The neural control of interlimb coordination during mammalian locomotion.
暂无分享,去创建一个
[1] C. Sherrington. Flexion‐reflex of the limb, crossed extension‐reflex, and reflex stepping and standing , 1910, The Journal of physiology.
[2] T. Brown. The intrinsic factors in the act of progression in the mammal , 1911 .
[3] T. Brown. On the nature of the fundamental activity of the nervous centres; together with an analysis of the conditioning of rhythmic activity in progression, and a theory of the evolution of function in the nervous system , 1914, The Journal of physiology.
[4] D. P. Lloyd,et al. Analysis of forelimb-hindlimb reflex activity in acutely decapitate cats. , 1948, Journal of neurophysiology.
[5] B. Gernandt,et al. Mechanisms of interlimb reflexes in cat. , 1961, Journal of neurophysiology.
[6] F BUCHTHAL,et al. THE PATTERN OF MUSCULAR ACTIVITY DURING THE ARM SWING OF NATURAL WALKING. , 1965, Acta physiologica Scandinavica.
[7] M Hildebrand,et al. Symmetrical gaits of horses. , 1965, Science.
[8] Shik Ml,et al. Control of walking and running by means of electric stimulation of the midbrain , 1966 .
[9] A. Lundberg,et al. The effect of DOPA on the spinal cord. 6. Half-centre organization of interneurones transmitting effects from the flexor reflex afferents. , 1967, Acta physiologica Scandinavica.
[10] A. Lundberg,et al. The effect of DOPA on the spinal cord. 5. Reciprocal organization of pathways transmitting excitatory action to alpha motoneurones of flexors and extensors. , 1967, Acta physiologica Scandinavica.
[11] M. Hildebrand. Symmetrical gaits of primates , 1967 .
[12] P Sterling,et al. Anatomical organization of the brachial spinal cord of the cat. 3. The propriospinal connections. , 1968, Brain research.
[13] A. Lundberg,et al. Inhibitory effects evoked through ventral reticulospinal pathways. , 1968, Archives italiennes de biologie.
[14] S. Grillner,et al. Reciprocal effects between two descending bulbospinal systems with monosynaptic connections to spinal motoneurones. , 1968, Brain research.
[15] H. Kuypers,et al. Propriospinal fibers interconnecting the spinal enlargements in the cat. , 1969, Brain research.
[16] D. Stuart,et al. Propriospinal control of last order interneurones of spinal reflex pathways in the cat. , 1973, Brain research.
[17] S. Miller,et al. Functional organization of long ascending propriospinal pathways linking lumbo-sacral and cervical segments in the cat. , 1973, Brain research.
[18] T. Ueyama,et al. Ventral motor nucleus of the cervical enlargement in some mammals; its specific afferents from the lower cord levels and cytoarchitecture , 1973, The Journal of comparative neurology.
[19] Milton Hildebrand,et al. Analysis of Tetrapod Gaits: General Considerations and Symmetrical Gaits , 1976 .
[20] Richard M. Herman,et al. Human Solutions for Locomotion II. Interlimb Coordination , 1976 .
[21] S. Miller,et al. Coordinated stepping of all four limbs in the high spinal cat , 1976, Brain Research.
[22] E. Schomburg,et al. Phase-dependent transmission in the excitatory propriospinal reflex pathway from forelimb afferents to lumbar motoneurones during fictive locomotion , 1977, Neuroscience Letters.
[23] S. Miller,et al. Reversal of sign of long spinal reflexes dependent on the phase of the step cycle in the high decerebrate cat , 1977, Brain Research.
[24] H. Kuypers,et al. Cells of origin of propriospinal fibers and of fibers ascending to supraspinal levels. A HRP study in cat and rhesus monkey , 1978, Brain Research.
[25] D. Viala,et al. Evidence for distinct spinal locomotion generators supplying respectively fore- and hindlimbs in the rabbit , 1978, Brain Research.
[26] E. Schomburg,et al. Functional organization of the spinal reflex pathways from forelimb afferents to hindlimb motoneurones in the cat , 1978, Brain Research.
[27] S. Grillner,et al. Phasic gain control of the transmission in cutaneous reflex pathways to motoneurones during ‘fictive’ locomotion , 1978, Brain Research.
[28] I. M. Gelfand,et al. Messages conveyed by spinocerebellar pathways during scratching in the cat. I. Activity of neurons of the lateral reticular nucleus , 1978, Brain Research.
[29] B W Peterson,et al. Reticulospinal projections to spinal motor nuclei. , 1979, Annual review of physiology.
