GABA: A Pioneer Transmitter That Excites Immature Neurons and Generates Primitive Oscillations
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- 1 October 2007
- journal article
- research article
- Published by American Physiological Society in Physiological Reviews
- Vol. 87 (4) , 1215-1284
- https://doi.org/10.1152/physrev.00017.2006
Abstract
Developing networks follow common rules to shift from silent cells to coactive networks that operate via thousands of synapses. This review deals with some of these rules and in particular those concerning the crucial role of the neurotransmitter γ-aminobuytric acid (GABA), which operates primarily via chloride-permeable GABAAreceptor channels. In all developing animal species and brain structures investigated, neurons have a higher intracellular chloride concentration at an early stage leading to an efflux of chloride and excitatory actions of GABA in immature neurons. This triggers sodium spikes, activates voltage-gated calcium channels, and acts in synergy with NMDA channels by removing the voltage-dependent magnesium block. GABA signaling is also established before glutamatergic transmission, suggesting that GABA is the principal excitatory transmitter during early development. In fact, even before synapse formation, GABA signaling can modulate the cell cycle and migration. The consequence of these rules is that developing networks generate primitive patterns of network activity, notably the giant depolarizing potentials (GDPs), largely through the excitatory actions of GABA and its synergistic interactions with glutamate signaling. These early types of network activity are likely required for neurons to fire together and thus to “wire together” so that functional units within cortical networks are formed. In addition, depolarizing GABA has a strong impact on synaptic plasticity and pathological insults, notably seizures of the immature brain. In conclusion, it is suggested that an evolutionary preserved role for excitatory GABA in immature cells provides an important mechanism in the formation of synapses and activity in neuronal networks.Keywords
This publication has 655 references indexed in Scilit:
- Postsynaptic kinase signaling underlies inhibitory synaptic plasticity in the lateral superior oliveJournal of Neurobiology, 2002
- Specific Frequencies of Spontaneous Ca2+ Transients Upregulate GAD 67 Transcripts in Embryonic Spinal NeuronsMolecular and Cellular Neuroscience, 2000
- Molecular Identification of the Human GABABR2: Cell Surface Expression and Coupling to Adenylyl Cyclase in the Absence of GABABR1Molecular and Cellular Neuroscience, 1999
- Cloning and Tissue Distribution of Novel Splice Variants of the Rat GABABReceptorBiochemical and Biophysical Research Communications, 1998
- Characterization of GABAergic neurons in hippocampal cell culturesJournal of Neurocytology, 1994
- Ontogeny of epileptogenesis in the rat hippocampus: a study of the influence of GABAergic inhibitionDevelopmental Brain Research, 1992
- Postnatal development of the inferior olivary complex in the rat: IV. Synaptogenesis of GABAergic afferents, analyzed by glutamic acid decarboxylase immunocytochemistryJournal of Comparative Neurology, 1987
- Cellular and synaptic physiology and epileptogenesis of developing rat neocortical neurons in vitroDevelopmental Brain Research, 1987
- Penicillin-induced epileptogenesis in immature rat CA3 hippocampal pyramidal cellsDevelopmental Brain Research, 1984
- Development of rabbit hippocampus: PhysiologyDevelopmental Brain Research, 1981