Pattern generation for walking and searching movements of a stick insect leg. I. Coordination of motor activity.
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J Schmidt | H Fischer | R Haas | A Büschges | A. Büschges | Joachim Schmidt | H. Fischer | J. Schmidt | R. Haas | Hanno Fischer | Roman Haas
[1] F. Plum. Handbook of Physiology. , 1960 .
[2] P. Usherwood,et al. Tarsal Receptors and Leg Reflexes in the Locust and GRASSHOPPER , 1968 .
[3] M. Burns. THE CONTROL OF WALKING IN ORTHOPTERA I. LEG MOVEMENTS IN NORMAL WALKING , 1973 .
[4] F. Delcomyn,et al. Motor Activity During Walking in the Cockroach Periplaneta Americana : II. Tethered Walking , 1973 .
[5] Douglas G. Stuart,et al. Neural Control of Locomotion , 1976, Advances in Behavioral Biology.
[6] S. Reingold,et al. A quantitative analysis of rhythmic leg movements during three different behaviors in the cockroach, Periplaneta americana , 1977 .
[7] C. R. Fourtner,et al. Locomotory activity in the extensor and flexor tibiae of the cockroach, Periplaneta americana , 1978 .
[8] G. Wendler,et al. Motor output to the protractor and retractor coxae muscles in stick insects walking on a treadwheel , 1981 .
[9] E. Batschelet. Circular statistics in biology , 1981 .
[10] S. Zill,et al. THE EXOSKELETON AND INSECT PROPRIOCEPTION. I. RESPONSES OF TIBIAL CAMPANIFORM SENSILLA TO EXTERNAL AND MUSCLE-GENERATED FORCES IN THE AMERICAN COCKROACH, PERIPLANETA AMERICANA , 1981 .
[11] U. Bässler,et al. EFFECTS OF AFFERENCE SIGN REVERSAL ON MOTOR ACTIVITY IN WALKING STICK INSECTS (CARAUSIUS MOROSUS) , 1981 .
[12] Professor Dr. Ulrich Bässler. Neural Basis of Elementary Behavior in Stick Insects , 1983, Studies of Brain Function.
[13] J. Dean,et al. Stick Insect Locomotion on a Walking Wheel: Interleg Coordination of Leg Position , 1983 .
[14] J. Dean,et al. Stick Insect Locomotion on a Wheel: Patterns Of Stopping And Starting , 1984 .
[15] K. Pearson,et al. Characteristics of Leg Movements and Patterns of Coordination in Locusts Walking on Rough Terrain , 1984 .
[16] D. Graham,et al. A preparation of the stick insect Carausius morosus for recording intracellularly from identified neurones during walking , 1984 .
[17] D. Graham,et al. Behaviour and Motor Output for an Insect Walking on a Slippery Surface: II. Backward Walking , 1985 .
[18] D. Graham. Pattern and Control of Walking in Insects , 1985 .
[19] U. Bässler,et al. Motoneurone im Meso- und Metathorakalganglion der Stabheuschrecke Carausius morosus , 1986 .
[20] U. Bässler,et al. A BIOLOGICAL FEEDBACK CONTROL SYSTEM WITH ELECTRONIC INPUT: THE ARTIFICIALLY CLOSED FEMUR-TIBIA CONTROL SYSTEM OF STICK INSECTS , 1986 .
[21] U. Bässler. Functional principles of pattern generation for walking movements of stick insect forelegs: the role of the femoral chordotonal organ afferences , 1988 .
[22] J. Schmitz,et al. An improved electrode design for en passant recording from small nerves. , 1988, Comparative biochemistry and physiology. A, Comparative physiology.
[23] U. Bässler,et al. Motor neurones of the flexor tibiae muscle in phasmids , 1989 .
[24] J. Schmitz,et al. THE TREADING-ON-TARSUS REFLEX IN STICK INSECTS: PHASE-DEPENDENCE AND MODIFICATIONS OF THE MOTOR OUTPUT DURING WALKING , 1989 .
[25] A. Büschges. Processing of sensory input from the femoral chordotonal organ by spiking interneurones of stick insects , 1989 .
[26] H. Cruse,et al. Coupling Mechanisms Between the Contralateral Legs of a Walking Insect (Carausius Morosus) , 1989 .
[27] A. Chrachri,et al. Fictive locomotion in the fourth thoracic ganglion of the crayfish, Procambarus clarkii , 1990, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[28] H. Cruse. What mechanisms coordinate leg movement in walking arthropods? , 1990, Trends in Neurosciences.
