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Updated: Apr 26, 2026

Methods for the Discovery of Novel Compounds Modulating a Gamma-Aminobutyric Acid Receptor Type A Neurotransmission
Published on: August 16, 2018
GABAergic signaling as therapeutic target for autism spectrum disorders
Giada Cellot1, Enrico Cherubini2
1Department of Neuroscience, Scuola Internazionale Superiore di Studi Avanzati , Trieste , Italy.
Insights
Early brain development involves excitatory gamma-aminobutyric acid (GABA) due to chloride accumulation. This shifts to inhibitory GABA with age, and disruptions are linked to neurodevelopmental disorders like autism spectrum disorders (ASDs).
Area of Science:
- Neuroscience
- Developmental Biology
- Neuropharmacology
Background:
- Gamma-aminobutyric acid (GABA) is the primary inhibitory neurotransmitter in adult brains but acts ex citatorily in early development.
- This developmental shift is due to changes in chloride ion gradients, regulated by NKCC1 and KCC2 transporters.
- Altered GABAergic signaling and excitatory/inhibitory imbalance are implicated in neurodevelopmental disorders, including autism spectrum disorders (ASDs).
Purpose of the Study:
- To review the role of GABAergic neurotransmission in neurodevelopmental processes.
- To discuss the impact of altered GABAergic signaling on specific ASDs like Fragile X, Angelman, and Rett syndromes.
- To explore therapeutic strategies targeting the GABAergic system for ASD treatment.
Main Methods:
- Literature review focusing on GABAergic signaling in brain development and ASDs.
- Analysis of animal models exhibiting GABAergic dysfunctions and associated behavioral deficits.
- Examination of therapeutic interventions, including pharmacological modulation of GABAergic pathways.
Main Results:
- Developmental changes in chloride extrusion influence GABA's effect from excitatory to inhibitory.
- GABA-mediated calcium signaling is crucial for neuronal development processes.
- Dysfunctional GABAergic signaling is a common feature in various ASDs and their animal models.
Conclusions:
- Targeting GABAergic synapse components offers potential therapeutic avenues for ASDs.
- Modulating chloride transport, for instance, by blocking NKCC1 with bumetanide, may reverse GABA polarity and yield beneficial effects in ASDs.
- Restoring excitatory/inhibitory balance through GABAergic system modulation presents promising therapeutic perspectives for neurodevelopmental disorders.
Abstract:
γ-Aminobutyric acid (GABA), the main inhibitory neurotransmitter in the adult brain, early in postnatal life exerts a depolarizing and excitatory action. This depends on accumulation of chloride inside the cell via the cation-chloride importer NKCC1, being the expression of the chloride exporter KCC2 very low at birth. The developmentally regulated expression of KCC2 results in extrusion of chloride with age and a shift of GABA from the depolarizing to the hyperpolarizing direction. The depolarizing action of GABA leads to intracellular calcium rise through voltage-dependent calcium channels and/or N-methyl-d-aspartate receptors. GABA-mediated calcium signals regulate a variety of developmental processes from cell proliferation migration, differentiation, synapse maturation, and neuronal wiring. Therefore, it is not surprising that some forms of neuro-developmental disorders such as autism spectrum disorders (ASDs) are associated with alterations of GABAergic signaling and impairment of the excitatory/inhibitory balance in selective neuronal circuits. In this review, we will discuss how changes of GABAA-mediated neurotransmission affect several forms of ASDs including the Fragile X, the Angelman, and Rett syndromes. Then, we will describe various animal models of ASDs with GABAergic dysfunctions, highlighting their behavioral deficits and the possibility to rescue them by targeting selective components of the GABAergic synapse. In particular, we will discuss how in some cases, reverting the polarity of GABA responses from the depolarizing to the hyperpolarizing direction with the diuretic bumetanide, a selective blocker of NKCC1, may have beneficial effects on ASDs, thus opening new therapeutic perspectives for the treatment of these devastating disorders.
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