GABA and glycine as neurotransmitters: a brief history
ГАМК и глицин как нейромедиаторы: краткая история
2006-01-01
SCID: 54.1/nfqqsrrb
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GABA neurotransmissionGABA receptorsglycine neurotransmissionglycine receptorsinhibitory synaptic processing
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Abstract (AI)
gamma-Aminobutyric acid (GABA) emerged as a potentially important brain chemical just over 50 years ago, but its significance as a neurotransmitter was not fully realized until over 16 years later. We now know that at least 40% of inhibitory synaptic processing in the mammalian brain uses GABA. Establishing its role as a transmitter was a lengthy process and it seems hard to believe with our current knowledge that there was ever any dispute about its role in the mammalian brain. The detailed information that we now have about the receptors for GABA together with the wealth of agents which facilitate or reduce GABA receptor mechanisms make the prospects for further research very exciting. The emergence of glycine as a transmitter seems relatively painless by comparison to GABA. Perhaps this is appropriate for the simplest of transmitter structures! Its discovery within the spinal cord and brainstem approximately 40 years ago was followed only 2 years later by the proposal that it be conferred with 'neurotransmitter' status. It was another 16 years before the receptor was biochemically isolated. Now it is readily accepted as a vital spinal and supraspinal inhibitory transmitter and we know many details regarding its molecular structure and trafficking around neurones. The pharmacology of these receptors has lagged behind that of GABA. There is not the rich variety of allosteric modulators that we have come to readily associate with GABA receptors and which has provided us with a virtual treasure trove of important drugs used in anxiety, insomnia, epilepsy, anaesthesia, and spasticity, all stemming from the actions of the simple neutral amino acid GABA. Nevertheless, the realization that glycine receptors are involved in motor reflexes and nociceptive pathways together with the more recent advent of drugs that exhibit some subtype selectivity make the goal of designing selective therapeutic ligands for the glycine receptor that much closer.
Key Findings
1
Detailed knowledge of GABA receptors and numerous agents that enhance or reduce their activity have enabled important therapies for anxiety, insomnia, epilepsy, anaesthesia, and spasticity.
2
GABA was recognized as a neurotransmitter only after a prolonged historical process, despite now mediating at least 40% of inhibitory synaptic processing in the mammalian brain.
3
Glycine achieved neurotransmitter status more rapidly than GABA and is now established as a major inhibitory transmitter in spinal and supraspinal systems.
4
Glycine receptor involvement in motor reflexes and nociceptive pathways, together with emerging subtype-selective drugs, brings selective therapeutic ligand design closer to realization.
5
Glycine receptor pharmacology remains less developed than GABA receptor pharmacology, with fewer allosteric modulators available.
Research Object
GABAergic and glycinergic neurotransmission in the mammalian central nervous system
Research Subject
The historical establishment, receptor mechanisms, pharmacology, and therapeutic significance of GABA and glycine as inhibitory neurotransmitters
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2006-01-01
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