Bridging the gap between striatal plasticity and learning

被引:45
作者
Perrin, Elodie [1 ,2 ]
Venance, Laurent [1 ,2 ]
机构
[1] Coll France, Ctr Interdisciplinary Res Biol, Labex Memolife, INSERM,U1050,CNRS,UMR7241, F-75005 Paris, France
[2] Univ Paris 06, ED 158, Paris, France
关键词
CORTICOSTRIATAL PLASTICITY; PROJECTION NEURONS; INDIRECT PATHWAYS; DEPENDENT PLASTICITY; SYNAPTIC PLASTICITY; SPIKE; ACQUISITION; INPUT; SENSORIMOTOR; SYNAPSES;
D O I
10.1016/j.conb.2018.09.007
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
The striatum, the main input nucleus of the basal ganglia, controls goal-directed behavior and procedural learning. Striatal projection neurons integrate glutamatergic inputs from cortex and thalamus together with neuromodulatory systems, and are subjected to plasticity. Striatal projection neurons exhibit bidirectional plasticity (LTP and LTD) when exposed to Hebbian paradigms. Importantly, correlative and even causal links between procedural learning and striatal plasticity have recently been shown. This short review summarizes the current view on striatal plasticity (with a focus on spike-timing-dependent plasticity), recent studies aiming at bridging in vivo skill acquisition and striatal plasticity, the temporal credit-assignment problem, and the gaps that remain to be filled.
引用
收藏
页码:104 / 112
页数:9
相关论文
共 81 条
[1]  
[Anonymous], FRONT SYNAPTIC NEURO
[2]   Evidence for a neural law of effect [J].
Athalye, Vivek R. ;
Santos, Fernando J. ;
Carmena, Jose M. ;
Costa, Rui M. .
SCIENCE, 2018, 359 (6379) :1024-1029
[3]   Advance cueing produces enhanced action-boundary patterns of spike activity in the sensorimotor striatum [J].
Barnes, Terra D. ;
Mao, Jian-Bin ;
Hu, Dan ;
Kubota, Yasuo ;
Dreyer, Anna A. ;
Stamoulis, Catherine ;
Brown, Emery N. ;
Graybiel, Ann M. .
JOURNAL OF NEUROPHYSIOLOGY, 2011, 105 (04) :1861-1878
[4]   Two-photon imaging in mice shows striosomes and matrix have overlapping but differential reinforcement-related responses [J].
Bloem, Bernard ;
Huda, Rafiq ;
Sur, Mriganka ;
Graybiel, Ann M. .
ELIFE, 2017, 6
[5]   Substance P Weights Striatal Dopamine Transmission Differently within the Striosome-Matrix Axis [J].
Brimblecombe, Katherine R. ;
Cragg, Stephanie J. .
JOURNAL OF NEUROSCIENCE, 2015, 35 (24) :9017-9023
[6]   Striatal Local Circuitry: A New Framework for Lateral Inhibition [J].
Burke, Dennis A. ;
Rotstein, Horacio G. ;
Alvarez, Veronica A. .
NEURON, 2017, 96 (02) :267-284
[7]   The corticostriatal projection: From synaptic plasticity to dysfunctions of the basal ganglia [J].
Calabresi, P ;
Pisani, A ;
Mercuri, NB ;
Bernardi, G .
TRENDS IN NEUROSCIENCES, 1996, 19 (01) :19-24
[8]   Direct and indirect pathways of basal ganglia: a critical reappraisal [J].
Calabresi, Paolo ;
Picconi, Barbara ;
Tozzi, Alessandro ;
Ghiglieri, Veronica ;
Di Filippo, Massimiliano .
NATURE NEUROSCIENCE, 2014, 17 (08) :1022-1030
[9]   Serotonergic Signaling Controls Input-Specific Synaptic Plasticity at Striatal Circuits [J].
Cavaccini, Anna ;
Gritti, Marta ;
Giorgi, Andrea ;
Locarno, Andrea ;
Heck, Nicolas ;
Migliarini, Sara ;
Bertero, Alice ;
Mereu, Maddalena ;
Margiani, Giulia ;
Trusel, Massimo ;
Catelani, Tiziano ;
Marotta, Roberto ;
De Luca, Maria Antonietta ;
Caboche, Jocelyne ;
Gozzi, Alessandro ;
Pasqualetti, Massimo ;
Tonini, Raffaella .
NEURON, 2018, 98 (04) :801-+
[10]   Molecular and cellular mechanisms of dopamine-mediated behavioral plasticity in the striatum [J].
Cerovic, Milica ;
d'Isa, Raffaele ;
Tonini, Raffaella ;
Brambilla, Riccardo .
NEUROBIOLOGY OF LEARNING AND MEMORY, 2013, 105 :63-80