Coding Capacity of Purkinje Cells With Different Schemes of Morphological Reduction
暂无分享,去创建一个
Quan Wang | Lingling An | Jian K. Liu | Ran Wei | Huiyuan Duan | Qingqi Pei | Yuanhong Tang | Jian K. Liu | Qingqi Pei | Lingling An | Yuanhong Tang | Quan Wang | Ran Wei | Huiyuan Duan
[1] James C. Schaff,et al. Virtual NEURON: a strategy for merged biochemical and electrophysiological modeling , 2011, Journal of Computational Neuroscience.
[2] T. Sejnowski,et al. Learning and memory in the vestibulo-ocular reflex. , 1995, Annual review of neuroscience.
[3] Jacqueline N. Crawley,et al. Autistic-like behavior and cerebellar dysfunction in Purkinje cell Tsc1 mutant mice , 2012, Nature.
[4] R. L. Shreve. Infinite Topologically Random Channel Networks , 1967, The Journal of Geology.
[5] R. Yuste,et al. Morphological changes in dendritic spines associated with long-term synaptic plasticity. , 2001, Annual review of neuroscience.
[6] Addolorata Marasco,et al. Using Strahler's analysis to reduce up to 200-fold the run time of realistic neuron models , 2013, Scientific Reports.
[7] Erik De Schutter,et al. Dynamic synchronization of Purkinje cell simple spikes. , 2006, Journal of neurophysiology.
[8] Zhenyu Gao,et al. Distributed synergistic plasticity and cerebellar learning , 2012, Nature Reviews Neuroscience.
[9] T. Sejnowski,et al. LETTERS TO NATURE , 1996 .
[10] Ad Aertsen,et al. Regular Patterns in Cerebellar Purkinje Cell Simple Spike Trains , 2007, PloS one.
[11] Masao Ito. Control of mental activities by internal models in the cerebellum , 2008, Nature Reviews Neuroscience.
[12] E De Schutter,et al. Using realistic models to study synaptic integration in cerebellar Purkinje cells. , 1999, Reviews in the neurosciences.
[13] R. Horton. EROSIONAL DEVELOPMENT OF STREAMS AND THEIR DRAINAGE BASINS; HYDROPHYSICAL APPROACH TO QUANTITATIVE MORPHOLOGY , 1945 .
[14] Jian K. Liu,et al. Mechanisms and functional roles of glutamatergic synapse diversity in a cerebellar circuit , 2016, eLife.
[15] Vivien A. Casagrande,et al. Biophysics of Computation: Information Processing in Single Neurons , 1999 .
[16] Yutaka Hirata,et al. Direct Causality Between Single-Purkinje Cell Activities and Motor Learning Revealed by a Cerebellum–Machine Interface Utilizing VOR Adaptation Paradigm , 2012, The Cerebellum.
[17] Jennifer L Raymond,et al. Computational Principles of Supervised Learning in the Cerebellum. , 2018, Annual review of neuroscience.
[18] Timothy J. Ebner,et al. Modulation of sensory prediction error in Purkinje cells during visual feedback manipulations , 2018, Nature Communications.
[19] B. Barbour,et al. Adaptation of Granule Cell to Purkinje Cell Synapses to High-Frequency Transmission , 2012, The Journal of Neuroscience.
[20] Mukesh Dhamala,et al. Behavior-Related Pauses in Simple-Spike Activity of Mouse Purkinje Cells Are Linked to Spike Rate Modulation , 2012, The Journal of Neuroscience.
[21] L. Luo,et al. Cerebellar granule cells encode the expectation of reward , 2017, Nature.
[22] R. Harvey,et al. Number of parallel fiber synapses on an individual Purkinje cell in the cerebellum of the rat , 1988, The Journal of comparative neurology.
[23] George J Augustine,et al. The cerebellum linearly encodes whisker position during voluntary movement , 2016, eLife.
[24] Richard B. Ivry,et al. Consensus Paper: Roles of the Cerebellum in Motor Control—The Diversity of Ideas on Cerebellar Involvement in Movement , 2011, The Cerebellum.
[25] Mario Negrello,et al. Duration of Purkinje cell complex spikes increases with their firing frequency , 2015, Front. Cell. Neurosci..
[26] J. Bower,et al. An active membrane model of the cerebellar Purkinje cell. I. Simulation of current clamps in slice. , 1994, Journal of neurophysiology.
