking in Crustacea , 1985 .
[40] F. Wo,et al. Initiation of swimming activity by trigger neurons in the leech subesophageal ganglion: III. Sensory inputs to Tr1 and Tr2 , 1986 .
[41] S. Grillner,et al. Reticulospinal neurons in lamprey: transmitters, synaptic interactions and their role during locomotion. , 1988, Archives italiennes de biologie.
[42] H. Cruse,et al. Mechanisms of coupling between the ipsilateral legs of a walking insect (Carausius morosus) , 1988 .
[43] J. Dean. Leg coordination in the stick insect Carausius morosus: effects of cutting thoracic connectives , 1989 .
[44] Ulrich Bässler. Pattern Generation for Walking Movements , 1989 .
[45] J. Kien. Neuronal activity during spontaneous walking--I. Starting and stopping. , 1990, Comparative biochemistry and physiology. A, Comparative physiology.
[46] V. Reggie Edgerton,et al. Neurobiological basis of human locomotion , 1991 .
[47] J. Schmitz,et al. Nonspiking pathways antagonize the resistance reflex in the thoraco-coxal joint of stick insects. , 1991, Journal of neurobiology.
[48] M. Taussig. The Nervous System , 1991 .
[49] J. Schmitz,et al. Oil and hook electrodes for en passant recordings from small nerves. , 1991 .
[50] F. Clarac,et al. Direct evidence for presynaptic inhibitory mechanisms in crayfish sensory afferents. , 1992, Journal of neurophysiology.
[51] M J Tunstall,et al. A longitudinal gradient of synaptic drive in the spinal cord of Xenopus embryos and its role in co‐ordination of swimming. , 1994, The Journal of physiology.
[52] Y. Arshavsky,et al. Control of locomotion in marine mollusk Clione Limacina. IX. Neuronal mechanisms of spatial orientation. , 1995, Journal of neurophysiology.
[53] H. Cruse,et al. Movement of Joint Angles in the Legs of a Walking Insect, Carausius morosus , 1995 .
[54] R. Satterlie,et al. Serotonergic modulation of swimming speed in the pteropod mollusc Clione limacina. III. Cerebral neurons. , 1995, The Journal of experimental biology.
[55] J. Schmitz,et al. Rhythmic patterns in the thoracic nerve cord of the stick insect induced by pilocarpine , 1995, The Journal of experimental biology.
[56] Wie lassen sich Beinbewegungen von Tieren registrieren und was kann man daraus lernen , 1995 .
[57] T G Deliagina,et al. Control of locomotion in marine mollusk Clione limacina. VIII. Cerebropedal neurons. , 1995, Journal of neurophysiology.
[58] R. Satterlie,et al. Cerebral serotonergic neurons reciprocally modulate swim and withdrawal neural networks in the mollusk Clione limacina. , 1996, Journal of neurophysiology.
[59] R. Dubuc,et al. Role of sensory-evoked NMDA plateau potentials in the initiation of locomotion. , 1997, Science.
[60] S. Grillner,et al. Locomotor‐Related Presynaptic Modulation of Primary Afferents in the Lamprey , 1997, The European journal of neuroscience.
[61] U. Bässler,et al. Pattern generation for stick insect walking movements—multisensory control of a locomotor program , 1998, Brain Research Reviews.
[62] Thomas Kindermann,et al. Walknet--a biologically inspired network to control six-legged walking , 1998, Neural Networks.
[63] S. Grillner,et al. Neuronal Control of LocomotionFrom Mollusc to Man , 1999 .
[64] W. L. Miller,et al. Extent and role of multisegmental coupling in the Lamprey spinal locomotor pattern generator. , 2000, Journal of neurophysiology.
[65] J Schmidt,et al. Pattern generation for walking and searching movements of a stick insect leg. I. Coordination of motor activity. , 2001, Journal of neurophysiology.
[66] A. El Manira,et al. Presynaptic Inhibition and Antidromic Spikes in Primary Afferents of the Crayfish: A Computational and Experimental Analysis , 2001, The Journal of Neuroscience.
