Spinal corollary discharge modulates motion sensing during vertebrate locomotion
暂无分享,去创建一个
Hans Straka | John Simmers | Boris P. Chagnaud | H. Straka | J. Simmers | Roberto Banchi | B. Chagnaud | Roberto Banchi
[1] J. Goldberg,et al. Efferent-mediated responses in vestibular nerve afferents of the alert macaque. , 2009, Journal of neurophysiology.
[2] J. Goldberg,et al. Responses to efferent activation and excitatory response-intensity relations of turtle posterior-crista afferents. , 2000, Journal of neurophysiology.
[3] J. Goldberg,et al. Mechanisms of Efferent-Mediated Responses in the Turtle Posterior Crista , 2006, The Journal of Neuroscience.
[4] K. Sillar,et al. The development of swimming rhythmicity in post-embryonic Xenopus laevis , 1991, Proceedings of the Royal Society of London. Series B: Biological Sciences.
[5] Halstead,et al. Hindbrain signal processing in the lateral line system of the dwarf scorpionfish Scopeana papillosus , 1996, The Journal of experimental biology.
[6] J. Cabelguen,et al. Bimodal Locomotion Elicited by Electrical Stimulation of the Midbrain in the Salamander Notophthalmus viridescens , 2003, The Journal of Neuroscience.
[7] I. Russell,et al. The role of the lateral-line efferent system in Xenopus laevis. , 1971, The Journal of experimental biology.
[8] Hans Straka,et al. Predictability of visual perturbation during locomotion: implications for corrective efference copy signaling , 2012, Biological Cybernetics.
[9] D. Bodznick,et al. An adaptive filter that cancels self-induced noise in the electrosensory and lateral line mechanosensory systems of fish , 1994, Neuroscience Letters.
[10] Michael S. Lewicki,et al. Efficient auditory coding , 2006, Nature.
[11] Andrew H Bass,et al. Vocal Corollary Discharge Communicates Call Duration to Vertebrate Auditory System , 2013, The Journal of Neuroscience.
[12] M. Sommer,et al. Corollary discharge across the animal kingdom , 2008, Nature Reviews Neuroscience.
[13] D. Angelaki,et al. Vestibular system: the many facets of a multimodal sense. , 2008, Annual review of neuroscience.
[14] J. Goldberg,et al. Physiology of peripheral neurons innervating semicircular canals of the squirrel monkey. 3. Variations among units in their discharge properties. , 1971, Journal of neurophysiology.
[15] Michael S. Lewicki,et al. Efficient coding of natural sounds , 2002, Nature Neuroscience.
[16] K. Sillar,et al. Developmental segregation of spinal networks driving axial‐ and hindlimb‐based locomotion in metamorphosing Xenopus laevis , 2004, The Journal of physiology.
[17] C. Bell. An efference copy which is modified by reafferent input. , 1981, Science.
[18] A. Bass,et al. Vocal Pathways Modulate Efferent Neurons to the Inner Ear and Lateral Line , 2005, The Journal of Neuroscience.
[19] J. Kaltenbach,et al. Efferent neurons and vestibular cross talk in the frog. , 1997, Journal of neurophysiology.
[20] Nathaniel B. Sawtell,et al. Plastic Corollary Discharge Predicts Sensory Consequences of Movements in a Cerebellum-Like Circuit , 2014, Neuron.
[21] Kathleen E Cullen,et al. Multisensory integration in early vestibular processing in mice: the encoding of passive vs. active motion. , 2013, Journal of neurophysiology.
[22] M. Chacron,et al. Neural Variability, Detection Thresholds, and Information Transmission in the Vestibular System , 2007, The Journal of Neuroscience.
[23] J. Goldberg,et al. Efferent vestibular system in the squirrel monkey: anatomical location and influence on afferent activity. , 1980, Journal of neurophysiology.
[24] E. Holst,et al. Das Reafferenzprinzip , 2004, Naturwissenschaften.
[25] I. Russell,et al. Inhibition of Spontaneous Lateral-Line Activity by Efferent Nerve Stimulation , 1972 .
[26] David M J S Bowman,et al. Flammable biomes dominated by eucalypts originated at the Cretaceous-Palaeogene boundary. , 2011, Nature communications.
[27] H. Bleckmann,et al. Peripheral and central processing of lateral line information , 2008, Journal of Comparative Physiology A.
[28] A. Magnusson,et al. Physiological Characterization of Vestibular Efferent Brainstem Neurons Using a Transgenic Mouse Model , 2014, PloS one.
[29] T. Brandt,et al. You are better off running than walking with acute vestibulopathy , 1999, The Lancet.
[30] D. Bodznick,et al. Signals and noise in the elasmobranch electrosensory system , 1999, The Journal of experimental biology.
[31] S. Grillner,et al. Tectal control of locomotion, steering, and eye movements in lamprey. , 2007, Journal of neurophysiology.
[32] S. Cochran. Evidence against a hypothesis of vestibular efferent function , 1994, Brain Research.
[33] P. Valli,et al. Activation of the efferent system in the isolated frog labyrinth: Effects on the afferent EPSPs and spike discharge recorded from single fibers of the posterior nerve , 1980, Brain Research.
[34] Bernd Fritzsch,et al. Evolution and Development of Hair Cell Polarity and Efferent Function in the Inner Ear , 2014, Brain, Behavior and Evolution.
[35] 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.
[36] Jessica X. Brooks,et al. Internal models of self-motion: computations that suppress vestibular reafference in early vestibular processing , 2011, Experimental Brain Research.