[27] Jonathan W. Pillow,et al. Time-rescaling methods for the estimation and assessment of non-Poisson neural encoding models , 2009, NIPS.
[28] Stefano Panzeri,et al. Modelling and analysis of local field potentials for studying the function of cortical circuits , 2013, Nature Reviews Neuroscience.
[29] Y Yarom,et al. Physiology, morphology and detailed passive models of guinea‐pig cerebellar Purkinje cells. , 1994, The Journal of physiology.
[30] D. Heck,et al. Cerebellar cortical output encodes temporal aspects of rhythmic licking movements and is necessary for normal licking frequency , 2010, The European journal of neuroscience.
[31] Timothy J Ebner,et al. Changes in Purkinje Cell Simple Spike Encoding of Reach Kinematics during Adaption to a Mechanical Perturbation , 2015, The Journal of Neuroscience.
[32] J. Bower,et al. An active membrane model of the cerebellar Purkinje cell II. Simulation of synaptic responses. , 1994, Journal of neurophysiology.
[33] Shogo Ohmae,et al. Climbing fibers encode a temporal-difference prediction error during cerebellar learning in mice , 2015, Nature Neuroscience.
[34] Mario Negrello,et al. Multiplexed coding by cerebellar Purkinje neurons , 2016, eLife.
[35] Richard Apps,et al. Heterogeneity of Purkinje cell simple spike–complex spike interactions: zebrin‐ and non‐zebrin‐related variations , 2017, The Journal of physiology.
[36] Yan Zhu,et al. The postnatal development of refractory periods and threshold potentials at cerebellar Purkinje neurons , 2006, Brain Research.
[37] M. Häusser,et al. Tonic Synaptic Inhibition Modulates Neuronal Output Pattern and Spatiotemporal Synaptic Integration , 1997, Neuron.
[38] M. Ito,et al. The modifiable neuronal network of the cerebellum. , 1984, The Japanese journal of physiology.
[39] Tim Gollisch,et al. Modeling Single-Neuron Dynamics and Computations: A Balance of Detail and Abstraction , 2006, Science.
[40] H. C. Hulscher,et al. Cerebellar LTD and Learning-Dependent Timing of Conditioned Eyelid Responses , 2003, Science.
[41] Dieter Jaeger,et al. No Parallel Fiber Volleys in the Cerebellar Cortex: Evidence from Cross-Correlation Analysis between Purkinje Cells in a Computer Model and in Recordings from Anesthetized Rats , 2003, Journal of Computational Neuroscience.
[42] Masao Ito. The Cerebellum: From Structure to Control , 1998, Trends in Neurosciences.
[43] Roy V. Sillitoe,et al. Molecular layer interneurons shape the spike activity of cerebellar Purkinje cells , 2018, Scientific Reports.
[44] Erik De Schutter,et al. Frontiers in Computational Neuroscience Calcium, Synaptic Plasticity and Intrinsic Homeostasis in Purkinje Neuron Models Materials and Methods Original Pc Model , 2022 .
[45] N. Barmack,et al. Functions of Interneurons in Mouse Cerebellum , 2008, The Journal of Neuroscience.
[46] Egidio D’Angelo,et al. Synaptic Activation of a Detailed Purkinje Cell Model Predicts Voltage-Dependent Control of Burst-Pause Responses in Active Dendrites , 2017, Front. Cell. Neurosci..
[47] Huxley Af,et al. A quantitative description of membrane current and its application to conduction and excitation in nerve. 1952. , 1990 .
[48] A. Fuchs,et al. The role of the cerebellum in voluntary eye movements. , 2001, Annual review of neuroscience.
[49] Dean V Buonomano,et al. Embedding Multiple Trajectories in Simulated Recurrent Neural Networks in a Self-Organizing Manner , 2009, The Journal of Neuroscience.
[50] Shigeo Watanabe,et al. Low-threshold potassium channels and a low-threshold calcium channel regulate Ca2+ spike firing in the dendrites of cerebellar Purkinje neurons: a modeling study , 2001, Brain Research.
[51] Nicolas Brunel,et al. Neuronal Morphology Generates High-Frequency Firing Resonance , 2015, The Journal of Neuroscience.
[52] David S. Zee,et al. Cerebellum and Ocular Motor Control , 2011, Front. Neur..
[53] Filippo Tempia,et al. Modulation, Plasticity and Pathophysiology of the Parallel Fiber-Purkinje Cell Synapse , 2016, Front. Synaptic Neurosci..
