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Evaluation of Avulsion-Induced Neuropathology in Rat Spinal Cords with (18)F-FDG Micro-PET/CT

Brachial plexus root avulsion (BPRA) leads to dramatic motoneuron death and glial reactions in the corresponding spinal segments at the late stage of injury. To protect spinal motoneurons, assessment of the affected spinal segments should be done at an earlier stage of the injury. In this study, we...

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Autores principales: Ling, Ze-Min, Tang, Ying, Li, Ying-Qin, Luo, Hao-Xuan, Liu, Lin-Lin, Tu, Qing-Qiang, Zhou, Li-Hua
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4444271/
https://www.ncbi.nlm.nih.gov/pubmed/26010770
http://dx.doi.org/10.1371/journal.pone.0127685
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author Ling, Ze-Min
Tang, Ying
Li, Ying-Qin
Luo, Hao-Xuan
Liu, Lin-Lin
Tu, Qing-Qiang
Zhou, Li-Hua
author_facet Ling, Ze-Min
Tang, Ying
Li, Ying-Qin
Luo, Hao-Xuan
Liu, Lin-Lin
Tu, Qing-Qiang
Zhou, Li-Hua
author_sort Ling, Ze-Min
collection PubMed
description Brachial plexus root avulsion (BPRA) leads to dramatic motoneuron death and glial reactions in the corresponding spinal segments at the late stage of injury. To protect spinal motoneurons, assessment of the affected spinal segments should be done at an earlier stage of the injury. In this study, we employed (18)F-FDG small-animal PET/CT to assess the severity of BPRA-induced cervical spinal cord injuries. Adult Sprague-Dawley rats were randomly treated and divided into three groups: Av+NS (brachial plexus root avulsion (Av) treated with normal saline), Av+GM1 (treated with monosialoganglioside), and control. At time points of 3 day (d), 1 week (w), 2 w, 4 w and 8 w post-injury, (18)F-FDG micro-PET/CT scans and neuropathology assessments of the injured spinal roots, as well as the spinal cord, were performed. The outcomes of the different treatments were compared. The results showed that BPRA induced local bleeding and typical Wallerian degeneration of the avulsed roots accompanied by (18)F-FDG accumulations at the ipsilateral cervical intervertebral foramen. BPRA-induced astrocyte reactions and overexpression of neuronal nitric oxide synthase in the motoneurons correlated with higher (18)F-FDG uptake in the ipsilateral cervical spinal cord during the first 2 w post-injury. The GM1 treatment reduced BPRA-induced astrocyte reactions and inhibited the de novo nNOS expressions in spinal motoneurons. The GM1 treatment also protected spinal motoneurons from avulsion within the first 4 w post-injury. The data from this study suggest that (18)F-FDG PET/CT could be used to assess the severity of BPRA-induced primary and secondary injuries in the spinal cord. Furthermore, GM1 is an effective drug for reducing primary and secondary spinal cord injuries following BPRA.
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spelling pubmed-44442712015-06-16 Evaluation of Avulsion-Induced Neuropathology in Rat Spinal Cords with (18)F-FDG Micro-PET/CT Ling, Ze-Min Tang, Ying Li, Ying-Qin Luo, Hao-Xuan Liu, Lin-Lin Tu, Qing-Qiang Zhou, Li-Hua PLoS One Research Article Brachial plexus root avulsion (BPRA) leads to dramatic motoneuron death and glial reactions in the corresponding spinal segments at the late stage of injury. To protect spinal motoneurons, assessment of the affected spinal segments should be done at an earlier stage of the injury. In this study, we employed (18)F-FDG small-animal PET/CT to assess the severity of BPRA-induced cervical spinal cord injuries. Adult Sprague-Dawley rats were randomly treated and divided into three groups: Av+NS (brachial plexus root avulsion (Av) treated with normal saline), Av+GM1 (treated with monosialoganglioside), and control. At time points of 3 day (d), 1 week (w), 2 w, 4 w and 8 w post-injury, (18)F-FDG micro-PET/CT scans and neuropathology assessments of the injured spinal roots, as well as the spinal cord, were performed. The outcomes of the different treatments were compared. The results showed that BPRA induced local bleeding and typical Wallerian degeneration of the avulsed roots accompanied by (18)F-FDG accumulations at the ipsilateral cervical intervertebral foramen. BPRA-induced astrocyte reactions and overexpression of neuronal nitric oxide synthase in the motoneurons correlated with higher (18)F-FDG uptake in the ipsilateral cervical spinal cord during the first 2 w post-injury. The GM1 treatment reduced BPRA-induced astrocyte reactions and inhibited the de novo nNOS expressions in spinal motoneurons. The GM1 treatment also protected spinal motoneurons from avulsion within the first 4 w post-injury. The data from this study suggest that (18)F-FDG PET/CT could be used to assess the severity of BPRA-induced primary and secondary injuries in the spinal cord. Furthermore, GM1 is an effective drug for reducing primary and secondary spinal cord injuries following BPRA. Public Library of Science 2015-05-26 /pmc/articles/PMC4444271/ /pubmed/26010770 http://dx.doi.org/10.1371/journal.pone.0127685 Text en © 2015 Ling et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Ling, Ze-Min
Tang, Ying
Li, Ying-Qin
Luo, Hao-Xuan
Liu, Lin-Lin
Tu, Qing-Qiang
Zhou, Li-Hua
Evaluation of Avulsion-Induced Neuropathology in Rat Spinal Cords with (18)F-FDG Micro-PET/CT
title Evaluation of Avulsion-Induced Neuropathology in Rat Spinal Cords with (18)F-FDG Micro-PET/CT
title_full Evaluation of Avulsion-Induced Neuropathology in Rat Spinal Cords with (18)F-FDG Micro-PET/CT
title_fullStr Evaluation of Avulsion-Induced Neuropathology in Rat Spinal Cords with (18)F-FDG Micro-PET/CT
title_full_unstemmed Evaluation of Avulsion-Induced Neuropathology in Rat Spinal Cords with (18)F-FDG Micro-PET/CT
title_short Evaluation of Avulsion-Induced Neuropathology in Rat Spinal Cords with (18)F-FDG Micro-PET/CT
title_sort evaluation of avulsion-induced neuropathology in rat spinal cords with (18)f-fdg micro-pet/ct
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4444271/
https://www.ncbi.nlm.nih.gov/pubmed/26010770
http://dx.doi.org/10.1371/journal.pone.0127685
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