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Subtype Identification in Acutely Dissociated Rat Nodose Ganglion Neurons Based on Morphologic Parameters

Nodose ganglia are composed of A-, Ah- and C-type neurons. Despite their important roles in regulating visceral afferent function, including cardiovascular, pulmonary, and gastrointestinal homeostasis, information about subtype-specific expression, molecular identity, and function of individual ion...

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Autores principales: Lu, Xiao-Long, Xu, Wen-Xiao, Yan, Zhen-Yu, Qian, Zhao, Xu, Bing, Liu, Yang, Han, Li-Min, Gao, Rui-Chen, Li, Jun-Nan, Yuan, Mei, Zhao, Chong-Bao, Qiao, Guo-fen, Li, Bai-Yan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Ivyspring International Publisher 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3729014/
https://www.ncbi.nlm.nih.gov/pubmed/23904796
http://dx.doi.org/10.7150/ijbs.7006
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author Lu, Xiao-Long
Xu, Wen-Xiao
Yan, Zhen-Yu
Qian, Zhao
Xu, Bing
Liu, Yang
Han, Li-Min
Gao, Rui-Chen
Li, Jun-Nan
Yuan, Mei
Zhao, Chong-Bao
Qiao, Guo-fen
Li, Bai-Yan
author_facet Lu, Xiao-Long
Xu, Wen-Xiao
Yan, Zhen-Yu
Qian, Zhao
Xu, Bing
Liu, Yang
Han, Li-Min
Gao, Rui-Chen
Li, Jun-Nan
Yuan, Mei
Zhao, Chong-Bao
Qiao, Guo-fen
Li, Bai-Yan
author_sort Lu, Xiao-Long
collection PubMed
description Nodose ganglia are composed of A-, Ah- and C-type neurons. Despite their important roles in regulating visceral afferent function, including cardiovascular, pulmonary, and gastrointestinal homeostasis, information about subtype-specific expression, molecular identity, and function of individual ion transporting proteins is scarce. Although experiments utilizing the sliced ganglion preparation have provided valuable insights into the electrophysiological properties of nodose ganglion neuron subtypes, detailed characterization of their electrical phenotypes will require measurements in isolated cells. One major unresolved problem, however, is the difficulty to unambiguously identify the subtype of isolated nodose ganglion neurons without current-clamp recording, because the magnitude of conduction velocity in the corresponding afferent fiber, a reliable marker to discriminate subtypes in situ, can no longer be determined. Here, we present data supporting the notion that application of an algorithm regarding to microscopic structural characteristics, such as neuron shape evaluated by the ratio between shortest and longest axis, neuron surface characteristics, like membrane roughness, and axon attachment, enables specific and sensitive subtype identification of acutely dissociated rat nodose ganglion neurons, by which the accuracy of identification is further validated by electrophysiological markers and overall positive predictive rates is 89.26% (90.04%, 76.47%, and 98.21% for A-, Ah, and C-type, respectively). This approach should aid in gaining insight into the molecular correlates underlying phenotypic heterogeneity of nodose ganglia. Additionally, several critical points that help for neuron identification and afferent conduction calibration are also discussed.
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spelling pubmed-37290142013-07-31 Subtype Identification in Acutely Dissociated Rat Nodose Ganglion Neurons Based on Morphologic Parameters Lu, Xiao-Long Xu, Wen-Xiao Yan, Zhen-Yu Qian, Zhao Xu, Bing Liu, Yang Han, Li-Min Gao, Rui-Chen Li, Jun-Nan Yuan, Mei Zhao, Chong-Bao Qiao, Guo-fen Li, Bai-Yan Int J Biol Sci Research Paper Nodose ganglia are composed of A-, Ah- and C-type neurons. Despite their important roles in regulating visceral afferent function, including cardiovascular, pulmonary, and gastrointestinal homeostasis, information about subtype-specific expression, molecular identity, and function of individual ion transporting proteins is scarce. Although experiments utilizing the sliced ganglion preparation have provided valuable insights into the electrophysiological properties of nodose ganglion neuron subtypes, detailed characterization of their electrical phenotypes will require measurements in isolated cells. One major unresolved problem, however, is the difficulty to unambiguously identify the subtype of isolated nodose ganglion neurons without current-clamp recording, because the magnitude of conduction velocity in the corresponding afferent fiber, a reliable marker to discriminate subtypes in situ, can no longer be determined. Here, we present data supporting the notion that application of an algorithm regarding to microscopic structural characteristics, such as neuron shape evaluated by the ratio between shortest and longest axis, neuron surface characteristics, like membrane roughness, and axon attachment, enables specific and sensitive subtype identification of acutely dissociated rat nodose ganglion neurons, by which the accuracy of identification is further validated by electrophysiological markers and overall positive predictive rates is 89.26% (90.04%, 76.47%, and 98.21% for A-, Ah, and C-type, respectively). This approach should aid in gaining insight into the molecular correlates underlying phenotypic heterogeneity of nodose ganglia. Additionally, several critical points that help for neuron identification and afferent conduction calibration are also discussed. Ivyspring International Publisher 2013-07-27 /pmc/articles/PMC3729014/ /pubmed/23904796 http://dx.doi.org/10.7150/ijbs.7006 Text en © Ivyspring International Publisher. This is an open-access article distributed under the terms of the Creative Commons License (http://creativecommons.org/licenses/by-nc-nd/3.0/). Reproduction is permitted for personal, noncommercial use, provided that the article is in whole, unmodified, and properly cited.
spellingShingle Research Paper
Lu, Xiao-Long
Xu, Wen-Xiao
Yan, Zhen-Yu
Qian, Zhao
Xu, Bing
Liu, Yang
Han, Li-Min
Gao, Rui-Chen
Li, Jun-Nan
Yuan, Mei
Zhao, Chong-Bao
Qiao, Guo-fen
Li, Bai-Yan
Subtype Identification in Acutely Dissociated Rat Nodose Ganglion Neurons Based on Morphologic Parameters
title Subtype Identification in Acutely Dissociated Rat Nodose Ganglion Neurons Based on Morphologic Parameters
title_full Subtype Identification in Acutely Dissociated Rat Nodose Ganglion Neurons Based on Morphologic Parameters
title_fullStr Subtype Identification in Acutely Dissociated Rat Nodose Ganglion Neurons Based on Morphologic Parameters
title_full_unstemmed Subtype Identification in Acutely Dissociated Rat Nodose Ganglion Neurons Based on Morphologic Parameters
title_short Subtype Identification in Acutely Dissociated Rat Nodose Ganglion Neurons Based on Morphologic Parameters
title_sort subtype identification in acutely dissociated rat nodose ganglion neurons based on morphologic parameters
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3729014/
https://www.ncbi.nlm.nih.gov/pubmed/23904796
http://dx.doi.org/10.7150/ijbs.7006
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