A Central Role for Mixed Acetylcholine/GABA Transmission in Direction Coding in the Retina
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David J. Schwab | Gautam B. Awatramani | G. Awatramani | D. Schwab | Alex Hoggarth | Geoff deRosenroll | S. Sethuramanujam | Santhosh Sethuramanujam | Amanda J. McLaughlin | Geoffery deRosenroll | Alex Hoggarth
[1] H. Young,et al. GABA-like immunoreactivity in cholinergic amacrine cells of the rabbit retina , 1988, Brain Research.
[2] K. Naka,et al. S‐potentials from luminosity units in the retina of fish (Cyprinidae) , 1966, The Journal of physiology.
[3] Benjamin Sivyer,et al. Direction selectivity in the retina: symmetry and asymmetry in structure and function , 2012, Nature Reviews Neuroscience.
[4] P. Lukasiewicz,et al. Presynaptic Inhibition Modulates Spillover, Creating Distinct Dynamic Response Ranges of Sensory Output , 2006, Neuron.
[5] A. Haghighi,et al. Neuronal Nicotinic Acetylcholine Receptors Are Blocked by Intracellular Spermine in a Voltage-Dependent Manner , 1998, The Journal of Neuroscience.
[6] D. Copenhagen,et al. The contribution of NMDA and Non-NMDA receptors to the light-evoked input-output characteristics of retinal ganglion cells , 1993, Neuron.
[7] Marla B. Feller,et al. Cellular Mechanisms Underlying Spatiotemporal Features of Cholinergic Retinal Waves , 2012, The Journal of Neuroscience.
[8] M. Ariel,et al. Pharmacological analysis of directionally sensitive rabbit retinal ganglion cells , 1982, The Journal of physiology.
[9] Botond Roska,et al. Spatially asymmetric reorganization of inhibition establishes a motion-sensitive circuit , 2011, Nature.
[10] Masahito Yamagata,et al. SIDEKICK 2 DIRECTS FORMATION OF A RETINAL CIRCUIT THAT DETECTS DIFFERENTIAL MOTION , 2015, Nature.
[11] J. B. Demb,et al. NMDA Receptor Contributions to Visual Contrast Coding , 2010, Neuron.
[12] D. Copenhagen,et al. The relationship between light‐evoked synaptic excitation and spiking behaviour of salamander retinal ganglion cells. , 1995, The Journal of physiology.
[13] D. Kerschensteiner,et al. An excitatory amacrine cell detects object motion and provides feature-selective input to ganglion cells in the mouse retina , 2015, eLife.
[14] W. Taylor,et al. Inhibitory input to the direction-selective ganglion cell is saturated at low contrast. , 2015, Journal of neurophysiology.
[15] Jonathan B Demb,et al. Cellular Mechanisms for Direction Selectivity in the Retina , 2007, Neuron.
[16] N M Grzywacz,et al. Necessity of acetylcholine for retinal directionally selective responses to drifting gratings in rabbit , 1998, The Journal of physiology.
[17] Dimitar Kostadinov,et al. Protocadherin-dependent dendritic self-avoidance regulates neural connectivity and circuit function , 2015, eLife.
[18] A. Palacios,et al. Acetylcholine induces GABA release onto rod bipolar cells through heteromeric nicotinic receptors expressed in A17 amacrine cells , 2015, Front. Cell. Neurosci..
[19] V. Balasubramanian,et al. Lag normalization in an electrically coupled neural network , 2013, Nature Neuroscience.
[20] J. Diamond,et al. Imperfect Space Clamp Permits Electrotonic Interactions between Inhibitory and Excitatory Synaptic Conductances, Distorting Voltage Clamp Recordings , 2011, PloS one.
[21] B. Sabatini,et al. Corelease of acetylcholine and GABA from cholinergic forebrain neurons , 2015, eLife.
[22] S. Massey,et al. The light evoked release of acetylcholine from the rabbit retina iN vivo and its inhibition by γ‐aminobutyric acid , 1979, Journal of neurochemistry.
