Dendritic calcium accumulation associated with direction-selective adaptation in visual motion-sensitive neurons in vivo.
暂无分享,去创建一个
M Egelhaaf | V Dürr | V. Dürr | M. Egelhaaf | R. Kurtz | R Kurtz
[1] Alexander Borst,et al. Principles of visual motion detection , 1989, Trends in Neurosciences.
[2] A. Borst,et al. Dendritic integration and its role in computing image velocity. , 1998, Science.
[3] A. Borst,et al. A look into the cockpit of the fly: visual orientation, algorithms, and identified neurons , 1993, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[4] M Egelhaaf,et al. Neural circuit tuning fly visual neurons to motion of small objects. II. Input organization of inhibitory circuit elements revealed by electrophysiological and optical recording techniques. , 1993, Journal of neurophysiology.
[5] M Egelhaaf,et al. Calcium accumulation in visual interneurons of the fly: stimulus dependence and relationship to membrane potential. , 1995, Journal of neurophysiology.
[6] Mandyam V. Srinivasan,et al. Motion detection in insect orientation and navigation , 1999, Vision Research.
[7] L. Zhang,et al. Differential time-course of slow afterhyperpolarizations and associated Ca2+ transients in rat CA1 pyramidal neurons: further dissociation by Ca2+ buffer , 1999, Neuroscience.
[8] Hendrik Eckert,et al. The centrifugal horizontal cells in the lobula plate of the blowfly, Phaenicia sericata , 1983 .
[9] Peter Wenderoth,et al. Adaptation to temporal modulation can enhance differential speed sensitivity , 1999, Vision Research.
[10] Anna Menini,et al. Calcium signalling and regulation in olfactory neurons , 1999, Current Opinion in Neurobiology.
[11] A. Borst,et al. Direction selectivity of blowfly motion-sensitive neurons is computed in a two-stage process. , 1990, Proceedings of the National Academy of Sciences of the United States of America.
[12] M. Cynader,et al. The time course of direction-selective adaptation in simple and complex cells in cat striate cortex. , 1993, Journal of neurophysiology.
[13] A. Dale,et al. Visual motion aftereffect in human cortical area MT revealed by functional magnetic resonance imaging , 1995, Nature.
[14] Pankaj Sah,et al. Ca2+-activated K+ currents in neurones: types, physiological roles and modulation , 1996, Trends in Neurosciences.
[15] A. Borst,et al. Transient and steady-state response properties of movement detectors. , 1989, Journal of the Optical Society of America. A, Optics and image science.
[16] M. Cynader,et al. Direction-selective adaptation in simple and complex cells in cat striate cortex. , 1988, Journal of neurophysiology.
[17] F. A. Miles,et al. Visual Motion and Its Role in the Stabilization of Gaze , 1992 .
[18] D. G. Stavenga,et al. Na+/ K+-pump activity in photoreceptors of the blowfly Calliphora : a model analysis based on membrane potential measurements , 1997, Journal of Comparative Physiology A.
[19] S. Petersen,et al. Direction-specific adaptation in area MT of the owl monkey , 1985, Brain Research.
[20] D. McCormick,et al. Functional and ionic properties of a slow afterhyperpolarization in ferret perigeniculate neurons in vitro. , 1998, Journal of neurophysiology.
[21] C.W.G. CLIFFORD,et al. A Model of Temporal Adaptation in Fly Motion Vision , 1996, Vision Research.
[22] R. Chitwood,et al. Calcium-dependent spike-frequency accommodation in hippocampal CA3 nonpyramidal neurons. , 1998, Journal of neurophysiology.
[23] Martin Egelhaaf,et al. Neural Mechanisms of Visual Course Control in Insects , 1989 .
[24] P. Schwindt,et al. Long-lasting reduction of excitability by a sodium-dependent potassium current in cat neocortical neurons. , 1989, Journal of neurophysiology.
[25] M Egelhaaf,et al. In vivo imaging of calcium accumulation in fly interneurons as elicited by visual motion stimulation. , 1992, Proceedings of the National Academy of Sciences of the United States of America.