[67] Brian Mulloney,et al. Limb Movements during Locomotion: Tests of a Model of an Intersegmental Coordinating Circuit , 2001, The Journal of Neuroscience.
[68] A. Cohen,et al. Bending the lamprey spinal cord causes a slowly-decaying increase in the frequency of fictive swimming , 2001, Brain Research.
[69] K. Pearson,et al. The role of proprioceptive feedback in the regulation and adaptation of locomotor activity. , 2002, Advances in experimental medicine and biology.
[70] A. Büschges,et al. Control of flexor motoneuron activity during single leg walking of the stick insect on an electronically controlled treadwheel. , 2003, Journal of neurobiology.
[71] D. Weidler,et al. The role of cations in conduction in the central nervous system of the herbivorous insect Carausius morosus , 1969, Zeitschrift für vergleichende Physiologie.
[72] H. Cruse,et al. Behaviour-based modelling of hexapod locomotion: linking biology and technical application. , 2004, Arthropod structure & development.
[73] U. Bässler,et al. Leg movements of stick insects walking with five legs on a treadwheel and with one leg on a motor-driven belt , 1985, Biological Cybernetics.
[74] W. Otto Friesen,et al. Initiation of swimming activity by trigger neurons in the leech subesophageal ganglion , 1986, Journal of Comparative Physiology A.
[75] U. Bässler,et al. Leg movements of stick insects walking with five legs on a treadwheel and with one leg on a motor-driven belt , 1985, Biological Cybernetics.
[76] B. Conway,et al. Proprioceptive input resets central locomotor rhythm in the spinal cat , 2004, Experimental Brain Research.
[77] P. Wallén,et al. The neuronal correlate of locomotion in fish , 1980, Experimental Brain Research.
[78] G. Wendler. Laufen und Stehen der Stabheuschrecke Carausius morosus: Sinnesborstenfelder in den Beingelenken als Glieder von Regelkreisen , 1964, Zeitschrift für vergleichende Physiologie.
[79] W. O. Friesen,et al. Intracellular stimulation of sensory cells elicits swimming activity in the medicinal leech , 1987, Journal of Comparative Physiology A.
[80] H. Cruse,et al. A quantitative model of walking incorporating central and peripheral influences , 1980, Biological Cybernetics.
[81] A. Büschges,et al. Synaptic drive contributing to rhythmic activation of motoneurons in the deafferented stick insect walking system , 2004, The European journal of neuroscience.
[82] H. Cruse. The influence of load and leg amputation upon coordination in walking crustaceans: A model calculation , 1983, Biological Cybernetics.
[83] F. Delcomyn,et al. Walking in the American cockroach: the timing of motor activity in the legs during straight walking , 1989, Biological Cybernetics.
[84] M. P. Nusbaum,et al. Mechanosensory Activation of a Motor Circuit by Coactivation of Two Projection Neurons , 2004, The Journal of Neuroscience.
[85] D. Graham. Effects of circum-oesophageal lesion on the behaviour of the stick insect Carausius morosus , 1979, Biological Cybernetics.
[86] W. O. Friesen,et al. Initiation of swimming activity by trigger neurons in the leech subesophageal ganglion , 1986, Journal of Comparative Physiology A.
[87] A. Büschges. Sensory control and organization of neural networks mediating coordination of multisegmental organs for locomotion. , 2005, Journal of neurophysiology.
[88] Joachim Schmidt,et al. Intersegmental coordination of walking movements in stick insects. , 2005, Journal of neurophysiology.
[89] Brian Mulloney,et al. Intersegmental coordination of swimmeret rhythms in isolated nerve cords of crayfish , 1986, Journal of Comparative Physiology A.
[90] A. Büschges,et al. Modulation of membrane potential in mesothoracic moto- and interneurons during stick insect front-leg walking. , 2005, Journal of neurophysiology.
[91] E. Zehr,et al. Rhythmic leg cycling modulates forearm muscle H-reflex amplitude and corticospinal tract excitability , 2007, Neuroscience Letters.