[54] Bartlett W. Mel,et al. Arithmetic of Subthreshold Synaptic Summation in a Model CA1 Pyramidal Cell , 2003, Neuron.
[55] P. Strick,et al. Cerebellum and nonmotor function. , 2009, Annual review of neuroscience.
[56] J. Delgado-García,et al. Role of Cerebellar Interpositus Nucleus in the Genesis and Control of Reflex and Conditioned Eyelid Responses , 2004, The Journal of Neuroscience.
[57] Uri Magaram,et al. Distinct responses of Purkinje neurons and roles of simple spikes during associative motor learning in larval zebrafish , 2017, eLife.
[58] N. Brunel,et al. Toward a Neurocentric View of Learning , 2017, Neuron.
[59] Timothy J. Ebner,et al. The Errors of Our Ways: Understanding Error Representations in Cerebellar-Dependent Motor Learning , 2015, The Cerebellum.
[60] Jian K. Liu,et al. Learning Rule of Homeostatic Synaptic Scaling: Presynaptic Dependent or Not , 2011, Neural Computation.
[61] Arnd Roth,et al. Automated optimization of a reduced layer 5 pyramidal cell model based on experimental data , 2012, Journal of Neuroscience Methods.
[62] Dieter Jaeger,et al. Cerebellar Purkinje Cells Generate Highly Correlated Spontaneous Slow-Rate Fluctuations , 2017, Front. Neural Circuits.
[63] Zayd M. Khaliq,et al. Axonal Propagation of Simple and Complex Spikes in Cerebellar Purkinje Neurons , 2005, The Journal of Neuroscience.
[64] Anthony N. Burkitt,et al. A Review of the Integrate-and-fire Neuron Model: I. Homogeneous Synaptic Input , 2006, Biological Cybernetics.
[65] M. Sheng,et al. Dentritic spines : structure, dynamics and regulation , 2001, Nature Reviews Neuroscience.
[66] Yutaka Hirata,et al. The vestibulo-ocular reflex as a model system for motor learning: what is the role of the cerebellum? , 2008, The Cerebellum.
[67] Laurentiu S. Popa,et al. Predictive and Feedback Performance Errors Are Signaled in the Simple Spike Discharge of Individual Purkinje Cells , 2012, The Journal of Neuroscience.
[68] Cian O'Donnell,et al. Stochastic Ion Channel Gating in Dendritic Neurons: Morphology Dependence and Probabilistic Synaptic Activation of Dendritic Spikes , 2010, PLoS Comput. Biol..
[69] Emery N. Brown,et al. The Time-Rescaling Theorem and Its Application to Neural Spike Train Data Analysis , 2002, Neural Computation.
[70] Anthony N. Burkitt,et al. A review of the integrate-and-fire neuron model: II. Inhomogeneous synaptic input and network properties , 2006, Biological Cybernetics.
[71] Oren Amsalem,et al. An efficient analytical reduction of nonlinear detailed neuron models , 2018, bioRxiv.
[72] Mark J Rapoport,et al. Evaluating the affective component of the cerebellar cognitive affective syndrome. , 2009, The Journal of neuropsychiatry and clinical neurosciences.
[73] W. Rall. Branching dendritic trees and motoneuron membrane resistivity. , 1959, Experimental neurology.
[74] Andreea C. Bostan,et al. The basal ganglia and the cerebellum: nodes in an integrated network , 2018, Nature Reviews Neuroscience.
[75] Beverley Clark,et al. Interneuron- and GABAA receptor-specific inhibitory synaptic plasticity in cerebellar Purkinje cells , 2015, Nature Communications.
[76] Ian Duguid,et al. Dendritic excitation–inhibition balance shapes cerebellar output during motor behaviour , 2016, Nature Communications.
[77] A. Hodgkin,et al. A quantitative description of membrane current and its application to conduction and excitation in nerve , 1952, The Journal of physiology.
[78] Sylvie Ricard-Blum,et al. Target-derived matricryptins organize cerebellar synapse formation through α3β1 integrins. , 2012, Cell reports.
[79] R. Ivry,et al. The neural representation of time , 2004, Current Opinion in Neurobiology.
[80] H. Sompolinsky,et al. Bistability of cerebellar Purkinje cells modulated by sensory stimulation , 2005, Nature Neuroscience.