Some principles of organization of spinal neurons underlying locomotion in zebrafish and their implications
暂无分享,去创建一个
[1] R. Oppenheim,et al. Periodic motility of normal and spinal chick embryos between 8 and 17 days of incubation. , 1965, The Journal of experimental zoology.
[2] P. Rakić. Neurons in Rhesus Monkey Visual Cortex: Systematic Relation between Time of Origin and Eventual Disposition , 1974, Science.
[3] P. Rakić,et al. Genesis of the dorsal lateral geniculate nucleus in the rhesus monkey: Site and time of origin, kinetics of proliferation, routes of migration and pattern of distribution of neurons , 1977, The Journal of comparative neurology.
[4] J. Altman,et al. Development of the brain stem in the rat. IV. Thymidine‐radiographic study of the time of orgin of neurons in the pontine region , 1980, The Journal of comparative neurology.
[5] J. Clarke,et al. Neural control of swimming in a vertebrate. , 1981, Science.
[6] J. D. de Vries,et al. The emergence of fetal behaviour. I. Qualitative aspects. , 1982, Early human development.
[7] B. Gustafsson,et al. Relations among passive electrical properties of lumbar alpha‐motoneurones of the cat. , 1984, The Journal of physiology.
[8] B. Gustafsson,et al. An investigation of threshold properties among cat spinal alpha‐motoneurones. , 1984, The Journal of physiology.
[9] M. Westerfield,et al. Development and axonal outgrowth of identified motoneurons in the zebrafish , 1986, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[10] R. Wassersug,et al. The Kinematics of Swimming in Larvae of the Clawed Frog, Xenopus Laevis , 1986 .
[11] M. Westerfield,et al. Identified motoneurons and their innervation of axial muscles in the zebrafish , 1986, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[12] B. Mendelson. Development of reticulospinal neurons of the zebrafish. I. Time of origin , 1986, The Journal of comparative neurology.
[13] B. Mendelson. Development of reticulospinal neurons of the zebrafish. II. Early axonal outgrowth and cell body position , 1986, The Journal of comparative neurology.
[14] Joseph R. Fetcho,et al. A review of the organization and evolution of motoneurons innervating the axial musculature of vertebrates , 1987, Brain Research Reviews.
[15] M. Westerfield,et al. Function of identified motoneurones and co‐ordination of primary and secondary motor systems during zebra fish swimming. , 1988, The Journal of physiology.
[16] D. Hubel,et al. Segregation of form, color, movement, and depth: anatomy, physiology, and perception. , 1988, Science.
[17] A. Roberts,et al. Development of early swimming inXenopus laevis embryos: Myotomal musculature, its innervation and activation , 1989, Neuroscience.
[18] J. Westerga,et al. The development of locomotion in the rat. , 1990, Brain research. Developmental brain research.
[19] J. Fetcho,et al. Morphological variability, segmental relationships, and functional role of a class of commissural interneurons in the spinal cord of goldfish , 1990, The Journal of comparative neurology.
[20] A. Bekoff,et al. Development of coordinated movement in chicks: I. Temporal analysis of hindlimb muscle synergies at embryonic days 9 and 10. , 1990, Developmental psychobiology.
[21] R. Williamson,et al. Interneuronal activity patterns during fictive locomotion of spinal dogfish , 1990 .
[22] J. Fetcho. The spinal motor system in early vertebrates and some of its evolutionary changes. , 1992, Brain, behavior and evolution.
[23] J. Fetcho. Excitation of motoneurons by the Mauthner axon in goldfish: complexities in a "simple" reticulospinal pathway. , 1992, Journal of neurophysiology.
[24] K. Sillar,et al. Control of frequency during swimming in Xenopus embryos: a study on interneuronal recruitment in a spinal rhythm generator. , 1993, The Journal of physiology.
[25] Keith T. Sillar,et al. Physiological and developmental aspects of intersegmental coordination in Xenopus embryos and tadpoles , 1993 .
[26] E Friauf,et al. Giant neurons in the rat reticular formation: a sensorimotor interface in the elementary acoustic startle circuit? , 1994, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[27] Timothy C. Cope,et al. The Size Principle: Still Working After All These Years , 1995 .
[28] L. Ziskind-Conhaim,et al. Development of ionic currents underlying changes in action potential waveforms in rat spinal motoneurons. , 1998, Journal of neurophysiology.
[29] S Grillner,et al. Cellular and Synaptic Modulation Underlying Substance P-Mediated Plasticity of the Lamprey Locomotor Network , 1998, The Journal of Neuroscience.
[30] A. Roberts,et al. Central Circuits Controlling Locomotion in Young Frog Tadpoles , 1998, Annals of the New York Academy of Sciences.
[31] M. Goulding,et al. Engrailed-1 and netrin-1 regulate axon pathfinding by association interneurons that project to motor neurons. , 1999, Development.
[32] T. Jessell,et al. A Homeodomain Protein Code Specifies Progenitor Cell Identity and Neuronal Fate in the Ventral Neural Tube , 2000, Cell.
[33] Michael J. O'Donovan,et al. Topographical and physiological characterization of interneurons that express engrailed-1 in the embryonic chick spinal cord. , 2000, Journal of neurophysiology.
[34] K. Sillar,et al. The development of neuromodulatory systems and the maturation of motor patterns in amphibian tadpoles , 2000, Brain Research Bulletin.
[35] D. Casane,et al. Zebrafish evx1 is dynamically expressed during embryogenesis in subsets of interneurones, posterior gut and urogenital system , 2000, Mechanisms of Development.
