The Same Hippocampal CA1 Population Simultaneously Codes Temporal Information over Multiple Timescales
暂无分享,去创建一个
[1] J. Wilder. The Origins of Intelligence in Children , 1954 .
[2] W. Scoville,et al. LOSS OF RECENT MEMORY AFTER BILATERAL HIPPOCAMPAL LESIONS , 1957, Journal of neurology, neurosurgery, and psychiatry.
[3] J. O'Keefe,et al. The hippocampus as a spatial map. Preliminary evidence from unit activity in the freely-moving rat. , 1971, Brain research.
[4] P. L. Adams. THE ORIGINS OF INTELLIGENCE IN CHILDREN , 1976 .
[5] Lucien T. Thompson,et al. Long-term stability of the place-field activity of single units recorded from the dorsal hippocampus of freely behaving rats , 1990, Brain Research.
[6] J. Hodges. Memory, Amnesia and the Hippocampal System , 1995 .
[7] W B Levy,et al. A sequence predicting CA3 is a flexible associator that learns and uses context to solve hippocampal‐like tasks , 1996, Hippocampus.
[8] K. Deisseroth,et al. CREB Phosphorylation and Dephosphorylation: A Ca2+- and Stimulus Duration–Dependent Switch for Hippocampal Gene Expression , 1996, Cell.
[9] M. Hasselmo,et al. The hippocampus as an associator of discontiguous events , 1998, Trends in Neurosciences.
[10] C Kentros,et al. Abolition of long-term stability of new hippocampal place cell maps by NMDA receptor blockade. , 1998, Science.
[11] H. Eichenbaum,et al. Critical role of the hippocampus in memory for sequences of events , 2002, Nature Neuroscience.
[12] Marc W Howard,et al. The temporal context model in spatial navigation and relational learning: toward a common explanation of medial temporal lobe function across domains. , 2005, Psychological review.
[13] G. Buzsáki. Rhythms of the brain , 2006 .
[14] Marc W Howard,et al. Gradual Changes in Hippocampal Activity Support Remembering the Order of Events , 2007, Neuron.
[15] Dorothy Tse,et al. References and Notes Supporting Online Material Materials and Methods Figs. S1 to S5 Tables S1 to S3 Electron Impact (ei) Mass Spectra Chemical Ionization (ci) Mass Spectra References Schemas and Memory Consolidation Research Articles Research Articles Research Articles Research Articles , 2022 .
[16] M. Moser,et al. Understanding memory through hippocampal remapping , 2008, Trends in Neurosciences.
[17] Asohan Amarasingham,et al. Internally Generated Cell Assembly Sequences in the Rat Hippocampus , 2008, Science.
[18] A D Redish,et al. Prediction, sequences and the hippocampus , 2009, Philosophical Transactions of the Royal Society B: Biological Sciences.
[19] Alcino J. Silva,et al. CREB regulates excitability and the allocation of memory to subsets of neurons in the amygdala , 2009, Nature Neuroscience.
[20] C. Ranganath,et al. Prefrontal and Medial Temporal Lobe Activity at Encoding Predicts Temporal Context Memory , 2010, The Journal of Neuroscience.
[21] H. Eichenbaum,et al. Hippocampal “Time Cells” Bridge the Gap in Memory for Discontiguous Events , 2011, Neuron.
[22] P. Lewis,et al. Overlapping memory replay during sleep builds cognitive schemata , 2011, Trends in Cognitive Sciences.
[23] A. Gamal,et al. Miniaturized integration of a fluorescence microscope , 2011, Nature Methods.
[24] Asohan Amarasingham,et al. Hippocampus Internally Generated Cell Assembly Sequences in the Rat , 2011 .
[25] K. Deisseroth,et al. Optogenetic stimulation of a hippocampal engram activates fear memory recall , 2012, Nature.
[26] Fraser T. Sparks,et al. Neuronal code for extended time in the hippocampus , 2012, Proceedings of the National Academy of Sciences.
[27] H. Eichenbaum,et al. Distinct Hippocampal Time Cell Sequences Represent Odor Memories in Immobilized Rats , 2013, The Journal of Neuroscience.
[28] Howard Eichenbaum,et al. The hippocampus, time, and memory across scales. , 2013, Journal of experimental psychology. General.
[29] Benjamin J. Kraus,et al. Hippocampal “Time Cells”: Time versus Path Integration , 2013, Neuron.
