Homeostatic Plasticity of Subcellular Neuronal Structures: From Inputs to Outputs
Tài liệu tham khảo
Cajal, 1995
Scott, 2001, How do dendrites take their shape?, Nat. Neurosci., 4, 359, 10.1038/86006
Debanne, 2004, Information processing in the axon, Nat. Rev. Neurosci., 5, 304, 10.1038/nrn1397
Chklovskii, 2004, Synaptic connectivity and neuronal morphology: two sides of the same coin, Neuron, 43, 609
Holtmaat, 2009, Experience-dependent structural synaptic plasticity in the mammalian brain, Nat. Rev. Neurosci., 10, 647, 10.1038/nrn2699
Caroni, 2012, Structural plasticity upon learning: regulation and functions, Nat. Rev. Neurosci., 13, 478, 10.1038/nrn3258
Kasai, 2010, Structural dynamics of dendritic spines in memory and cognition, Trends Neurosci., 33, 121, 10.1016/j.tins.2010.01.001
Nelson, 2008, Strength through diversity, Neuron, 60, 477, 10.1016/j.neuron.2008.10.020
Turrigiano, 2012, Homeostatic synaptic plasticity: local and global mechanisms for stabilizing neuronal function, Cold Spring Harb. Perspect. Biol., 4, a005736, 10.1101/cshperspect.a005736
Harris, 1989, Dendritic spines of CA 1 pyramidal cells in the rat hippocampus: serial electron microscopy with reference to their biophysical characteristics, J. Neurosci., 9, 2982, 10.1523/JNEUROSCI.09-08-02982.1989
Murthy, 2001, Inactivity produces increases in neurotransmitter release and synapse size, Neuron, 32, 673, 10.1016/S0896-6273(01)00500-1
Kay, 2011, Neuronal activity drives matching of pre- and postsynaptic function during synapse maturation, Nat. Neurosci., 14, 688, 10.1038/nn.2826
Lindskog, 2010, Postsynaptic GluA1 enables acute retrograde enhancement of presynaptic function to coordinate adaptation to synaptic inactivity, Proc. Natl Acad. Sci. U.S.A., 107, 21806, 10.1073/pnas.1016399107
Hardingham, 2010, Quantal analysis reveals a functional correlation between presynaptic and postsynaptic efficacy in excitatory connections from rat neocortex, J. Neurosci., 30, 1441, 10.1523/JNEUROSCI.3244-09.2010
Tokuoka, 2008, Activity-dependent coordination of presynaptic release probability and postsynaptic GluR2 abundance at single synapses, Proc. Natl Acad. Sci. U.S.A., 105, 14656, 10.1073/pnas.0805705105
Yuste, 2011, Dendritic spines and distributed circuits, Neuron, 71, 772, 10.1016/j.neuron.2011.07.024
Menon, 2013, Balanced synaptic impact via distance-dependent synapse distribution and complementary expression of AMPARs and NMDARs in hippocampal dendrites, Neuron, 80, 1451, 10.1016/j.neuron.2013.09.027
Trachtenberg, 2002, Long-term in vivo imaging of experience-dependent synaptic plasticity in adult cortex, Nature, 420, 788, 10.1038/nature01273
Hofer, 2009, Experience leaves a lasting structural trace in cortical circuits, Nature, 457, 313, 10.1038/nature07487
Hofer, 2006, Prior experience enhances plasticity in adult visual cortex, Nat. Neurosci., 9, 127, 10.1038/nn1610
Sawtell, 2003, NMDA receptor-dependent ocular dominance plasticity in adult visual cortex, Neuron, 38, 977, 10.1016/S0896-6273(03)00323-4
Turrigiano, 1998, Activity-dependent scaling of quantal amplitude in neocortical neurons, Nature, 391, 892, 10.1038/36103
Matsuzaki, 2001, Dendritic spine geometry is critical for AMPA receptor expression in hippocampal CA1 pyramidal neurons, Nat. Neurosci., 4, 1086, 10.1038/nn736
Béïque, 2006, Synapse-specific regulation of AMPA receptor function by PSD-95, Proc. Natl Acad. Sci. U.S.A., 103, 19535, 10.1073/pnas.0608492103
Zito, 2009, Rapid functional maturation of nascent dendritic spines, Neuron, 61, 247, 10.1016/j.neuron.2008.10.054
Keck, 2013, Synaptic scaling and homeostatic plasticity in the mouse visual cortex in vivo, Neuron, 80, 327, 10.1016/j.neuron.2013.08.018
Rabinowitch, 2008, Two opposing plasticity mechanisms pulling a single synapse, Trends Neurosci., 31, 377, 10.1016/j.tins.2008.05.005