[23] M. Carandini,et al. Membrane Potential and Firing Rate in Cat Primary Visual Cortex , 2000, The Journal of Neuroscience.
[24] Helga Kolb,et al. Rod and Cone Pathways in the Inner Plexiform Layer of Cat Retina , 1974, Science.
[25] Kevin L. Briggman,et al. Wiring specificity in the direction-selectivity circuit of the retina , 2011, Nature.
[26] D. H. Root,et al. Role of Glutamatergic Projections from Ventral Tegmental Area to Lateral Habenula in Aversive Conditioning , 2014, The Journal of Neuroscience.
[27] F. Werblin,et al. Symmetric interactions within a homogeneous starburst cell network can lead to robust asymmetries in dendrites of starburst amacrine cells. , 2006, Journal of neurophysiology.
[28] K. Keyser,et al. Expression of Alpha 7 Nicotinic Acetylcholine Receptors by Bipolar, Amacrine, and Ganglion Cells of the Rabbit Retina , 2007, The journal of histochemistry and cytochemistry : official journal of the Histochemistry Society.
[29] F. Rieke,et al. Noise correlations improve response fidelity and stimulus encoding , 2010, Nature.
[30] J. Diamond,et al. NMDA Receptors Multiplicatively Scale Visual Signals and Enhance Directional Motion Discrimination in Retinal Ganglion Cells , 2016, Neuron.
[31] S. Bloomfield,et al. Tracer coupling pattern of amacrine and ganglion cells in the rabbit retina , 1997, The Journal of comparative neurology.
[32] D. I. Vaney,et al. Many diverse types of retinal neurons show tracer coupling when injected with biocytin or Neurobiotin , 1991, Neuroscience Letters.
[33] Alexander S. Ecker,et al. Population code in mouse V1 facilitates read-out of natural scenes through increased sparseness , 2014, Nature Neuroscience.
[34] S. Massey,et al. Pharmacology of directionally selective ganglion cells in the rabbit retina. , 1997, Journal of neurophysiology.
[35] Marla B. Feller,et al. Development of asymmetric inhibition underlying direction selectivity in the retina , 2011, Nature.
[36] M. Slaughter,et al. Properties of a Glutamatergic Synapse Controlling Information Output from Retinal Bipolar Cells , 2015, PloS one.
[37] Christophe D. Proulx,et al. GABA/glutamate co-release controls habenula output and is modified by antidepressant treatment , 2014, Science.
[38] D. Tolhurst,et al. Calculating the contrasts that retinal ganglion cells and LGN neurones encounter in natural scenes , 2000, Vision Research.
[39] Geoffrey A. Kerchner,et al. Silent synapses and the emergence of a postsynaptic mechanism for LTP , 2009, Nature Reviews Neuroscience.
[40] Frank S. Werblin,et al. Mechanisms and circuitry underlying directional selectivity in the retina , 2002, Nature.
[41] F. Amthor,et al. Nicotinic and muscarinic acetylcholine receptors shape ganglion cell response properties. , 2015, Journal of neurophysiology.
[42] G. Koelle,et al. Comparison of the localization of acetylcholinesterase and non‐specific cholinesterase activities in mammalian and avian retians , 1968, The Journal of comparative neurology.
[43] R. Miller,et al. Quinoxalines block the mechanism of directional selectivity in ganglion cells of the rabbit retina. , 1995, Proceedings of the National Academy of Sciences of the United States of America.
[44] H. Wässle,et al. Action and localization of acetylcholine in the cat retina. , 1987, Journal of neurophysiology.
[45] M. A. Raven,et al. Dendritic spread and functional coverage of starburst amacrine cells , 2007, The Journal of comparative neurology.
[46] S. Massey,et al. The cholinergic amacrine cells of rabbit retina receive on and off input: An analysis of [3H]-ACh release using 2-amino-4-phosphonobutyric acid (APB) and chloride free medium , 1983, Vision Research.
[47] Botond Roska,et al. The First Stage of Cardinal Direction Selectivity Is Localized to the Dendrites of Retinal Ganglion Cells , 2013, Neuron.
