Experience and activity-dependent maturation of perisomatic GABAergic innervation in primary visual cortex during a postnatal critical period

被引:473
作者
Chattopadhyaya, B
Di Cristo, G
Higashiyama, H
Knott, GW
Kuhlman, SJ
Welker, E
Huang, ZJ
机构
[1] Cold Spring Harbor Lab, Cold Spring Harbor, NY 11724 USA
[2] SUNY Stony Brook, Dept Neurobiol, Stony Brook, NY 11790 USA
[3] Univ Lausanne, Inst Biol Cellularie & Morphol, CH-1005 Lausanne, Switzerland
关键词
GABAergic; perisomatic synapse; visual cortex; critical period; experience; BAC transgenic;
D O I
10.1523/JNEUROSCI.1851-04.2004
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
The neocortical GABAergic network consists of diverse interneuron cell types that display distinct physiological properties and target their innervations to subcellular compartments of principal neurons. Inhibition directed toward the soma and proximal dendrites is crucial in regulating the output of pyramidal neurons, but the development of perisomatic innervation is poorly understood because of the lack of specific synaptic markers. In the primary visual cortex, for example, it is unknown whether, and to what extent, the formation and maturation of perisomatic synapses are intrinsic to cortical circuits or are regulated by sensory experience. Using bacterial artificial chromosome transgenic mice that label a defined class of perisomatic synapses with green fluorescent protein, here we show that perisomatic innervation developed during a protracted postnatal period after eye opening. Maturation of perisomatic innervation was significantly retarded by visual deprivation during the third, but not the fifth, postnatal week, implicating an important role for sensory input. To examine the role of cortical intrinsic mechanisms, we developed a method to visualize perisomatic synapses from single basket interneurons in cortical organotypic cultures. Characteristic perisomatic synapses formed through a stereotyped process, involving the extension of distinct terminal branches and proliferation of perisomatic boutons. Neuronal spiking in organotypic cultures was necessary for the proliferation of boutons and the extension, but not the maintenance, of terminal branches. Together, our results suggest that although the formation of perisomatic synapses is intrinsic to the cortex, visual experience can influence the maturation and pattern of perisomatic innervation during a postnatal critical period by modulating the level of neural activity within cortical circuits.
引用
收藏
页码:9598 / 9611
页数:14
相关论文
共 45 条
[1]   POSTNATAL-DEVELOPMENT OF AXOSOMATIC SYNAPSES IN THE RAT VISUAL-CORTEX - MORPHOGENESIS AND QUANTITATIVE-EVALUATION [J].
BAHR, S ;
WOLFF, JR .
JOURNAL OF COMPARATIVE NEUROLOGY, 1985, 233 (03) :405-420
[2]   THE EFFECTS OF DARK-REARING ON THE ELECTROPHYSIOLOGY OF THE RAT VISUAL-CORTEX [J].
BENEVENTO, LA ;
BAKKUM, BW ;
PORT, JD ;
COHEN, RS .
BRAIN RESEARCH, 1992, 572 (1-2) :198-207
[3]   GAMMA-AMINOBUTYRIC-ACID AND SOMATOSTATIN IMMUNOREACTIVITY IN THE VISUAL-CORTEX OF NORMAL AND DARK-REARED RATS [J].
BENEVENTO, LA ;
BAKKUM, BW ;
COHEN, RS .
BRAIN RESEARCH, 1995, 689 (02) :172-182
[4]  
Benson DL, 1996, J NEUROSCI, V16, P6424
[5]   Intact sorting, targeting, and clustering of γ-aminobutyric acid A receptor subtypes in hippocampal neurons in vitro [J].
Brünig, I ;
Scotti, E ;
Sidler, C ;
Fritschy, JM .
JOURNAL OF COMPARATIVE NEUROLOGY, 2002, 443 (01) :43-55
[6]   Effects of nerve growth factor on visual cortical plasticity require afferent electrical activity [J].
Caleo, M ;
Lodovichi, C ;
Maffei, L .
EUROPEAN JOURNAL OF NEUROSCIENCE, 1999, 11 (08) :2979-2984
[7]   Emx1 is a marker for pyramidal neurons of the cerebral cortex [J].
Chan, CH ;
Godinho, LN ;
Thomaidou, D ;
Tan, SS ;
Gulisano, M ;
Parnavelas, JG .
CEREBRAL CORTEX, 2001, 11 (12) :1191-1198
[8]   Development of rat CA1 neurones in acute versus organotypic slices:: role of experience in synaptic morphology and activity [J].
De Simoni, A ;
Griesinger, CB ;
Edwards, FA .
JOURNAL OF PHYSIOLOGY-LONDON, 2003, 550 (01) :135-147
[9]  
DICRISTO G, 2004, IN PRESS NAT NEUROSC
[10]   Activity-dependent development of spontaneous bioelectric activity in organotypic cultures of rat occipital cortex [J].
Echevarría, D ;
Albus, K .
DEVELOPMENTAL BRAIN RESEARCH, 2000, 123 (02) :151-164