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miR-155-5p Promotes Dorsal Root Ganglion Neuron Axonal Growth in an Inhibitory Microenvironment via the cAMP/PKA Pathway

Sensory dysfunction post spinal cord injury causes patients great distress. Sciatic nerve conditioning injury (SNCI) has been shown to restore sensory function after spinal cord dorsal column injury (SDCL); however, the underlying mechanism of this recovery remains unclear. We performed a microarray...

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Autores principales: Wang, Tianyi, Li, Bo, Wang, Zhijie, Yuan, Xin, Chen, Chuanjie, Zhang, Yanjun, Xia, Ziwei, Wang, Xin, Yu, Mei, Tao, Wen, Zhang, Liang, Wang, Xu, Zhang, Zheng, Guo, Xiaoling, Ning, Guangzhi, Feng, Shiqing, Chen, Xueming
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Ivyspring International Publisher 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6643145/
https://www.ncbi.nlm.nih.gov/pubmed/31337984
http://dx.doi.org/10.7150/ijbs.31904
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author Wang, Tianyi
Li, Bo
Wang, Zhijie
Yuan, Xin
Chen, Chuanjie
Zhang, Yanjun
Xia, Ziwei
Wang, Xin
Yu, Mei
Tao, Wen
Zhang, Liang
Wang, Xu
Zhang, Zheng
Guo, Xiaoling
Ning, Guangzhi
Feng, Shiqing
Chen, Xueming
author_facet Wang, Tianyi
Li, Bo
Wang, Zhijie
Yuan, Xin
Chen, Chuanjie
Zhang, Yanjun
Xia, Ziwei
Wang, Xin
Yu, Mei
Tao, Wen
Zhang, Liang
Wang, Xu
Zhang, Zheng
Guo, Xiaoling
Ning, Guangzhi
Feng, Shiqing
Chen, Xueming
author_sort Wang, Tianyi
collection PubMed
description Sensory dysfunction post spinal cord injury causes patients great distress. Sciatic nerve conditioning injury (SNCI) has been shown to restore sensory function after spinal cord dorsal column injury (SDCL); however, the underlying mechanism of this recovery remains unclear. We performed a microarray assay to determine the associated miRNAs that might regulate the process of SNCI promoting SDCL repair. In total, 13 miRNAs were identified according to our inclusion criteria, and RT-qPCR was used to verify the microarray results. Among the 13 miRNAs, the miR-155-5p levels were decreased at 9 h, 3 d, 7 d, 14 d, 28 d, 2 m and 3 m timepoints in the SDCL group, while the SNCI group had a smaller decrease. Thus, miR-155-5p was chosen for further study after a literature review and an analysis with the TargetScan online tool. Specifically, miR-155-5p targets PKI-α, and the expression pattern of PKI-α was opposite that of miR-155-5p in both the SDCL and SNCI groups. Interestingly, miR-155-5p could promote dorsal root ganglion (DRG) neuron axon growth via the cAMP/PKA pathway and in a TNF-α, IL-1β or MAG inhibitory microenvironment in vitro. Furthermore, miR-155-5p could regulate the cAMP/PKA pathway and promote sensory conduction function recovery post dorsal column injury as detected by NF-200 immunohistochemistry, somatosensory-evoked potentials, BBB scale and tape removal test. Collectively, our results demonstrated that miR-155-5p participates in the molecular mechanism by which SNCI promotes the repair of SDCL and that upregulated miR-155-5p can repair SDCL by enhancing DRG neuron axon growth via the cAMP/PKA pathway. These findings suggest a novel treatment target for spinal cord injury.
