Pathophysiological power of improper tonic GABAA conductances in mature and immature models

被引:48
作者
Egawa, Kiyoshi [1 ,2 ]
Fukuda, Atsuo [3 ]
机构
[1] Massachusetts Gen Hosp, Dept Neurol, Charlestown, MA USA
[2] Hokkaido Univ, Grad Sch Med, Dept Pediat, Sapporo, Hokkaido, Japan
[3] Hamamatsu Univ Sch Med, Dept Neurophysiol, Hamamatsu, Shizuoka 4313192, Japan
关键词
GABA; GAT; extrasynaptic; ambient; transporter; tonic inhibition; neurological disease; GABA(A) receptor; ALPHA-5; SUBUNIT; MOUSE MODEL; PREFRONTAL CORTEX; DELTA-SUBUNIT; RECEPTOR SUBUNITS; GENE-EXPRESSION; GRANULE CELLS; RAT-BRAIN; BENZODIAZEPINE-RECEPTOR; GABAERGIC DYSFUNCTION;
D O I
10.3389/fncir.2013.00170
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
High-affinity extrasynaptic gamma-aminobutyric acid A (GABA(A)) receptors are tonically activated by low and consistent levels of ambient GABA, mediating chronic inhibition against neuronal excitability (tonic inhibition) and the modulation of neural development. Synaptic (phasic) inhibition is spatially and temporally precise compared with tonic inhibition, which provides blunt yet strong integral inhibitory force by shunting electrical signaling. Although effects of acute modification of tonic inhibition are known, its pathophysiological significance remains unclear because homeostatic regulation of neuronal excitability can compensate for long-term deficit of extrasynaptic GABA(A) receptor activation. Nevertheless, tonic inhibition is of great interest for its pathophysiological involvement in central nervous system (CNS) diseases and thus as a therapeutic target. Together with the development of experimental models for various pathological states, recent evidence demonstrates such pathological involvements of tonic inhibition in neuronal dysfunction. This review focuses on the recent progress of tonic activation of GABA(A) conductance on the development and pathology of the CNS. Findings indicate that neuronal function in various brain regions are exacerbated with a gain or loss of function of tonic inhibition by GABA spillover. Disturbance of tonic GABA(A) conductance mediated by non-synaptic ambient GABA may result in brain mal-development. Therefore, various pathological states (epilepsy, motor dysfunctions, psychiatric disorders, and neurodevelopmental disorders) may be partly attributable to abnormal tonic GABA(A) conductances. Thus, the tone of tonic conductance and level of ambient GABA may be precisely tuned to maintain the regular function and development of the CNS. Therefore, receptor expression and factors for regulating the ambient GABA concentration are highlighted to gain a deeper understanding of pathology and therapeutic strategy for CNS diseases.
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页数:15
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共 178 条
[41]   Trace fear conditioning involves hippocampal α5 GABAA receptors [J].
Crestani, F ;
Keist, R ;
Fritschy, JM ;
Benke, D ;
Vogt, K ;
Prut, L ;
Blüthmann, H ;
Möhler, H ;
Rudolph, U .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2002, 99 (13) :8980-8985
[42]   Downregulation of Tonic GABAergic Inhibition in a Mouse Model of Fragile X Syndrome [J].
Curia, Giulia ;
Papouin, Thomas ;
Seguela, Philippe ;
Avoli, Massimo .
CEREBRAL CORTEX, 2009, 19 (07) :1515-1520
[43]   Ambient GABA promotes cortical entry of tangentially migrating cells derived from the medial ganglionic eminence [J].
Cuzon, Verginia C. ;
Yeh, Pamela W. ;
Cheng, Qing ;
Yeh, Hermes H. .
CEREBRAL CORTEX, 2006, 16 (10) :1377-1388
[44]   Extrasynaptic GABAA receptor activation reverses recognition memory deficits in an animal model of schizophrenia [J].
Damgaard, Trine ;
Plath, Niels ;
Neill, Jo C. ;
Hansen, Suzanne L. .
PSYCHOPHARMACOLOGY, 2011, 214 (02) :403-413
[45]   Insensitivity to anaesthetic agents conferred by a class of GABA(A) receptor subunit [J].
Davies, PA ;
Hanna, MC ;
Hales, TG ;
Kirkness, EF .
NATURE, 1997, 385 (6619) :820-823
[46]   An inverse agonist selective for α5 subunit-containing GABAA receptors enhances cognition [J].
Dawson, GR ;
Maubach, KA ;
Collinson, N ;
Cobain, M ;
Everitt, BJ ;
MacLeod, AM ;
Choudhury, HI ;
McDonald, LM ;
Pillai, G ;
Rycroft, W ;
Smith, AJ ;
Sternfeld, F ;
Tattersall, FD ;
Wafford, KA ;
Reynolds, DS ;
Seabrook, GR ;
Atack, JR .
JOURNAL OF PHARMACOLOGY AND EXPERIMENTAL THERAPEUTICS, 2006, 316 (03) :1335-1345
[47]   Immunoreactivity for the GABA transporter-1 and GABA transporter-3 is restricted to astrocytes in the rat thalamus. A light and electron-microscopic immunolocalization [J].
De Biasi, S ;
Vitellaro-Zuccarello, L ;
Brecha, NC .
NEUROSCIENCE, 1998, 83 (03) :815-828
[48]   Recovery of functional and structural age-related changes in the rat primary auditory cortex with operant training [J].
de Villers-Sidani, Etienne ;
Alzghoul, Loai ;
Zhou, Xiaoming ;
Simpson, Kimberly L. ;
Lin, Rick C. S. ;
Merzenich, Michael M. .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2010, 107 (31) :13900-13905
[49]   Paracrine intercellular communication by a Ca2+- and SNARE-independent release of GABA and glutamate prior to synapse formation [J].
Demarque, M ;
Represa, A ;
Becq, H ;
Khalilov, I ;
Ben-Ari, Y ;
Aniksztejn, L .
NEURON, 2002, 36 (06) :1051-1061
[50]   GABAC RECEPTORS ARE FUNCTIONALLY EXPRESSED IN THE INTERMEDIATE ZONE AND REGULATE RADIAL MIGRATION IN THE EMBRYONIC MOUSE NEOCORTEX [J].
Denter, D. G. ;
Heck, N. ;
Riedemann, T. ;
White, R. ;
Kilb, W. ;
Luhmann, H. J. .
NEUROSCIENCE, 2010, 167 (01) :124-134