[37] H. Straka,et al. Gaze Stabilization by Efference Copy Signaling without Sensory Feedback during Vertebrate Locomotion , 2012, Current Biology.
[38] R. Sperry. Neural basis of the spontaneous optokinetic response produced by visual inversion. , 1950, Journal of comparative and physiological psychology.
[39] R. Rabbitt,et al. Hair-cell versus afferent adaptation in the semicircular canals. , 2005, Journal of neurophysiology.
[40] A. Fairhall,et al. Sensory adaptation , 2007, Current Opinion in Neurobiology.
[41] Thomas Brandt,et al. Differential effects of vestibular stimulation on walking and running , 2000, Neuroreport.
[42] A review of synaptic mechanisms of vestibular efferent signaling in turtles: extrapolation to efferent actions in mammals. , 2013, Journal of vestibular research : equilibrium & orientation.
[43] Bernd Fritzsch,et al. Neuroanatomical and histochemical evidence for the presence of common lateral line and inner ear efferents and of efferents to the basilar papilla in a frog, Xenopus laevis. , 1996, Brain, behavior and evolution.
[44] S. M. Highstein,et al. Action of the octavolateralis efferent system upon the lateral line of free-swimming toadfish, Opsanus tau , 1991, Journal of Comparative Physiology A.
[45] S. Tomchik,et al. Auditory physiology and anatomy of octavolateral efferent neurons in a teleost fish , 2005, Journal of Comparative Physiology A.
[46] A. Roberts,et al. Experiments on the central pattern generator for swimming in amphibian embryos. , 1982, Philosophical transactions of the Royal Society of London. Series B, Biological sciences.
[47] R. Wurtz,et al. Brain circuits for the internal monitoring of movements. , 2008, Annual review of neuroscience.
[48] R. Baker,et al. Semicircular Canal Size Determines the Developmental Onset of Angular Vestibuloocular Reflexes in Larval Xenopus , 2008, The Journal of Neuroscience.
[49] R. Rabbitt,et al. Efferent Control of Hair Cell and Afferent Responses 1 1 2 Efferent Control of Hair Cell and Afferent Responses in the Semicircular Canals 3 4 Efferent Control of Hair Cell and Afferent Responses 2 39 , 2022 .
[50] Greg Wayne,et al. A temporal basis for predicting the sensory consequences of motor commands in an electric fish , 2014, Nature Neuroscience.
[51] S. Highstein. The central nervous system efferent control of the organs of balance and equilibrium , 1991, Neuroscience Research.
[52] K. Cullen. Sensory signals during active versus passive movement , 2004, Current Opinion in Neurobiology.
[53] Mohsen Jamali,et al. Response of vestibular nerve afferents innervating utricle and saccule during passive and active translations. , 2009, Journal of neurophysiology.
[54] H. Straka,et al. Location of dye-coupled second order and of efferent vestibular neurons labeled from individual semicircular canal or otolith organs in the frog , 2001, Brain Research.
[55] R. Baker,et al. Organization of the efferent, vestibular nuclei and nerves of the toadfish, Opsanus tau , 1986, The Journal of comparative neurology.
[56] S. Highstein,et al. Morphological correlates of response dynamics and efferent stimulation in horizontal semicircular canal afferents of the toadfish, Opsanus tau. , 1991, Journal of neurophysiology.
[57] R. Baker,et al. Action of the efferent vestibular system on primary afferents in the toadfish, Opsanus tau. , 1985, Journal of neurophysiology.
[58] N. Dieringer,et al. Basic organization principles of the VOR: lessons from frogs , 2004, Progress in Neurobiology.
[59] M. Chacron,et al. Statistics of the Vestibular Input Experienced during Natural Self-Motion: Implications for Neural Processing , 2014, The Journal of Neuroscience.
[60] I. Russell,et al. The activity of lateral-line efferent neurones in stationary and swimming dogfish. , 1972, The Journal of experimental biology.
[61] Jessica X. Brooks,et al. Early vestibular processing does not discriminate active from passive self-motion if there is a discrepancy between predicted and actual proprioceptive feedback. , 2014, Journal of neurophysiology.
[62] H. Wada. Evolutionary history of free-swimming and sessile lifestyles in urochordates as deduced from 18S rDNA molecular phylogeny. , 1998, Molecular biology and evolution.
[63] R. Baker,et al. Vocalization frequency and duration are coded in separate hindbrain nuclei. , 2011, Nature communications.
[64] J. Goldberg. Afferent diversity and the organization of central vestibular pathways , 2000, Experimental Brain Research.
[65] R. Baker,et al. Rhombomeric organization of vestibular pathways in larval frogs , 2001, The Journal of comparative neurology.
[66] T. Lacalli,et al. New perspectives on the evolution of protochordate sensory and locomotory systems, and the origin of brains and heads. , 2001, Philosophical transactions of the Royal Society of London. Series B, Biological sciences.
[67] N. Sawtell,et al. A Role for Mixed Corollary Discharge and Proprioceptive Signals in Predicting the Sensory Consequences of Movements , 2014, The Journal of Neuroscience.
[68] Bernd Fritzsch. Development of the Labyrinthine Efferent System a , 1996, Annals of the New York Academy of Sciences.
[69] J. Faber,et al. Normal table of Xenopus laevis (Daudin). A systematical and chronological survey of the development from the fertilized egg till the end of metamorphosis. , 1956 .
[70] R. Boyle,et al. Efferent vestibular system in the toadfish: action upon horizontal semicircular canal afferents , 1990, The Journal of neuroscience : the official journal of the Society for Neuroscience.