Homeostatic Presynaptic Suppression of Neuronal Network Bursts

被引:16
作者
Cohen, Dror [1 ]
Segal, Menahem [1 ]
机构
[1] Wiezmann Inst, Dept Neurobiol, IL-76100 Rehovot, Israel
基金
以色列科学基金会;
关键词
HIPPOCAMPAL-NEURONS; TRANSMITTER RELEASE; SYNAPTOTAGMIN-I; PLASTICITY; MECHANISMS; SYNAPSE; REVERBERATION; INACTIVITY; RECEPTORS; BLOCKADE;
D O I
10.1152/jn.91085.2008
中图分类号
Q189 [神经科学];
学科分类号
071006 [神经生物学];
摘要
Cohen D, Segal M. Homeostatic presynaptic suppression of neuronal network bursts. J Neurophysiol 101: 2077-2088, 2009. First published January 28, 2009; doi:10.1152/jn.91085.2008. Spontaneous synchronized bursts of activity play an essential role in the maturation and plasticity of neuronal networks. To investigate the cellular properties that enable spontaneous network activity, we used dissociated cultures of hippocampal neurons that express prolonged network activity bursts. Acute exposure to a low concentration of N-methyl-D-aspartate ( NMDA) caused an increase in spontaneous firing rates and intracellular calcium concentration ([Ca2+]i). However, in the course of a chronic (>1 day) exposure to NMDA, [Ca2+]i recovered back to normal baseline levels, and only sporadic asynchronous calcium transients were detected. Spontaneous network bursts were still absent 1 h after the removal of NMDA, indicating a persistent downregulation of network activity, which did recover eventually 2 days later. This effect of NMDA was activity-dependent as it was blocked by co-application of tetrodotoxin (TTX). The chronic NMDA-treated neurons expressed normal morphology and active membrane properties as well as spontaneous miniature excitatory postsynaptic currents and postsynaptic reactivity to glutamate. However, in response to trains of afferent stimulation in paired recordings, the treated neurons expressed synaptic depression as opposed to synaptic potentiation seen in control cells. Also, treated neurons did not respond to low-intensity electrical field stimulation as did control cells. Finally, Western blot analysis revealed that chronic exposure to NMDA altered presynaptic but not postsynaptic protein expression patterns, suggesting a presynaptic locus of effect. Thus a long-lasting increase in activity downregulates neurotransmitter release to prevent over-excitation of the network and, consequently, blocks the generation of network bursts.
引用
收藏
页码:2077 / 2088
页数:12
相关论文
共 33 条
[1]
Molecular mechanisms of glutamate-dependent neurodegeneration in ischemia and traumatic brain injury [J].
Arundine, M ;
Tymianski, M .
CELLULAR AND MOLECULAR LIFE SCIENCES, 2004, 61 (06) :657-668
[2]
Chronic blockade of glutamate receptors enhances presynaptic release and downregulates the interaction between synaptophysin-synaptobrevin-vesicle-associated membrane protein 2 [J].
Bacci, A ;
Coco, S ;
Pravettoni, E ;
Schenk, U ;
Armano, S ;
Frassoni, C ;
Verderio, C ;
De Camilli, P ;
Matteoli, M .
JOURNAL OF NEUROSCIENCE, 2001, 21 (17) :6588-6596
[3]
Synaptic and intrinsic mechanisms shape synchronous oscillations in hippocampal neurons in culture [J].
Bacci, A ;
Verderio, C ;
Pravettoni, E ;
Matteoli, M .
EUROPEAN JOURNAL OF NEUROSCIENCE, 1999, 11 (02) :389-397
[4]
Doublecortin supports the development of dendritic arbors in primary hippocampal neurons [J].
Cohen, Dror ;
Segal, Menahem ;
Reiner, Orly .
DEVELOPMENTAL NEUROSCIENCE, 2008, 30 (1-3) :187-199
[5]
Plasticity and repair in the post-ischemic brain [J].
Di Filippo, Massimiliano ;
Tozzi, Alessandro ;
Costa, Cinzia ;
Belcastro, Vincenzo ;
Michela, Tantucci ;
Picconi, Barbara ;
Calabresi, Paolo .
NEUROPHARMACOLOGY, 2008, 55 (03) :353-362
[6]
Mechanism of graded persistent cellular activity of entorhinal cortex layer V neurons [J].
Fransén, E ;
Tahvildari, B ;
Egorov, AV ;
Hasselmo, ME ;
Alonso, AA .
NEURON, 2006, 49 (05) :735-746
[7]
Postsynaptic contributions to hippocampal network hyperexcitability induced by chronic activity blockade in vivo [J].
Galvan, CD ;
Wenzel, JH ;
Dineley, KT ;
Lam, TT ;
Schwartzkroin, PA ;
Sweatt, JD ;
Swann, JW .
EUROPEAN JOURNAL OF NEUROSCIENCE, 2003, 18 (07) :1861-1872
[8]
SYNAPTOTAGMIN-I - A MAJOR CA2+ SENSOR FOR TRANSMITTER RELEASE AT A CENTRAL SYNAPSE [J].
GEPPERT, M ;
GODA, Y ;
HAMMER, RE ;
LI, C ;
ROSAHL, TW ;
STEVENS, CF ;
SUDHOF, TC .
CELL, 1994, 79 (04) :717-727
[9]
The yin and yang of NMDA receptor signalling [J].
Hardingham, GE ;
Bading, H .
TRENDS IN NEUROSCIENCES, 2003, 26 (02) :81-89
[10]
Synapse-specific adaptations to inactivity in hippocampal circuits achieve homeostatic gain control while dampening network reverberation [J].
Kim, Jimok ;
Tsien, Richard W. .
NEURON, 2008, 58 (06) :925-937