[30] G. Holstege,et al. Anatomical evidence for direct brain stem projections to the somatic motoneuronal cell groups and autonomic preganglionic cell groups in cat spinal cord , 1979, Brain Research.
[31] Y. Hosoya,et al. The location of spinal neurons with long descending axons (long descending propriospinal tract neurons) in the cat: A study with the horseradish peroxidase technique , 1979, The Journal of comparative neurology.
[32] R. Skinner,et al. Cells of origin of long descending propriospinal fibers connecting the spinal enlargements in cat and monkey determined by horseradish peroxidase and electrophysiological techniques , 1979, The Journal of comparative neurology.
[33] R. Kearney,et al. Reflex response of human arm muscles to cutaneous stimulation of the foot , 1979, Brain Research.
[34] R. Skinner,et al. Responses of long descending propriospinal neurons to natural and electrical types of stimuli in cat , 1980, Brain Research.
[35] S. Rossignol,et al. The locomotion of the low spinal cat. II. Interlimb coordination. , 1980, Acta physiologica Scandinavica.
[36] A. English. Interlimb coordination during stepping in the cat: effects of dorsal column section. , 1980, Journal of neurophysiology.
[37] P. Zangger. The effect of 4-aminopyridine on the spinal locomotor rhythm induced byl-DOPA , 1981, Brain Research.
[38] G. Martin,et al. Evidence for collateral innervation of the cervical and lumbar enlargements of the spinal cord by single reticular and raphe neurons. Studies using fluorescent markers in double-labeling experiments on the North American opossum , 1981, Neuroscience Letters.
[39] R. Kearney,et al. Interlimb reflexes evoked in human arm muscles by ankle displacement. , 1981, Electroencephalography and clinical neurophysiology.
[40] P. Delwaide,et al. Cutaneous nerve stimulation and motoneuronal excitability. II: Evidence for non-segmental influences. , 1984, Journal of neurology, neurosurgery, and psychiatry.
[41] S. Rossignol,et al. Phase-dependent responses evoked in limb muscles by stimulation of medullary reticular formation during locomotion in thalamic cats. , 1984, Journal of neurophysiology.
[42] Kazunori Yasuda,et al. Disruption of fore- and hindlimb coordination during overground locomotion in cats with bilateral serial hemisection of the spinal cord , 1984, Neuroscience Research.
[43] A. English. Interlimb coordination during stepping in the cat: The role of the dorsal spinocerebellar tract , 1985, Experimental Neurology.
[44] P. R. Lennard,et al. Anatomical organization of long ascending propriospinal neurons in the cat spinal cord , 1985, The Journal of comparative neurology.
[45] Y. Arshavsky,et al. Activity of C3-C4 propriospinal neurons during fictitious forelimb locomotion in the cat , 1986, Brain Research.
[46] E. Schomburg,et al. Functional organization of the spinal reflex pathways from forelimb afferents to hindlimb motoneurons in the cat. II. Conditions of the interneuronal connections , 1986, Brain Research.
[47] S. Sasaki,et al. Long C3-C5 propriospinal neurones in the cat , 1987, Brain Research.
[48] N. Kudo,et al. N-Methyl-d,l-aspartate-induced locomotor activity in a spinal cord-indlimb muscles preparation of the newborn rat studied in vitro , 1987, Neuroscience Letters.
[49] J. Vilensky,et al. PRIMATE LOCOMOTION: Utilization and Control of Symmetrical Gaits , 1989 .
[50] M. Hildebrand. The quadrupedal gaits of vertebrates , 1989 .
[51] Masamichi Kato. Chronically isolated lumbar half spinal cord generates locomotor activities in the ipsilateral hindlimb of the cat , 1990, Neuroscience Research.
[52] M. Illert,et al. Efferent Pattern of Fictive Locomotion in the Cat Forelimb: with Special Reference to Radial Motor Nuclei , 1990, The European journal of neuroscience.
[53] D. Stelzner,et al. Do propriospinal projections contribute to hindlimb recovery when all long tracts are cut in neonatal or weanling rats? , 1991, Experimental Neurology.
[54] T. Drew. Functional organization within the medullary reticular formation of the intact unanesthetized cat. III. Microstimulation during locomotion. , 1991, Journal of neurophysiology.
[55] K. Pearson,et al. Fictive motor patterns in chronic spinal cats. , 1991, Journal of neurophysiology.
[56] B. Conway,et al. Spinal locomotor activity in acutely spinalized cats induced by intrathecal application of noradrenaline , 1992, Neuroscience Letters.
