Plasticity of GABAergic synapses

Learning and memory are believed to depend on plastic changes of neuronal circuits due to activity-dependent potentiation or depression of specific synapses. During the last two decades, plasticity of brain circuits was hypothesized to mainly rely on the flexibility of glutamatergic excitatory synap...

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Main Author: Alberto Bacci (auth)
Other Authors: Andrea Barberis (auth)
Format: Book Chapter
Published: Frontiers Media SA 2016
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020 |a 978-2-88919-732-3 
020 |a 9782889197323 
024 7 |a 10.3389/978-2-88919-732-3  |c doi 
041 0 |a English 
042 |a dc 
100 1 |a Alberto Bacci  |4 auth 
700 1 |a Andrea Barberis  |4 auth 
245 1 0 |a Plasticity of GABAergic synapses 
260 |b Frontiers Media SA  |c 2016 
300 |a 1 electronic resource (175 p.) 
506 0 |a Open Access  |2 star  |f Unrestricted online access 
520 |a Learning and memory are believed to depend on plastic changes of neuronal circuits due to activity-dependent potentiation or depression of specific synapses. During the last two decades, plasticity of brain circuits was hypothesized to mainly rely on the flexibility of glutamatergic excitatory synapses, whereas inhibitory synapses were assumed relatively invariant, to ensure stable and reliable control of the neuronal network. As a consequence, while considerable efforts were made to clarify the main mechanisms underlying plasticity at excitatory synapses, the study of the cellular/molecular mechanisms of inhibitory plasticity has received much less attention. Nevertheless, an increasing body of evidence has revealed that inhibitory synapses undergo several types of plasticity at both pre- and postsynaptic levels. Given the crucial role of inhibitory interneurons in shaping network activities, such as generation of oscillations, selection of cell assemblies and signal integration, modifications of the inhibitory synaptic strength represents an extraordinary source of versatility for the fine control of brain states. This versatility also results from the rich diversity of GABAergic neurons in several brain areas, the specific role played by each inhibitory neuron subtype within a given circuit, and the heterogeneity of the properties and modulation of GABAergic synapses formed by specific interneuron classes. The molecular mechanisms underlying the potentiation or depression of inhibitory synapses are now beginning to be unraveled. At the presynaptic level, retrograde synaptic signaling was demonstrated to modulate GABA release, whereas postsynaptic forms of plasticity involve changes in the number/gating properties of GABAA receptors and/or shifts of chloride gradients. In addition, recent research indicates that GABAergic tonic inhibition can also be plastic, adding a further level of complexity to the control of the excitatory/inhibitory balance in the brain. The present Topic will focus on plasticity of GABAergic synapses, with special emphasis on the molecular mechanisms of plasticity induction and/or expression. 
540 |a Creative Commons  |f https://creativecommons.org/licenses/by/4.0/  |2 cc  |4 https://creativecommons.org/licenses/by/4.0/ 
546 |a English 
653 |a structural plasticity 
653 |a Interneurons 
653 |a receptor lateral diffusion 
653 |a inhibitory post-synaptic density 
653 |a GABAergic synapses 
653 |a gephyrin 
653 |a GABAergic plasticity 
653 |a inhibitory plasticity 
653 |a GABAA receptors 
653 |a inhibitory circuits 
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856 4 0 |a www.oapen.org  |u https://directory.doabooks.org/handle/20.500.12854/56388  |7 0  |z DOAB: description of the publication