[30] Lacey J. Kitch,et al. Long-term dynamics of CA1 hippocampal place codes , 2013, Nature Neuroscience.
[31] Blake S. Porter,et al. Hippocampal Representation of Related and Opposing Memories Develop within Distinct, Hierarchically Organized Neural Schemas , 2014, Neuron.
[32] Lila Davachi,et al. Similarity Breeds Proximity: Pattern Similarity within and across Contexts Is Related to Later Mnemonic Judgments of Temporal Proximity , 2014, Neuron.
[33] Denise J. Cai,et al. Synaptic tagging during memory allocation , 2014, Nature Reviews Neuroscience.
[34] Nitish Srivastava,et al. Dropout: a simple way to prevent neural networks from overfitting , 2014, J. Mach. Learn. Res..
[35] Upinder S Bhalla,et al. CA1 cell activity sequences emerge after reorganization of network correlation structure during associative learning , 2014, eLife.
[36] H. Eichenbaum. Time cells in the hippocampus: a new dimension for mapping memories , 2014, Nature Reviews Neuroscience.
[37] Qian Du,et al. A Unified Mathematical Framework for Coding Time, Space, and Sequences in the Hippocampal Region , 2014, The Journal of Neuroscience.
[38] Rosa Cossart,et al. Internally Recurring Hippocampal Sequences as a Population Template of Spatiotemporal Information , 2015, Neuron.
[39] Yaniv Ziv,et al. Hippocampal ensemble dynamics timestamp events in long-term memory , 2015, eLife.
[40] Lila Davachi,et al. How the hippocampus preserves order: the role of prediction and context , 2015, Trends in Cognitive Sciences.
[41] S. Romani,et al. Theta sequences are essential for internally generated hippocampal firing fields , 2014, Nature Neuroscience.
[42] Daniel A. Dombeck,et al. Calcium transient prevalence across the dendritic arbor predicts place field properties , 2014, Nature.
[43] Troy A. Smith,et al. Human hippocampus represents space and time during retrieval of real-world memories , 2015, Proceedings of the National Academy of Sciences.
[44] Benjamin F. Grewe,et al. Cellular Level Brain Imaging in Behaving Mammals: An Engineering Approach , 2015, Neuron.
[45] Mark J. Schnitzer,et al. Impermanence of dendritic spines in live adult CA1 hippocampus , 2015, Nature.
[46] Marc W Howard,et al. A Simple biophysically plausible model for long time constants in single neurons , 2015, Hippocampus.
[47] Marc W Howard,et al. A distributed representation of internal time. , 2015, Psychological review.
[48] James M. Otis,et al. Visualization of cortical, subcortical and deep brain neural circuit dynamics during naturalistic mammalian behavior with head-mounted microscopes and chronically implanted lenses , 2016, Nature Protocols.
[49] Andres D. Grosmark,et al. Diversity in neural firing dynamics supports both rigid and learned hippocampal sequences , 2016, Science.
[50] Charan Ranganath,et al. The hippocampus: a special place for time , 2016, Annals of the New York Academy of Sciences.
[51] Paul W. Frankland,et al. Competition between engrams influences fear memory formation and recall , 2016, Science.
[52] Alcino J. Silva,et al. A shared neural ensemble links distinct contextual memories encoded close in time , 2016, Nature.
[53] Anna R. Chambers,et al. A stable brain from unstable components: Emerging concepts and implications for neural computation , 2017, Neuroscience.
[54] H. Eichenbaum,et al. Medial Entorhinal Cortex Selectively Supports Temporal Coding by Hippocampal Neurons , 2017, Neuron.
[55] Claudia Clopath,et al. Variance and invariance of neuronal long-term representations , 2017, Philosophical Transactions of the Royal Society B: Biological Sciences.
[56] Daniel A. Dombeck,et al. Increased Prevalence of Calcium Transients across the Dendritic Arbor during Place Field Formation , 2017, Neuron.
[57] Katie C. Bittner,et al. Behavioral time scale synaptic plasticity underlies CA1 place fields , 2017, Science.
[58] Kaoru Inokuchi,et al. Overlapping memory trace indispensable for linking, but not recalling, individual memories , 2017, Science.
[59] Shigeyoshi Fujisawa,et al. Temporal and Rate Coding for Discrete Event Sequences in the Hippocampus , 2017, Neuron.
[60] H. Eichenbaum. On the Integration of Space, Time, and Memory , 2017, Neuron.