[57] F. Clarac,et al. Activation of the central pattern generators for locomotion by serotonin and excitatory amino acids in neonatal rat. , 1992, The Journal of physiology.
[58] E. Jankowska. Interneuronal relay in spinal pathways from proprioceptors , 1992, Progress in Neurobiology.
[59] K. Pearson,et al. Intralimb and interlimb coordination in the cat during real and fictive rhythmic motor programs , 1993 .
[60] B. Schmidt,et al. A comparison of motor patterns induced by N-methyl-d-aspartate , acetylcholine and serotonin in the in vitro neonatal rat spinal cord , 1994, Neuroscience Letters.
[61] H Barbeau,et al. The effects of parallel bars, body weight support and speed on the modulation of the locomotor pattern of spastic paretic gait. A preliminary communication , 1994, Paraplegia.
[62] S. Rossignol,et al. Microstimulation of the medullary reticular formation during fictive locomotion. , 1994, Journal of neurophysiology.
[63] F. Clarac,et al. Localization and organization of the central pattern generator for hindlimb locomotion in newborn rat , 1995, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[64] D. Basso,et al. A sensitive and reliable locomotor rating scale for open field testing in rats. , 1995, Journal of neurotrauma.
[65] J. Broton,et al. Central nervous system plasticity after spinal cord injury in man: interlimb reflexes and the influence of cutaneous stimulation. , 1996, Electroencephalography and clinical neurophysiology.
[66] T. Bem,et al. Different forms of impairment of the fore-hindlimb coordination after partial spinal lesions in cats. , 1996, Acta neurobiologiae experimentalis.
[67] O. Kiehn,et al. Spatiotemporal characteristics of 5-HT and dopamine-induced rhythmic hindlimb activity in the in vitro neonatal rat. , 1996, Journal of neurophysiology.
[68] P. Nathan,et al. Vestibulospinal, reticulospinal and descending propriospinal nerve fibres in man. , 1996, Brain : a journal of neurology.
[69] T. Drew,et al. Effects of bilateral lesions of the dorsolateral funiculi and dorsal columns at the level of the low thoracic spinal cord on the control of locomotion in the adult cat. I. Treadmill walking. , 1996, Journal of neurophysiology.
[70] O Kiehn,et al. Distribution of Networks Generating and Coordinating Locomotor Activity in the Neonatal Rat Spinal Cord In Vitro: A Lesion Study , 1996, The Journal of Neuroscience.
[71] B. Schmidt,et al. Regional distribution of the locomotor pattern-generating network in the neonatal rat spinal cord. , 1997, Journal of neurophysiology.
[72] J. Nielsen,et al. Pharmacologically evoked fictive motor patterns in the acutely spinalized marmoset monkey (Callithrix jacchus) , 1998, Experimental Brain Research.
[73] V. D. Douglas,et al. Propriospinal neurons in the C1-C2 spinal segments project to the L5-S1 segments of the rat spinal cord , 1998, Brain Research Bulletin.
[74] S. Rossignol,et al. Recovery of locomotion after ventral and ventrolateral spinal lesions in the cat. I. Deficits and adaptive mechanisms. , 1998, Journal of neurophysiology.
[75] The mechanics of quadrupedal locomotion. 'How is the body propelled by muscles?'. , 1998 .
[76] E. Zehr,et al. What functions do reflexes serve during human locomotion? , 1999, Progress in Neurobiology.
[77] T. Drew,et al. Effects of red nucleus microstimulation on the locomotor pattern and timing in the intact cat: a comparison with the motor cortex. , 1999, Journal of neurophysiology.
[78] H. Hultborn,et al. Proprioceptive Control of Extensor Activity during Fictive Scratching and Weight Support Compared to Fictive Locomotion , 1999, The Journal of Neuroscience.
[79] K Matsuyama,et al. Vestibulospinal and reticulospinal neuronal activity during locomotion in the intact cat. I. Walking on a level surface. , 2000, Journal of neurophysiology.
[80] S. Harkema,et al. Locomotor training after human spinal cord injury: a series of case studies. , 2000, Physical therapy.
[81] S. Rossignol,et al. Initiating or Blocking Locomotion in Spinal Cats by Applying Noradrenergic Drugs to Restricted Lumbar Spinal Segments , 2000, The Journal of Neuroscience.
[82] J. Duysens,et al. Load-regulating mechanisms in gait and posture: comparative aspects. , 2000, Physiological reviews.