[29] F. Clarac,et al. Monosynaptic Interjoint Reflexes and their Central Modulation During Fictive Locomotion in Crayfish , 1991, The European journal of neuroscience.
[30] U. Bassler,et al. Function of a Muscle Whose Apodeme Travels Through a Joint Moved by Other Muscles: Why the Retractor Unguis Muscle in Stick Insects is Tripartite and has no Antagonist , 1991 .
[31] M. Taussig. The Nervous System , 1991 .
[32] J. Dean,et al. The two groups of sensilla in the ventral coxal hairplate of Carausius morosus have different roles during walking , 1992 .
[33] S. Ryckebusch,et al. Rhythmic patterns evoked in locust leg motor neurons by the muscarinic agonist pilocarpine. , 1993, Journal of neurophysiology.
[34] K. Pearson. Common principles of motor control in vertebrates and invertebrates. , 1993, Annual review of neuroscience.
[35] J. Schmitz. LOAD-COMPENSATING REACTIONS IN THE PROXIMAL LEG JOINTS OF STICK INSECTS DURING STANDING AND WALKING , 1993 .
[36] U. Bässler. The femur-tibia control system of stick insects — a model system for the study of the neural basis of joint control , 1993, Brain Research Reviews.
[37] H. Cruse,et al. Adaptive properties of "hard-wired" neuronal systems , 1995 .
[38] H. Pflüger,et al. Motor patterns for horizontal and upside down walking and vertical climbing in the locust , 1995, The Journal of experimental biology.
[39] K. Pearson. Proprioceptive regulation of locomotion , 1995, Current Opinion in Neurobiology.
[40] J. Schmitz,et al. Rhythmic patterns in the thoracic nerve cord of the stick insect induced by pilocarpine , 1995, The Journal of experimental biology.
[41] Thomas Kindermann,et al. Walking: A Complex Behavior Controlled by Simple Networks , 1995, Adapt. Behav..
[42] P. Katz. Neurons, Networks, and Motor Behavior , 1996, Neuron.
[43] R. Levine,et al. Crawling motor patterns induced by pilocarpine in isolated larval nerve cords of Manduca sexta. , 1996, Journal of neurophysiology.
[44] A. Büschges,et al. Sensorimotor pathways involved in interjoint reflex action of an insect leg. , 1997, Journal of neurobiology.
[45] J. T. Watson,et al. Leg kinematics and muscle activity during treadmill running in the cockroach, Blaberus discoidalis: II. Fast running , 1997, Journal of Comparative Physiology A.
[46] J. T. Watson,et al. Leg kinematics and muscle activity during treadmill running in the cockroach, Blaberus discoidalis : I. Slow running , 1997, Journal of Comparative Physiology A.
[47] A. Büschges,et al. Sensory pathways and their modulation in the control of locomotion , 1998, Current Opinion in Neurobiology.
[48] U. Bässler,et al. Pattern generation for stick insect walking movements—multisensory control of a locomotor program , 1998, Brain Research Reviews.
[49] V. Dürr. Spatial searching strategies of the stick insect, using antennae and front legs , 1999 .
[50] S. Grillner,et al. Neuronal Control of LocomotionFrom Mollusc to Man , 1999 .
[51] A. Büschges,et al. Role of proprioceptive signals from an insect femur-tibia joint in patterning motoneuronal activity of an adjacent leg joint. , 1999, Journal of neurophysiology.
[52] A K Tryba,et al. Multi-joint coordination during walking and foothold searching in the Blaberus cockroach. I. Kinematics and electromyograms. , 2000, Journal of neurophysiology.
[53] A K Tryba,et al. Multi-joint coordination during walking and foothold searching in the Blaberus cockroach. II. Extensor motor neuron pattern. , 2000, Journal of neurophysiology.
[54] Ansgar Büschges,et al. Flexibility of a Proprioceptive Feedback System Results from its “Parliamentary” (Distributed) Organization , 2000 .
[55] S. Zill,et al. Encoding of forces by cockroach tibial campaniform sensilla: implications in dynamic control of posture and locomotion , 2000, Journal of Comparative Physiology A.
[56] A. Büschges,et al. Pattern generation for walking and searching movements of a stick insect leg. II. Control of motoneuronal activity. , 2001, Journal of neurophysiology.
[57] D. Graham,et al. Influence of loading parallel to the body axis on the walking coordination of an insect , 1983, Biological Cybernetics.