Branco, 2008, Local dendritic activity sets release probability at hippocampal synapses, Neuron, 59, 475, 10.1016/j.neuron.2008.07.006
Hou, 2008, Homeostatic regulation of AMPA receptor expression at single hippocampal synapses, Proc. Natl Acad. Sci. U.S.A., 105, 775, 10.1073/pnas.0706447105
Keck, 2011, Loss of sensory input causes rapid structural changes of inhibitory neurons in adult mouse visual cortex, Neuron, 71, 869, 10.1016/j.neuron.2011.06.034
Keck, 2008, Massive restructuring of neuronal circuits during functional reorganization of adult visual cortex, Nat. Neurosci., 11, 1162, 10.1038/nn.2181
Holtmaat, 2006, Experience-dependent and cell-type-specific spine growth in the neocortex, Nature, 441, 979, 10.1038/nature04783
Gross, 2013, Recombinant probes for visualizing endogenous synaptic proteins in living neurons, Neuron, 78, 971, 10.1016/j.neuron.2013.04.017
Chen, 2012, Clustered dynamics of inhibitory synapses and dendritic spines in the adult neocortex, Neuron, 74, 361, 10.1016/j.neuron.2012.02.030
van Versendaal, 2012, Elimination of inhibitory synapses is a major component of adult ocular dominance plasticity, Neuron, 74, 374, 10.1016/j.neuron.2012.03.015
Kubota, 2007, Neocortical inhibitory terminals innervate dendritic spines targeted by thalamocortical afferents, J. Neurosci., 27, 1139, 10.1523/JNEUROSCI.3846-06.2007
Villa, 2016, Inhibitory synapses are repeatedly assembled and removed at persistent sites in vivo, Neuron, 89, 756, 10.1016/j.neuron.2016.01.010
Chiu, 2013, Compartmentalization of GABAergic inhibition by dendritic spines, Science, 340, 759, 10.1126/science.1234274
Xue, 2014, Equalizing excitation–inhibition ratios across visual cortical neurons, Nature, 511, 596, 10.1038/nature13321
Knott, 2002, Formation of dendritic spines with GABAergic synapses induced by whisker stimulation in adult mice, Neuron, 34, 265, 10.1016/S0896-6273(02)00663-3
Hayama, 2013, GABA promotes the competitive selection of dendritic spines by controlling local Ca2+ signaling, Nat. Neurosci., 16, 1409, 10.1038/nn.3496
De Paola, 2006, Cell type-specific structural plasticity of axonal branches and boutons in the adult neocortex, Neuron, 49, 861, 10.1016/j.neuron.2006.02.017
Stettler, 2006, Axons and synaptic boutons are highly dynamic in adult visual cortex, Neuron, 49, 877, 10.1016/j.neuron.2006.02.018
Yamahachi, 2009, Rapid axonal sprouting and pruning accompany functional reorganization in primary visual cortex, Neuron, 64, 719, 10.1016/j.neuron.2009.11.026
Marik, 2010, Axonal dynamics of excitatory and inhibitory neurons in somatosensory cortex, PLoS Biol., 8, e1000395, 10.1371/journal.pbio.1000395
Chen, 2011, Structural basis for the role of inhibition in facilitating adult brain plasticity, Nat. Neurosci., 14, 587, 10.1038/nn.2799
Carrillo, 2013, The long-term structural plasticity of cerebellar parallel fiber axons and its modulation by motor learning, J. Neurosci., 33, 8301, 10.1523/JNEUROSCI.3792-12.2013
Marik, 2014, Large-scale axonal reorganization of inhibitory neurons following retinal lesions, J. Neurosci., 34, 1625, 10.1523/JNEUROSCI.4345-13.2014
Chen, 2015, Subtype-specific plasticity of inhibitory circuits in motor cortex during motor learning, Nat. Neurosci., 18, 1109, 10.1038/nn.4049
Thiagarajan, 2005, Adaptation to synaptic inactivity in hippocampal neurons, Neuron, 47, 725, 10.1016/j.neuron.2005.06.037
Zhao, 2011, Homeostatic synaptic plasticity through changes in presynaptic calcium influx, J. Neurosci., 31, 7492, 10.1523/JNEUROSCI.6636-10.2011
Grubb, 2010, Activity-dependent relocation of the axon initial segment fine-tunes neuronal excitability, Nature, 465, 1070, 10.1038/nature09160
Kuba, 2010, Presynaptic activity regulates Na+ channel distribution at the axon initial segment, Nature, 465, 1075, 10.1038/nature09087
Kole, 2008, Action potential generation requires a high sodium channel density in the axon initial segment, Nat. Neurosci., 11, 178, 10.1038/nn2040