[83] K Matsuyama,et al. Vestibulospinal and reticulospinal neuronal activity during locomotion in the intact cat. II. Walking on an inclined plane. , 2000, Journal of neurophysiology.
[84] Michael J. O'Donovan,et al. Properties of rhythmic activity generated by the isolated spinal cord of the neonatal mouse. , 2000, Journal of neurophysiology.
[85] C. M. Bastiaanse,et al. Neuronal coordination of arm and leg movements during human locomotion , 2001, The European journal of neuroscience.
[86] V. Dietz,et al. Arm to leg coordination in humans during walking, creeping and swimming activities , 2001, Experimental Brain Research.
[87] D. Morin,et al. Forelimb locomotor generators and quadrupedal locomotion in the neonatal rat , 2001, The European journal of neuroscience.
[88] M. Golubitsky,et al. Models of central pattern generators for quadruped locomotion I. Primary gaits , 2001, Journal of mathematical biology.
[89] P. Beek,et al. Coordination Between Arm and Leg Movements During Locomotion , 2001, Journal of motor behavior.
[90] M. Golubitsky,et al. Models of central pattern generators for quadruped locomotion II. Secondary gaits , 2001, Journal of mathematical biology.
[91] Romeo Chua,et al. Human interlimb reflexes evoked by electrical stimulation of cutaneous nerves innervating the hand and foot , 2001, Experimental Brain Research.
[92] Ole Kiehn,et al. Organization of left–right coordination in the mammalian locomotor network , 2002, Brain Research Reviews.
[93] J. Broton,et al. Interlimb reflexes and synaptic plasticity become evident months after human spinal cord injury. , 2002, Brain : a journal of neurology.
[94] V. Dietz. Do human bipeds use quadrupedal coordination? , 2002, Trends in Neurosciences.
[95] M. Cartmill,et al. Support polygons and symmetrical gaits in mammals , 2002 .
[96] A. Abourachid. A new way of analysing symmetrical and asymmetrical gaits in quadrupeds. , 2003, Comptes rendus biologies.
[97] O. Kiehn,et al. Functional Identification of Interneurons Responsible for Left-Right Coordination of Hindlimbs in Mammals , 2003, Neuron.
[98] E Paul Zehr,et al. Coordinated interlimb compensatory responses to electrical stimulation of cutaneous nerves in the hand and foot during walking. , 2003, Journal of neurophysiology.
[99] M. Cartmill,et al. Footfall patterns and interlimb co‐ordination in opossums (Family Didelphidae): evidence for the evolution of diagonal‐sequence walking gaits in primates , 2003 .
[100] H. Meinck,et al. Reflexes evoked in leg muscles from arm afferents: A propriospinal pathway in man? , 2004, Experimental Brain Research.
[101] E. Zehr,et al. Regulation of Arm and Leg Movement during Human Locomotion , 2004, The Neuroscientist : a review journal bringing neurobiology, neurology and psychiatry.
[102] Keir G Pearson,et al. Generating the walking gait: role of sensory feedback. , 2004, Progress in brain research.
[103] N. L. Hayes,et al. Descending projections from brainstem and sensorimotor cortex to spinal enlargements in the cat , 2004, Experimental Brain Research.
[104] S. Grillner,et al. On the central generation of locomotion in the low spinal cat , 1979, Experimental Brain Research.
[105] B. W. Peterson,et al. Patterns of projection and branching of reticulospinal neurons , 1975, Experimental Brain Research.
[106] B. W. Peterson,et al. Reticulospinal connections with limb and axial motoneurons , 1979, Experimental Brain Research.
[107] E. Zehr,et al. Possible contributions of CPG activity to the control of rhythmic human arm movement. , 2004, Canadian journal of physiology and pharmacology.
[108] T. Bem,et al. Different patterns of fore-hindlimb coordination during overground locomotion in cats with ventral and lateral spinal lesions , 2004, Experimental Brain Research.
[109] J. J. Collins,et al. Hard-wired central pattern generators for quadrupedal locomotion , 1994, Biological Cybernetics.
[110] Serge Rossignol,et al. Critical points in the forelimb fictive locomotor cycle and motor coordination: evidence from the effects of tonic proprioceptive perturbations in the cat. , 2004, Journal of neurophysiology.
[111] R. E. Burke,et al. Peripheral and central control of flexor digitorum longus and flexor hallucis longus motoneurons: The synaptic basis of functional diversity , 2004, Experimental Brain Research.
[112] D. Stuart,et al. A long propriospinal system with direct effect on motoneurones and on interneurones in the cat lumbosacral cord , 2004, Experimental Brain Research.