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spelling pubmed-66431452019-07-23 miR-155-5p Promotes Dorsal Root Ganglion Neuron Axonal Growth in an Inhibitory Microenvironment via the cAMP/PKA Pathway Wang, Tianyi Li, Bo Wang, Zhijie Yuan, Xin Chen, Chuanjie Zhang, Yanjun Xia, Ziwei Wang, Xin Yu, Mei Tao, Wen Zhang, Liang Wang, Xu Zhang, Zheng Guo, Xiaoling Ning, Guangzhi Feng, Shiqing Chen, Xueming Int J Biol Sci Research Paper Sensory dysfunction post spinal cord injury causes patients great distress. Sciatic nerve conditioning injury (SNCI) has been shown to restore sensory function after spinal cord dorsal column injury (SDCL); however, the underlying mechanism of this recovery remains unclear. We performed a microarray assay to determine the associated miRNAs that might regulate the process of SNCI promoting SDCL repair. In total, 13 miRNAs were identified according to our inclusion criteria, and RT-qPCR was used to verify the microarray results. Among the 13 miRNAs, the miR-155-5p levels were decreased at 9 h, 3 d, 7 d, 14 d, 28 d, 2 m and 3 m timepoints in the SDCL group, while the SNCI group had a smaller decrease. Thus, miR-155-5p was chosen for further study after a literature review and an analysis with the TargetScan online tool. Specifically, miR-155-5p targets PKI-α, and the expression pattern of PKI-α was opposite that of miR-155-5p in both the SDCL and SNCI groups. Interestingly, miR-155-5p could promote dorsal root ganglion (DRG) neuron axon growth via the cAMP/PKA pathway and in a TNF-α, IL-1β or MAG inhibitory microenvironment in vitro. Furthermore, miR-155-5p could regulate the cAMP/PKA pathway and promote sensory conduction function recovery post dorsal column injury as detected by NF-200 immunohistochemistry, somatosensory-evoked potentials, BBB scale and tape removal test. Collectively, our results demonstrated that miR-155-5p participates in the molecular mechanism by which SNCI promotes the repair of SDCL and that upregulated miR-155-5p can repair SDCL by enhancing DRG neuron axon growth via the cAMP/PKA pathway. These findings suggest a novel treatment target for spinal cord injury. Ivyspring International Publisher 2019-06-02 /pmc/articles/PMC6643145/ /pubmed/31337984 http://dx.doi.org/10.7150/ijbs.31904 Text en © Ivyspring International Publisher This is an open access article distributed under the terms of the Creative Commons Attribution (CC BY-NC) license (https://creativecommons.org/licenses/by-nc/4.0/). See http://ivyspring.com/terms for full terms and conditions.
spellingShingle Research Paper
Wang, Tianyi
Li, Bo
Wang, Zhijie
Yuan, Xin
Chen, Chuanjie
Zhang, Yanjun
Xia, Ziwei
Wang, Xin
Yu, Mei
Tao, Wen
Zhang, Liang
Wang, Xu
Zhang, Zheng
Guo, Xiaoling
Ning, Guangzhi
Feng, Shiqing
Chen, Xueming
miR-155-5p Promotes Dorsal Root Ganglion Neuron Axonal Growth in an Inhibitory Microenvironment via the cAMP/PKA Pathway
title miR-155-5p Promotes Dorsal Root Ganglion Neuron Axonal Growth in an Inhibitory Microenvironment via the cAMP/PKA Pathway
title_full miR-155-5p Promotes Dorsal Root Ganglion Neuron Axonal Growth in an Inhibitory Microenvironment via the cAMP/PKA Pathway
title_fullStr miR-155-5p Promotes Dorsal Root Ganglion Neuron Axonal Growth in an Inhibitory Microenvironment via the cAMP/PKA Pathway
title_full_unstemmed miR-155-5p Promotes Dorsal Root Ganglion Neuron Axonal Growth in an Inhibitory Microenvironment via the cAMP/PKA Pathway
title_short miR-155-5p Promotes Dorsal Root Ganglion Neuron Axonal Growth in an Inhibitory Microenvironment via the cAMP/PKA Pathway
title_sort mir-155-5p promotes dorsal root ganglion neuron axonal growth in an inhibitory microenvironment via the camp/pka pathway
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6643145/
https://www.ncbi.nlm.nih.gov/pubmed/31337984
http://dx.doi.org/10.7150/ijbs.31904
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