Astroglial Glutamate Signaling and Uptake in the Hippocampus

被引:151
作者
Rose, Christine R. [1 ]
Felix, Lisa [1 ]
Zeug, Andre [2 ]
Dietrich, Dirk [3 ]
Reiner, Andreas [4 ]
Henneberger, Christian [5 ,6 ,7 ]
机构
[1] Heinrich Heine Univ Duesseldorf, Fac Math & Nat Sci, Inst Neurobiol, Dusseldorf, Germany
[2] Hannover Med Sch, Cellular Neurophysiol, Hannover, Germany
[3] Univ Bonn, Med Sch, Dept Neurosurg, Bonn, Germany
[4] Ruhr Univ Bochum, Fac Biol & Biotechnol, Cellular Neurobiol, Bochum, Germany
[5] Univ Bonn, Med Sch, Inst Cellular Neurosci, Bonn, Germany
[6] German Ctr Degenerat Dis DZNE, Bonn, Germany
[7] UCL, Inst Neurol, London, England
来源
FRONTIERS IN MOLECULAR NEUROSCIENCE | 2018年 / 10卷
关键词
astrocyte; glutamate receptor; glutamate transport; tripartite synapse; calcium; morphology; LONG-TERM POTENTIATION; SYNAPTICALLY RELEASED GLUTAMATE; NMDA RECEPTOR ACTIVATION; AMINO-ACID TRANSPORTERS; IN-SITU RESPOND; GLIAL-CELLS; NEURONAL-ACTIVITY; CALCIUM WAVES; UP-REGULATION; TIME-COURSE;
D O I
10.3389/fnmol.2017.00451
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
Astrocytes have long been regarded as essentially unexcitable cells that do not contribute to active signaling and information processing in the brain. Contrary to this classical view, it is now firmly established that astrocytes can specifically respond to glutamate released from neurons. Astrocyte glutamate signaling is initiated upon binding of glutamate to ionotropic and/or metabotropic receptors, which can result in calcium signaling, a major form of glial excitability. Release of so-called gliotransmitters like glutamate, ATP and D-serine from astrocytes in response to activation of glutamate receptors has been demonstrated to modulate various aspects of neuronal function in the hippocampus. In addition to receptors, glutamate binds to high-affinity, sodium-dependent transporters, which results in rapid buffering of synaptically-released glutamate, followed by its removal from the synaptic cleft through uptake into astrocytes. The degree to which astrocytes modulate and control extracellular glutamate levels through glutamate transporters depends on their expression levels and on the ionic driving forces that decrease with ongoing activity. Another major determinant of astrocytic control of glutamate levels could be the precise morphological arrangement of fine perisynaptic processes close to synapses, defining the diffusional distance for glutamate, and the spatial proximity of transporters in relation to the synaptic cleft. In this review, we will present an overview of the mechanisms and physiological role of glutamate-induced ion signaling in astrocytes in the hippocampus as mediated by receptors and transporters. Moreover, we will discuss the relevance of astroglial glutamate uptake for extracellular glutamate homeostasis, focusing on how activity-induced dynamic changes of perisynaptic processes could shape synaptic transmission at glutamatergic synapses.
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页数:20
相关论文
共 241 条
[11]   Laser-scanning astrocyte mapping reveals increased glutamate-responsive domain size and disrupted maturation of glutamate uptake following neonatal cortical freeze-lesion [J].
Armbruster, Moritz ;
Hampton, David ;
Yang, Yongjie ;
Dulla, Chris G. .
FRONTIERS IN CELLULAR NEUROSCIENCE, 2014, 8
[12]   Cooperation between independent hippocampal synapses is controlled by glutamate uptake [J].
Arnth-Jensen, N ;
Jabaudon, D ;
Scanziani, M .
NATURE NEUROSCIENCE, 2002, 5 (04) :325-331
[13]   Immunohistochemical localization of group I and II metabotropic glutamate receptors in control and amyotrophic lateral sclerosis human spinal cord: Upregulation in reactive astrocytes [J].
Aronica, E ;
Catania, MV ;
Geurts, J ;
Yankaya, B ;
Troost, D .
NEUROSCIENCE, 2001, 105 (02) :509-520
[14]   Expression and functional role of mGluR3 and mGluR5 in human astrocytes and glioma cells: opposite regulation of glutamate transporter proteins [J].
Aronica, E ;
Gorter, JA ;
Ijlst-Keizers, H ;
Rozemuller, AJ ;
Yankaya, B ;
Leenstra, S ;
Troost, D .
EUROPEAN JOURNAL OF NEUROSCIENCE, 2003, 17 (10) :2106-2118
[15]  
ARRIZA JL, 1994, J NEUROSCI, V14, P5559
[16]   Extrasynaptic glutamate spillover in the hippocampus: Dependence on temperature and the role of active glutamate uptake [J].
Asztely, F ;
Erdemli, G ;
Kullmann, DM .
NEURON, 1997, 18 (02) :281-293
[17]   MOBILITY MEASUREMENT BY ANALYSIS OF FLUORESCENCE PHOTOBLEACHING RECOVERY KINETICS [J].
AXELROD, D ;
KOPPEL, DE ;
SCHLESSINGER, J ;
ELSON, E ;
WEBB, WW .
BIOPHYSICAL JOURNAL, 1976, 16 (09) :1055-1069
[18]   The glutamate/GABA-glutamine cycle: aspects of transport, neurotransmitter homeostasis and ammonia transfer [J].
Bak, Lasse K. ;
Schousboe, Arne ;
Waagepetersen, Helle S. .
JOURNAL OF NEUROCHEMISTRY, 2006, 98 (03) :641-653
[19]   ELECTROGENIC UPTAKE OF GLUTAMATE AND ASPARTATE INTO GLIAL-CELLS ISOLATED FROM THE SALAMANDER (AMBYSTOMA) RETINA [J].
BARBOUR, B ;
BREW, H ;
ATTWELL, D .
JOURNAL OF PHYSIOLOGY-LONDON, 1991, 436 :169-193
[20]   ELECTROGENIC GLUTAMATE UPTAKE IN GLIAL-CELLS IS ACTIVATED BY INTRACELLULAR POTASSIUM [J].
BARBOUR, B ;
BREW, H ;
ATTWELL, D .
NATURE, 1988, 335 (6189) :433-435