[113] Takashi Yamaguchi,et al. The central pattern generator for forelimb locomotion in the cat. , 2004, Progress in brain research.
[114] B. Calancie. Interlimb reflexes following cervical spinal cord injury in man , 2004, Experimental Brain Research.
[115] C. Perret,et al. Interlimb coordination during fictive locomotion in the thalamic cat , 2004, Experimental Brain Research.
[116] Trevor Drew,et al. Locomotor role of the corticoreticular-reticulospinal-spinal interneuronal system. , 2004, Progress in brain research.
[117] D. Basso,et al. Stepwise motor and all-or-none sensory recovery is associated with nonlinear sparing after incremental spinal cord injury in rats , 2005, Experimental Neurology.
[118] John Simmers,et al. Propriospinal Circuitry Underlying Interlimb Coordination in Mammalian Quadrupedal Locomotion , 2005, The Journal of Neuroscience.
[119] S. Rossignol,et al. Mid-lumbar segments are needed for the expression of locomotion in chronic spinal cats. , 2005, Journal of neurophysiology.
[120] J. Broton,et al. Interlimb reflex activity after spinal cord injury in man: strengthening response patterns are consistent with ongoing synaptic plasticity , 2005, Clinical Neurophysiology.
[121] Marco Y C Pang,et al. Split-Belt Treadmill Stepping in Infants Suggests Autonomous Pattern Generators for the Left and Right Leg in Humans , 2005, The Journal of Neuroscience.
[122] T. Drew,et al. Contribution of the motor cortex to the structure and the timing of hindlimb locomotion in the cat: a microstimulation study. , 2005, Journal of neurophysiology.
[123] M. Ito,et al. Interaction between the horizontal vestibulo-ocular reflex and optokinetic response in rabbits , 1979, Experimental Brain Research.
[124] S. M. Onifer,et al. Inter-enlargement pathways in the ventrolateral funiculus of the adult rat spinal cord , 2006, Neuroscience.
[125] Long ascending propriospinal projections from lumbosacral to upper cervical spinal cord in the rat , 2006, Brain Research.
[126] E. Zehr,et al. Context-dependent modulation of interlimb cutaneous reflexes in arm muscles as a function of stability threat during walking. , 2006, Journal of neurophysiology.
[127] B. Schmidt,et al. Propriospinal neurons contribute to bulbospinal transmission of the locomotor command signal in the neonatal rat spinal cord , 2006, The Journal of physiology.
[128] Daniel P. Ferris,et al. Moving the Arms to Activate the Legs , 2006, Exercise and sport sciences reviews.
[129] Serge Rossignol,et al. Experiments and models of sensorimotor interactions during locomotion , 2006, Biological Cybernetics.
[130] O. Kiehn. Locomotor circuits in the mammalian spinal cord. , 2006, Annual review of neuroscience.
[131] U. Tan. A NEW SYNDROME WITH QUADRUPEDAL GAIT, PRIMITIVE SPEECH, AND SEVERE MENTAL RETARDATION AS A LIVE MODEL FOR HUMAN EVOLUTION , 2006, The International journal of neuroscience.
[132] A. Biewener. Patterns of mechanical energy change in tetrapod gait: pendula, springs and work. , 2006, Journal of experimental zoology. Part A, Comparative experimental biology.
[133] S. Rossignol,et al. Dynamic sensorimotor interactions in locomotion. , 2006, Physiological reviews.
[134] R. Pfeifer,et al. Self-Organization, Embodiment, and Biologically Inspired Robotics , 2007, Science.
[135] Julia T. Choi,et al. Adaptation reveals independent control networks for human walking , 2007, Nature Neuroscience.
[136] Hiroshi Kimura,et al. Towards a general neural controller for quadrupedal locomotion , 2007 .
[137] S. Sasaki,et al. The C3–C4 propriospinal system in the cat and monkey: a spinal pre‐motoneuronal centre for voluntary motor control , 2007, Acta physiologica.
[138] Andrew A Biewener,et al. Unsteady locomotion: integrating muscle function with whole body dynamics and neuromuscular control , 2007, Journal of Experimental Biology.
[139] Alan M. Wilson,et al. Mechanics of dog walking compared with a passive, stiff-limbed, 4-bar linkage model, and their collisional implications , 2007, Journal of Experimental Biology.
[140] Richard A Satterlie,et al. Neuromechanics: an integrative approach for understanding motor control. , 2007, Integrative and comparative biology.