[36] B. Thisse,et al. Evolutionary origins of vertebrate appendicular muscle , 2000, Nature.
[37] J. Fetcho,et al. In Vivo Imaging of Zebrafish Reveals Differences in the Spinal Networks for Escape and Swimming Movements , 2001, The Journal of Neuroscience.
[38] Melina E. Hale,et al. A confocal study of spinal interneurons in living larval zebrafish , 2001, The Journal of comparative neurology.
[39] T. Jessell,et al. Genetic Identification of Spinal Interneurons that Coordinate Left-Right Locomotor Activity Necessary for Walking Movements , 2004, Neuron.
[40] K. Sillar,et al. Developmental segregation of spinal networks driving axial‐ and hindlimb‐based locomotion in metamorphosing Xenopus laevis , 2004, The Journal of physiology.
[41] M. A. Masino,et al. Engrailed-1 Expression Marks a Primitive Class of Inhibitory Spinal Interneuron , 2004, The Journal of Neuroscience.
[42] Nicholas C. Spitzer,et al. Activity-dependent homeostatic specification of transmitter expression in embryonic neurons , 2004, Nature.
[43] Alan Roberts,et al. Primitive Roles for Inhibitory Interneurons in Developing Frog Spinal Cord , 2004, The Journal of Neuroscience.
[44] G. Fishell,et al. The Temporal and Spatial Origins of Cortical Interneurons Predict Their Physiological Subtype , 2005, Neuron.
[45] S. Rétaux,et al. LIM‐homeodomain genes as territory markers in the brainstem of adult and developing Xenopus laevis , 2005, The Journal of comparative neurology.
[46] M. Goulding,et al. Postnatal phenotype and localization of spinal cord V1 derived interneurons , 2005, The Journal of comparative neurology.
[47] Samuel L. Pfaff,et al. Homeodomain transcription factors in the development of subsets of hindbrain reticulospinal neurons , 2005, Molecular and Cellular Neuroscience.
[48] D. McCrea,et al. Modelling spinal circuitry involved in locomotor pattern generation: insights from deletions during fictive locomotion , 2006, The Journal of physiology.
[49] E. Callaway,et al. V1 spinal neurons regulate the speed of vertebrate locomotor outputs , 2006, Nature.
[50] Yukiko Kimura,et al. alx, a Zebrafish Homolog of Chx10, Marks Ipsilateral Descending Excitatory Interneurons That Participate in the Regulation of Spinal Locomotor Circuits , 2006, The Journal of Neuroscience.
[51] O. Kiehn. Locomotor circuits in the mammalian spinal cord. , 2006, Annual review of neuroscience.
[52] M. Concha,et al. Zebrafish BarH-like genes define discrete neural domains in the early embryo. , 2006, Gene expression patterns : GEP.
[53] Sten Grillner,et al. Biological Pattern Generation: The Cellular and Computational Logic of Networks in Motion , 2006, Neuron.
[54] O. Kiehn,et al. Phenotype of V2‐derived interneurons and their relationship to the axon guidance molecule EphA4 in the developing mouse spinal cord , 2007, The European journal of neuroscience.
[55] Paolo Dario,et al. Modeling a vertebrate motor system: pattern generation, steering and control of body orientation. , 2007, Progress in brain research.
[56] Melina E. Hale,et al. A topographic map of recruitment in spinal cord , 2007, Nature.
[57] Melina E. Hale,et al. Grading Movement Strength by Changes in Firing Intensity versus Recruitment of Spinal Interneurons , 2007, Neuron.
[58] E. Marder,et al. Understanding circuit dynamics using the stomatogastric nervous system of lobsters and crabs. , 2007, Annual review of physiology.
[59] Yukiko Kimura,et al. V2a and V2b neurons are generated by the final divisions of pair-producing progenitors in the zebrafish spinal cord , 2008, Development.
[60] J. Fetcho,et al. Shared versus Specialized Glycinergic Spinal Interneurons in Axial Motor Circuits of Larval Zebrafish , 2008, The Journal of Neuroscience.
[61] Toshiaki Endo,et al. Genetic Ablation of V2a Ipsilateral Interneurons Disrupts Left-Right Locomotor Coordination in Mammalian Spinal Cord , 2008, Neuron.
[62] Alexander M. Walter,et al. Locomotor pattern in the adult zebrafish spinal cord in vitro. , 2008, Journal of neurophysiology.
[63] W. B. Lindquist,et al. Continuous shifts in the active set of spinal interneurons during changes in locomotor speed , 2008, Nature Neuroscience.
[64] Keith T. Sillar,et al. Neuromodulation and developmental plasticity in the locomotor system of anuran amphibians during metamorphosis , 2008, Brain Research Reviews.
[65] J. Fetcho,et al. Using imaging and genetics in zebrafish to study developing spinal circuits in vivo , 2008, Developmental neurobiology.
[66] S. Grillner,et al. Simple cellular and network control principles govern complex patterns of motor behavior , 2009, Proceedings of the National Academy of Sciences.
[67] M. Goulding. Circuits controlling vertebrate locomotion: moving in a new direction , 2009, Nature Reviews Neuroscience.
[68] J. Fetcho,et al. Spinal Interneurons Differentiate Sequentially from Those Driving the Fastest Swimming Movements in Larval Zebrafish to Those Driving the Slowest Ones , 2009, The Journal of Neuroscience.
[69] S. Grillner,et al. Measured motion: searching for simplicity in spinal locomotor networks , 2009, Current Opinion in Neurobiology.
[70] Amy J Bastian,et al. Split-belt treadmill adaptation shows different functional networks for fast and slow human walking. , 2010, Journal of neurophysiology.