[48] W. R. Taylor,et al. Diverse Synaptic Mechanisms Generate Direction Selectivity in the Rabbit Retina , 2002, The Journal of Neuroscience.
[49] Bart G Borghuis,et al. Excitatory Synaptic Inputs to Mouse On-Off Direction-Selective Retinal Ganglion Cells Lack Direction Tuning , 2014, The Journal of Neuroscience.
[50] N M Grzywacz,et al. Facilitation in ON-OFF directionally selective ganglion cells of the rabbit retina. , 1993, Journal of neurophysiology.
[51] J. B. Demb,et al. NMDA and AMPA receptors contribute similarly to temporal processing in mammalian retinal ganglion cells , 2014, The Journal of physiology.
[52] H. Sebastian Seung,et al. Analogous Convergence of Sustained and Transient Inputs in Parallel On and Off Pathways for Retinal Motion Computation , 2016, Cell reports.
[53] Srinivas C. Turaga,et al. Space-time wiring specificity supports direction selectivity in the retina , 2014, Nature.
[54] F. Werblin,et al. Directional Selectivity Is Formed at Multiple Levels by Laterally Offset Inhibition in the Rabbit Retina , 2005, Neuron.
[55] H. Wässle,et al. Cholinergic amacrine cells of the rabbit retina contain glutamate decarboxylase and gamma-aminobutyrate immunoreactivity. , 1988, Proceedings of the National Academy of Sciences of the United States of America.
[56] W. Taylor,et al. Synaptic pathways that shape the excitatory drive in an OFF retinal ganglion cell. , 2012, Journal of neurophysiology.
[57] Wenzhi Sun,et al. Identification of ON–OFF direction‐selective ganglion cells in the mouse retina , 2005, The Journal of physiology.
[58] Wei Wei,et al. Conditional Knock-Out of Vesicular GABA Transporter Gene from Starburst Amacrine Cells Reveals the Contributions of Multiple Synaptic Mechanisms Underlying Direction Selectivity in the Retina , 2015, The Journal of Neuroscience.
[59] N M Grzywacz,et al. Inhibition in ON-OFF directionally selective ganglion cells of the rabbit retina. , 1993, Journal of neurophysiology.
[60] Seunghoon Lee,et al. Role of ACh-GABA Cotransmission in Detecting Image Motion and Motion Direction , 2010, Neuron.
[61] J. Diamond,et al. Subunit- and Pathway-Specific Localization of NMDA Receptors and Scaffolding Proteins at Ganglion Cell Synapses in Rat Retina , 2008, The Journal of Neuroscience.
[62] R. Gutiérrez,et al. Plasticity of the GABAergic Phenotype of the “Glutamatergic” Granule Cells of the Rat Dentate Gyrus , 2003, The Journal of Neuroscience.
[63] D. C. Gillespie,et al. Inhibitory synapses in the developing auditory system are glutamatergic , 2005, Nature Neuroscience.
[64] M. Mayer,et al. Structure-activity relationships for amino acid transmitter candidates acting at N-methyl-D-aspartate and quisqualate receptors , 1990, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[65] P. Detwiler,et al. Directionally selective calcium signals in dendrites of starburst amacrine cells , 2002, Nature.
[66] M. Feller,et al. Visual Stimulation Switches the Polarity of Excitatory Input to Starburst Amacrine Cells , 2014, Neuron.
[67] M. Tachibana,et al. A Key Role of Starburst Amacrine Cells in Originating Retinal Directional Selectivity and Optokinetic Eye Movement , 2001, Neuron.
[68] A. Borst,et al. Seeing Things in Motion: Models, Circuits, and Mechanisms , 2011, Neuron.
[69] G. Awatramani,et al. Dynamic Tuning of Electrical and Chemical Synaptic Transmission in a Network of Motion Coding Retinal Neurons , 2013, The Journal of Neuroscience.
[70] W. R. Taylor,et al. The role of starburst amacrine cells in visual signal processing , 2012, Visual Neuroscience.