[141] Hans Hultborn,et al. Thomas Graham Brown (1882–1965), Anders Lundberg (1920–), and the neural control of stepping , 2008, Brain Research Reviews.
[142] Bingbing Song,et al. Recovery of supraspinal control of stepping via indirect propriospinal relay connections after spinal cord injury , 2008, Nature Medicine.
[143] B. Schmidt,et al. Propriospinal neurons are sufficient for bulbospinal transmission of the locomotor command signal in the neonatal rat spinal cord , 2008, The Journal of physiology.
[144] S. Rossignol,et al. Effects of localized intraspinal injections of a noradrenergic blocker on locomotion of high decerebrate cats. , 2008, Journal of neurophysiology.
[145] D. McCrea,et al. Organization of mammalian locomotor rhythm and pattern generation , 2008, Brain Research Reviews.
[146] Kunikatsu Takase,et al. Towards a general neural controller for 3D quadrupedal locomotion , 2008, 2008 SICE Annual Conference.
[147] K. Pearson. Role of sensory feedback in the control of stance duration in walking cats , 2008, Brain Research Reviews.
[148] Serge Rossignol,et al. Prominent Role of the Spinal Central Pattern Generator in the Recovery of Locomotion after Partial Spinal Cord Injuries , 2008, The Journal of Neuroscience.
[149] Keir G. Pearson,et al. Descending command systems for the initiation of locomotion in mammals , 2008, Brain Research Reviews.
[150] Noritaka Kawashima,et al. Shaping appropriate locomotive motor output through interlimb neural pathway within spinal cord in humans. , 2008, Journal of neurophysiology.
[151] A. Behrman,et al. Locomotor Training Restores Walking in a Nonambulatory Child With Chronic, Severe, Incomplete Cervical Spinal Cord Injury , 2008, Physical Therapy.
[152] D. Magnuson,et al. Anterograde labeling of ventrolateral funiculus pathways with spinal enlargement connections in the adult rat spinal cord , 2009, Brain Research.
[153] Volker Dietz,et al. Human Bipeds Use Quadrupedal Coordination during Locomotion , 2009, Annals of the New York Academy of Sciences.
[154] Daniel P Ferris,et al. Neuromechanical considerations for incorporating rhythmic arm movement in the rehabilitation of walking. , 2009, Chaos.
[155] Stuart N. Baker,et al. Direct and Indirect Connections with Upper Limb Motoneurons from the Primate Reticulospinal Tract , 2009, The Journal of Neuroscience.
[156] S. Rossignol,et al. Asymmetric changes in cutaneous reflexes after a partial spinal lesion and retention following spinalization during locomotion in the cat. , 2009, Journal of neurophysiology.
[157] M. Goulding. Circuits controlling vertebrate locomotion: moving in a new direction , 2009, Nature Reviews Neuroscience.
[158] P. Guertin. The mammalian central pattern generator for locomotion , 2009, Brain Research Reviews.
[159] S. Grillner,et al. Measured motion: searching for simplicity in spinal locomotor networks , 2009, Current Opinion in Neurobiology.
[160] B. Schmidt,et al. Contribution of commissural projections to bulbospinal activation of locomotion in the in vitro neonatal rat spinal cord. , 2009, Journal of neurophysiology.
[161] Alain Frigon,et al. Asymmetric control of cycle period by the spinal locomotor rhythm generator in the adult cat , 2009, The Journal of physiology.
[162] Jaynie F. Yang,et al. Interlimb coordination in human crawling reveals similarities in development and neural control with quadrupeds. , 2009, Journal of neurophysiology.
[163] Erin V. L. Vasudevan,et al. The Quadrupedal Nature of Human Bipedal Locomotion , 2009, Exercise and sport sciences reviews.
[164] D. McCrea,et al. Intraspinally mediated state‐dependent enhancement of motoneurone excitability during fictive scratch in the adult decerebrate cat , 2010, The Journal of physiology.
[165] B. Schmidt,et al. Propriospinal transmission of the locomotor command signal in the neonatal rat , 2010, Annals of the New York Academy of Sciences.
[166] Alain Frigon,et al. Evidence for Specialized Rhythm-Generating Mechanisms in the Adult Mammalian Spinal Cord , 2010, The Journal of Neuroscience.
[167] S. Rossignol,et al. Dual spinal lesion paradigm in the cat: evolution of the kinematic locomotor pattern. , 2010, Journal of neurophysiology.
[168] P. Kirkwood,et al. Electrophysiological and morphological characterization of propriospinal interneurons in the thoracic spinal cord. , 2011, Journal of neurophysiology.