Baranauskas, 2013, Spatial mismatch between the Na+ flux and spike initiation in axon initial segment, Proc. Natl Acad. Sci. U.S.A., 110, 4051, 10.1073/pnas.1215125110
Bender, 2012, The physiology of the axon initial segment, Annu. Rev. Neurosci., 35, 249, 10.1146/annurev-neuro-062111-150339
Evans, 2013, Calcineurin signaling mediates activity-dependent relocation of the axon initial segment, J. Neurosci., 33, 6950, 10.1523/JNEUROSCI.0277-13.2013
Muir, 2014, Plasticity of GABAA receptor diffusion dynamics at the axon initial segment, Front. Cell. Neurosci., 8, 151, 10.3389/fncel.2014.00151
Wefelmeyer, 2015, Activity-dependent mismatch between axo-axonic synapses and the axon initial segment controls neuronal output, Proc. Natl Acad. Sci. U.S.A., 112, 9757, 10.1073/pnas.1502902112
Gulledge, 2016, Neuron morphology influences axon initial segment plasticity, eNeuro, 10.1523/ENEURO.0085-15.2016
Hamada, 2015, Myelin loss and axonal ion channel adaptations associated with gray matter neuronal hyperexcitability, J. Neurosci., 35, 7272, 10.1523/JNEUROSCI.4747-14.2015
Tomassy, 2014, Distinct profiles of myelin distribution along single axons of pyramidal neurons in the neocortex, Science, 344, 319, 10.1126/science.1249766
Chand, 2015, A distinct subtype of dopaminergic interneuron displays inverted structural plasticity at the axon initial segment, J. Neurosci., 35, 1573, 10.1523/JNEUROSCI.3515-14.2015
Inan, 2014, The chandelier cell, form and function, Curr. Opin. Neurobiol., 26, 142, 10.1016/j.conb.2014.01.009
Woodruff, 2009, Depolarizing effect of neocortical chandelier neurons, Front. Neural Circuits, 3, 15, 10.3389/neuro.04.015.2009
Woodruff, 2011, State-dependent function of neocortical chandelier cells, J. Neurosci., 31, 17872, 10.1523/JNEUROSCI.3894-11.2011
Taniguchi, 2012, The spatial and temporal origin of chandelier cells in mouse neocortex, Science, 339, 70, 10.1126/science.1227622
Marder, 2006, Variability, compensation and homeostasis in neuron and network function, Nat. Rev. Neurosci., 7, 563, 10.1038/nrn1949
Migliore, 2005, Opinion: an integrated approach to classifying neuronal phenotypes, Nat. Rev. Neurosci., 6, 810, 10.1038/nrn1769
Petilla Interneuron Nomenclature Group, 2008, Petilla terminology: nomenclature of features of GABAergic interneurons of the cerebral cortex, Nat. Rev. Neurosci., 9, 557, 10.1038/nrn2402
Spruston, 2008, Pyramidal neurons: dendritic structure and synaptic integration, Nat. Rev. Neurosci., 9, 206, 10.1038/nrn2286
Chen, 2014, Spatiotemporal dynamics of dendritic spines in the living brain, Front. Neuroanat., 8, 28, 10.3389/fnana.2014.00028
Grutzendler, 2002, Long-term dendritic spine stability in the adult cortex, Nature, 420, 812, 10.1038/nature01276
Attardo, 2015, Impermanence of dendritic spines in live adult CA1 hippocampus, Nature, 523, 592, 10.1038/nature14467
Zuo, 2005, Development of long-term dendritic spine stability in diverse regions of cerebral cortex, Neuron, 46, 181, 10.1016/j.neuron.2005.04.001
Mostany, 2013, Altered synaptic dynamics during normal brain aging, J. Neurosci., 33, 4094, 10.1523/JNEUROSCI.4825-12.2013
King, 2014, A unique ion channel clustering domain on the axon initial segment of mammalian neurons, J. Comp. Neurol., 522, 2594, 10.1002/cne.23551
Xu, 2013, Actin, spectrin, and associated proteins form a periodic cytoskeletal structure in axons, Science, 339, 452, 10.1126/science.1232251
D’Este, 2015, STED nanoscopy reveals the ubiquity of subcortical cytoskeleton periodicity in living neurons, Cell Rep., 10, 1246, 10.1016/j.celrep.2015.02.007
Zhong, 2014, Developmental mechanism of the periodic membrane skeleton in axons, Elife, 10.7554/eLife.04581
Leterrier, 2015, Nanoscale architecture of the axon initial segment reveals an organized and robust scaffold, Cell Rep., 13, 2781, 10.1016/j.celrep.2015.11.051
