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Synaptic Targets of Glycinergic Neurons in Laminae I–III of the Spinal Dorsal Horn

A great deal of evidence supports the inevitable importance of spinal glycinergic inhibition in the development of chronic pain conditions. However, it remains unclear how glycinergic neurons contribute to the formation of spinal neural circuits underlying pain-related information processing. Thus,...

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Autores principales: Miranda, Camila Oliveira, Hegedüs, Krisztina, Kis, Gréta, Antal, Miklós
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10139066/
https://www.ncbi.nlm.nih.gov/pubmed/37108107
http://dx.doi.org/10.3390/ijms24086943
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author Miranda, Camila Oliveira
Hegedüs, Krisztina
Kis, Gréta
Antal, Miklós
author_facet Miranda, Camila Oliveira
Hegedüs, Krisztina
Kis, Gréta
Antal, Miklós
author_sort Miranda, Camila Oliveira
collection PubMed
description A great deal of evidence supports the inevitable importance of spinal glycinergic inhibition in the development of chronic pain conditions. However, it remains unclear how glycinergic neurons contribute to the formation of spinal neural circuits underlying pain-related information processing. Thus, we intended to explore the synaptic targets of spinal glycinergic neurons in the pain processing region (laminae I–III) of the spinal dorsal horn by combining transgenic technology with immunocytochemistry and in situ hybridization accompanied by light and electron microscopy. First, our results suggest that, in addition to neurons in laminae I–III, glycinergic neurons with cell bodies in lamina IV may contribute substantially to spinal pain processing. On the one hand, we show that glycine transporter 2 immunostained glycinergic axon terminals target almost all types of excitatory and inhibitory interneurons identified by their neuronal markers in laminae I–III. Thus, glycinergic postsynaptic inhibition, including glycinergic inhibition of inhibitory interneurons, must be a common functional mechanism of spinal pain processing. On the other hand, our results demonstrate that glycine transporter 2 containing axon terminals target only specific subsets of axon terminals in laminae I–III, including nonpeptidergic nociceptive C fibers binding IB4 and nonnociceptive myelinated A fibers immunoreactive for type 1 vesicular glutamate transporter, indicating that glycinergic presynaptic inhibition may be important for targeting functionally specific subpopulations of primary afferent inputs.
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spelling pubmed-101390662023-04-28 Synaptic Targets of Glycinergic Neurons in Laminae I–III of the Spinal Dorsal Horn Miranda, Camila Oliveira Hegedüs, Krisztina Kis, Gréta Antal, Miklós Int J Mol Sci Article A great deal of evidence supports the inevitable importance of spinal glycinergic inhibition in the development of chronic pain conditions. However, it remains unclear how glycinergic neurons contribute to the formation of spinal neural circuits underlying pain-related information processing. Thus, we intended to explore the synaptic targets of spinal glycinergic neurons in the pain processing region (laminae I–III) of the spinal dorsal horn by combining transgenic technology with immunocytochemistry and in situ hybridization accompanied by light and electron microscopy. First, our results suggest that, in addition to neurons in laminae I–III, glycinergic neurons with cell bodies in lamina IV may contribute substantially to spinal pain processing. On the one hand, we show that glycine transporter 2 immunostained glycinergic axon terminals target almost all types of excitatory and inhibitory interneurons identified by their neuronal markers in laminae I–III. Thus, glycinergic postsynaptic inhibition, including glycinergic inhibition of inhibitory interneurons, must be a common functional mechanism of spinal pain processing. On the other hand, our results demonstrate that glycine transporter 2 containing axon terminals target only specific subsets of axon terminals in laminae I–III, including nonpeptidergic nociceptive C fibers binding IB4 and nonnociceptive myelinated A fibers immunoreactive for type 1 vesicular glutamate transporter, indicating that glycinergic presynaptic inhibition may be important for targeting functionally specific subpopulations of primary afferent inputs. MDPI 2023-04-08 /pmc/articles/PMC10139066/ /pubmed/37108107 http://dx.doi.org/10.3390/ijms24086943 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Miranda, Camila Oliveira
Hegedüs, Krisztina
Kis, Gréta
Antal, Miklós
Synaptic Targets of Glycinergic Neurons in Laminae I–III of the Spinal Dorsal Horn
title Synaptic Targets of Glycinergic Neurons in Laminae I–III of the Spinal Dorsal Horn
title_full Synaptic Targets of Glycinergic Neurons in Laminae I–III of the Spinal Dorsal Horn
title_fullStr Synaptic Targets of Glycinergic Neurons in Laminae I–III of the Spinal Dorsal Horn
title_full_unstemmed Synaptic Targets of Glycinergic Neurons in Laminae I–III of the Spinal Dorsal Horn
title_short Synaptic Targets of Glycinergic Neurons in Laminae I–III of the Spinal Dorsal Horn
title_sort synaptic targets of glycinergic neurons in laminae i–iii of the spinal dorsal horn
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10139066/
https://www.ncbi.nlm.nih.gov/pubmed/37108107
http://dx.doi.org/10.3390/ijms24086943
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