[169] Andrea L. Behrman,et al. Device use, locomotor training, and the presence of arm swing during treadmill walking post-spinal cord injury , 2010, Spinal Cord.
[170] Mary P. Galea,et al. The role of propriospinal interneurons in recovery from spinal cord injury , 2011, Neuropharmacology.
[171] Dimitri Ryczko,et al. Chapter 4--supraspinal control of locomotion: the mesencephalic locomotor region. , 2011, Progress in brain research.
[172] A. d’Avella,et al. Locomotor Primitives in Newborn Babies and Their Development , 2011, Science.
[173] Volker Dietz,et al. Quadrupedal coordination of bipedal gait: implications for movement disorders , 2011, Journal of Neurology.
[174] Serge Rossignol,et al. Kinematic study of locomotor recovery after spinal cord clip compression injury in rats. , 2011, Journal of neurotrauma.
[175] S. Rossignol,et al. Recovery of locomotion after spinal cord injury: some facts and mechanisms. , 2011, Annual review of neuroscience.
[176] John E A Bertram,et al. A collisional perspective on quadrupedal gait dynamics , 2011, Journal of The Royal Society Interface.
[177] David V. Lee. Effects of grade and mass distribution on the mechanics of trotting in dogs , 2011, Journal of Experimental Biology.
[178] Jaynie F. Yang,et al. Developmental constraints of quadrupedal coordination across crawling styles in human infants. , 2012, Journal of neurophysiology.
[179] A. Frigon. Central Pattern Generators of the Mammalian Spinal Cord , 2012, The Neuroscientist : a review journal bringing neurobiology, neurology and psychiatry.
[180] John Simmers,et al. Cervicolumbar Coordination in Mammalian Quadrupedal Locomotion: Role of Spinal Thoracic Circuitry and Limb Sensory Inputs , 2012, The Journal of Neuroscience.
[181] J. Nielsen,et al. Fictive locomotion in the adult decerebrate and spinal mouse in vivo , 2012, The Journal of physiology.
[182] S. Micera,et al. Restoring Voluntary Control of Locomotion after Paralyzing Spinal Cord Injury , 2012, Science.
[183] Sensory regulation of quadrupedal locomotion: a top-down or bottom-up control system? , 2012, Journal of neurophysiology.
[184] Hugues Barbeau,et al. Arm and leg coordination during treadmill walking in individuals with motor incomplete spinal cord injury: a preliminary study. , 2012, Gait & posture.
[185] D. Ryczko,et al. The multifunctional mesencephalic locomotor region. , 2013, Current pharmaceutical design.
[186] K. Kullander,et al. Genetic analysis of left-right coordination of locomotion . , 2013, Frontiers in bioscience.
[187] Shinya Aoi,et al. A stability-based mechanism for hysteresis in the walk–trot transition in quadruped locomotion , 2013, Journal of The Royal Society Interface.
[188] V. S. Gurfinkel,et al. Trunk Orientation, Stability, and Quadrupedalism , 2013, Front. Neurol..
[189] Anick Abourachid,et al. Gait transitions and modular organization of mammal locomotion , 2013, Journal of Experimental Biology.
[190] A. Frigon,et al. Coordination between the fore- and hindlimbs is bidirectional, asymmetrically organized, and flexible during quadrupedal locomotion in the intact adult cat , 2013, Neuroscience.
[191] D. Owaki,et al. Simple robot suggests physical interlimb communication is essential for quadruped walking , 2013, Journal of The Royal Society Interface.
[192] T. Górska,et al. Changes in forelimb–hindlimb coordination after partial spinal lesions of different extent in the rat , 2013, Behavioural Brain Research.
[193] D. Maxwell,et al. Ascending and descending propriospinal pathways between lumbar and cervical segments in the rat: Evidence for a substantial ascending excitatory pathway , 2013, Neuroscience.
[194] A. Frigon,et al. Split-Belt Walking Alters the Relationship between Locomotor Phases and Cycle Duration across Speeds in Intact and Chronic Spinalized Adult Cats , 2013, The Journal of Neuroscience.
[195] Hui Zhong,et al. Use of quadrupedal step training to re-engage spinal interneuronal networks and improve locomotor function after spinal cord injury. , 2013, Brain : a journal of neurology.
[196] V. Dietz,et al. Arm movements can increase leg muscle activity during submaximal recumbent stepping in neurologically intact individuals. , 2013, Journal of applied physiology.
[197] O. Kiehn,et al. Dual-mode operation of neuronal networks involved in left–right alternation , 2013, Nature.