[26] W. Reichardt,et al. Computational structure of a biological motion-detection system as revealed by local detector analysis in the fly's nervous system. , 1989, Journal of the Optical Society of America. A, Optics and image science.
[27] A. Borst,et al. Dendritic Computation of Direction Selectivity and Gain Control in Visual Interneurons , 1997, The Journal of Neuroscience.
[28] C. Clifford,et al. Psychophysics of motion adaptation parallels insect electrophysiology , 1996, Current Biology.
[29] S. Laughlin,et al. Adaptation of the motion-sensitive neuron H1 is generated locally and governed by contrast frequency , 1985, Proceedings of the Royal Society of London. Series B. Biological Sciences.
[30] P A Fuchs,et al. Mechanisms of hair cell tuning. , 1999, Annual review of physiology.
[31] R. Hengstenberg,et al. Estimation of self-motion by optic flow processing in single visual interneurons , 1996, Nature.
[32] C W Clifford,et al. Adaptation to visual motion in directional neurons of the nucleus of the optic tract. , 1998, Journal of neurophysiology.
[33] Alexander Borst,et al. Synapse distribution on VCH, an inhibitory, motion‐sensitive interneuron in the fly visual system , 1997, The Journal of comparative neurology.
[34] Pankaj Sah,et al. Photolytic Manipulation of [Ca2+]iReveals Slow Kinetics of Potassium Channels Underlying the Afterhyperpolarization in Hipppocampal Pyramidal Neurons , 1999, The Journal of Neuroscience.
[35] A. Borst,et al. Neural circuit tuning fly visual interneurons to motion of small objects. I. Dissection of the circuit by pharmacological and photoinactivation techniques. , 1993, Journal of neurophysiology.
[36] F. Lo,et al. Physiological properties of neurons in the optic layer of the rat's superior colliculus. , 1998, Journal of neurophysiology.
[37] Michael R. Ibbotson,et al. Response Properties and Adaptation of Neurones Sensitive to Image Motion in the Butterfly Papilio Aegeus , 1991 .
[38] A. Pantle,et al. Physiological Basis of Motion Perception , 1978 .
[39] A. Saul,et al. Adaptation in single units in visual cortex: The tuning of aftereffects in the temporal domain , 1989, Visual Neuroscience.
[40] K. Hausen. Functional Characterization and Anatomical Identification of Motion Sensitive Neurons in the Lobula plate of the Blowfly Calliphora erythrocephala , 1976 .
[41] R. Vautin,et al. Responses of single cells in cat visual cortex to prolonged stimulus movement: neural correlates of visual aftereffects. , 1977, Journal of neurophysiology.
[42] M Egelhaaf,et al. Movement detection in arthropods. , 1993, Reviews of oculomotor research.
[43] M Egelhaaf,et al. In vivo calcium accumulation in presynaptic and postsynaptic dendrites of visual interneurons. , 1999, Journal of neurophysiology.
[44] M. Sanders. Handbook of Sensory Physiology , 1975 .
[45] Y. Koutalos,et al. Regulation of sensitivity in vertebrate rod photoreceptors by calcium , 1996, Trends in Neurosciences.
[46] George Adrian Horridge,et al. The H1 Neuron Measures Change in Velocity Irrespective of Contrast Frequency, Mean Velocity or Velocity Modulation Frequency , 1991 .
[47] Robert A. Harris,et al. Adaptation and the temporal delay filter of fly motion detectors , 1999, Vision Research.
[48] K. Hausen. The Lobula-Complex of the Fly: Structure, Function and Significance in Visual Behaviour , 1984 .
[49] J. Nicholls,et al. Conductance changes, an electrogenic pump and the hyperpolarization of leech neurones following impulses , 1973, The Journal of physiology.
[50] H. Barlow,et al. Evidence for a Physiological Explanation of the Waterfall Phenomenon and Figural After-effects , 1963, Nature.