[198] S. Itohara,et al. Optogenetic dissection reveals multiple rhythmogenic modules underlying locomotion , 2013, Proceedings of the National Academy of Sciences.
[199] Auke Jan Ijspeert,et al. Kinematic primitives for walking and trotting gaits of a quadruped robot with compliant legs , 2014, Front. Comput. Neurosci..
[200] Alain Frigon,et al. Spatiotemporal control of interlimb coordination during transverse split-belt locomotion with 1:1 or 2:1 coupling patterns in intact adult cats. , 2014, Journal of neurophysiology.
[201] M. Perreault,et al. Organization of pontine reticulospinal inputs to motoneurons controlling axial and limb muscles in the neonatal mouse. , 2014, Journal of neurophysiology.
[202] Auke Ijspeert,et al. The contribution of a central pattern generator in a reflex-based neuromuscular model , 2014, Front. Hum. Neurosci..
[203] A. Ijspeert,et al. Kinematic and Gait Similarities between Crawling Human Infants and Other Quadruped Mammals , 2015, Front. Neurol..
[204] Sten Grillner,et al. The intrinsic operation of the networks that make us locomote , 2015, Current Opinion in Neurobiology.
[205] G. Paxinos,et al. Terminations of reticulospinal fibers originating from the gigantocellular reticular formation in the mouse spinal cord , 2015, Brain Structure and Function.
[206] G. Paxinos,et al. Projections from the oral pontine reticular nucleus to the spinal cord of the mouse , 2015, Neuroscience Letters.
[207] Manuel J. Escalona,et al. Plastic Changes in Lumbar Locomotor Networks after a Partial Spinal Cord Injury in Cats , 2015, The Journal of Neuroscience.
[208] Shinya Aoi,et al. Adaptation mechanism of interlimb coordination in human split-belt treadmill walking through learning of foot contact timing: a robotics study , 2015, Journal of The Royal Society Interface.
[209] Ryosuke Chiba,et al. Brainstem control of locomotion and muscle tone with special reference to the role of the mesopontine tegmentum and medullary reticulospinal systems , 2015, Journal of Neural Transmission.
[210] B. Schmidt,et al. Neurochemical excitation of thoracic propriospinal neurons improves hindlimb stepping in adult rats with spinal cord lesions , 2015, Experimental Neurology.
[211] Jessica L. Allen,et al. Neuromechanical Principles Underlying Movement Modularity and Their Implications for Rehabilitation , 2015, Neuron.
[212] Roger Quinn,et al. A biologically based neural system coordinates the joints and legs of a tetrapod , 2015, Bioinspiration & biomimetics.
[213] Ole Kiehn,et al. Phenotypic Characterization of Speed-Associated Gait Changes in Mice Reveals Modular Organization of Locomotor Networks , 2015, Current Biology.
[214] O. Kiehn. Decoding the organization of spinal circuits that control locomotion , 2016, Nature Reviews Neuroscience.
[215] M. Perreault,et al. Pontine reticulospinal projections in the neonatal mouse: Internal organization and axon trajectories , 2016, The Journal of comparative neurology.
[216] I. Rybak,et al. Organization of flexor–extensor interactions in the mammalian spinal cord: insights from computational modelling , 2016, The Journal of physiology.
[217] John E. A. Bertram,et al. Understanding Mammalian Locomotion: Concepts and Applications , 2016 .
[218] Erin V. L. Vasudevan,et al. Neuromechanical interactions between the limbs during human locomotion: an evolutionary perspective with translation to rehabilitation , 2016, Experimental Brain Research.
[219] Simon M. Danner,et al. Central control of interlimb coordination and speed‐dependent gait expression in quadrupeds , 2016, The Journal of physiology.
[220] Maxime Lemieux,et al. Speed-Dependent Modulation of the Locomotor Behavior in Adult Mice Reveals Attractor and Transitional Gaits , 2016, Front. Neurosci..
[221] S. Arber,et al. Long-Distance Descending Spinal Neurons Ensure Quadrupedal Locomotor Stability , 2016, Neuron.
[222] B. Prilutsky,et al. A Neuromechanical Model of Spinal Control of Locomotion , 2016 .
[223] Alain Frigon,et al. Left–right coordination from simple to extreme conditions during split‐belt locomotion in the chronic spinal adult cat , 2017, The Journal of physiology.
[224] Alain Frigon,et al. Interlimb Coordination during Tied-Belt and Transverse Split-Belt Locomotion before and after an Incomplete Spinal Cord Injury. , 2017, Journal of neurotrauma.