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Dorsal root ganglion transcriptome analysis following peripheral nerve injury in mice

BACKGROUND: Peripheral nerve injury leads to changes in gene expression in primary sensory neurons of the injured dorsal root ganglia. These changes are believed to be involved in neuropathic pain genesis. Previously, these changes have been identified using gene microarrays or next generation RNA s...

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Autores principales: Wu, Shaogen, Marie Lutz, Brianna, Miao, Xuerong, Liang, Lingli, Mo, Kai, Chang, Yun-Juan, Du, Peicheng, Soteropoulos, Patricia, Tian, Bin, Kaufman, Andrew G., Bekker, Alex, Hu, Yali, Tao, Yuan-Xiang
Formato: Online Artículo Texto
Lenguaje:English
Publicado: SAGE Publications 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4955972/
https://www.ncbi.nlm.nih.gov/pubmed/27030721
http://dx.doi.org/10.1177/1744806916629048
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author Wu, Shaogen
Marie Lutz, Brianna
Miao, Xuerong
Liang, Lingli
Mo, Kai
Chang, Yun-Juan
Du, Peicheng
Soteropoulos, Patricia
Tian, Bin
Kaufman, Andrew G.
Bekker, Alex
Hu, Yali
Tao, Yuan-Xiang
author_facet Wu, Shaogen
Marie Lutz, Brianna
Miao, Xuerong
Liang, Lingli
Mo, Kai
Chang, Yun-Juan
Du, Peicheng
Soteropoulos, Patricia
Tian, Bin
Kaufman, Andrew G.
Bekker, Alex
Hu, Yali
Tao, Yuan-Xiang
author_sort Wu, Shaogen
collection PubMed
description BACKGROUND: Peripheral nerve injury leads to changes in gene expression in primary sensory neurons of the injured dorsal root ganglia. These changes are believed to be involved in neuropathic pain genesis. Previously, these changes have been identified using gene microarrays or next generation RNA sequencing with poly-A tail selection, but these approaches cannot provide a more thorough analysis of gene expression alterations after nerve injury. METHODS: The present study chose to eliminate mRNA poly-A tail selection and perform strand-specific next generation RNA sequencing to analyze whole transcriptomes in the injured dorsal root ganglia following spinal nerve ligation. Quantitative real-time reverse transcriptase polymerase chain reaction assay was carried out to verify the changes of some differentially expressed RNAs in the injured dorsal root ganglia after spinal nerve ligation. RESULTS: Our results showed that more than 50 million (M) paired mapped sequences with strand information were yielded in each group (51.87 M–56.12 M in sham vs. 51.08 M–57.99 M in spinal nerve ligation). Six days after spinal nerve ligation, expression levels of 11,163 out of a total of 27,463 identified genes in the injured dorsal root ganglia significantly changed, of which 52.14% were upregulated and 47.86% downregulated. The largest transcriptional changes were observed in protein-coding genes (91.5%) followed by noncoding RNAs. Within 944 differentially expressed noncoding RNAs, the most significant changes were seen in long interspersed noncoding RNAs followed by antisense RNAs, processed transcripts, and pseudogenes. We observed a notable proportion of reads aligning to intronic regions in both groups (44.0% in sham vs. 49.6% in spinal nerve ligation). Using quantitative real-time polymerase chain reaction, we confirmed consistent differential expression of selected genes including Kcna2, Oprm1 as well as lncRNAs Gm21781 and 4732491K20Rik following spinal nerve ligation. CONCLUSION: Our findings suggest that next generation RNA sequencing can be used as a promising approach to analyze the changes of whole transcriptomes in dorsal root ganglia following nerve injury and to possibly identify new targets for prevention and treatment of neuropathic pain.
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spelling pubmed-49559722016-08-12 Dorsal root ganglion transcriptome analysis following peripheral nerve injury in mice Wu, Shaogen Marie Lutz, Brianna Miao, Xuerong Liang, Lingli Mo, Kai Chang, Yun-Juan Du, Peicheng Soteropoulos, Patricia Tian, Bin Kaufman, Andrew G. Bekker, Alex Hu, Yali Tao, Yuan-Xiang Mol Pain Original Article BACKGROUND: Peripheral nerve injury leads to changes in gene expression in primary sensory neurons of the injured dorsal root ganglia. These changes are believed to be involved in neuropathic pain genesis. Previously, these changes have been identified using gene microarrays or next generation RNA sequencing with poly-A tail selection, but these approaches cannot provide a more thorough analysis of gene expression alterations after nerve injury. METHODS: The present study chose to eliminate mRNA poly-A tail selection and perform strand-specific next generation RNA sequencing to analyze whole transcriptomes in the injured dorsal root ganglia following spinal nerve ligation. Quantitative real-time reverse transcriptase polymerase chain reaction assay was carried out to verify the changes of some differentially expressed RNAs in the injured dorsal root ganglia after spinal nerve ligation. RESULTS: Our results showed that more than 50 million (M) paired mapped sequences with strand information were yielded in each group (51.87 M–56.12 M in sham vs. 51.08 M–57.99 M in spinal nerve ligation). Six days after spinal nerve ligation, expression levels of 11,163 out of a total of 27,463 identified genes in the injured dorsal root ganglia significantly changed, of which 52.14% were upregulated and 47.86% downregulated. The largest transcriptional changes were observed in protein-coding genes (91.5%) followed by noncoding RNAs. Within 944 differentially expressed noncoding RNAs, the most significant changes were seen in long interspersed noncoding RNAs followed by antisense RNAs, processed transcripts, and pseudogenes. We observed a notable proportion of reads aligning to intronic regions in both groups (44.0% in sham vs. 49.6% in spinal nerve ligation). Using quantitative real-time polymerase chain reaction, we confirmed consistent differential expression of selected genes including Kcna2, Oprm1 as well as lncRNAs Gm21781 and 4732491K20Rik following spinal nerve ligation. CONCLUSION: Our findings suggest that next generation RNA sequencing can be used as a promising approach to analyze the changes of whole transcriptomes in dorsal root ganglia following nerve injury and to possibly identify new targets for prevention and treatment of neuropathic pain. SAGE Publications 2016-03-11 /pmc/articles/PMC4955972/ /pubmed/27030721 http://dx.doi.org/10.1177/1744806916629048 Text en © The Author(s) 2016 http://creativecommons.org/licenses/by/3.0/ This article is distributed under the terms of the Creative Commons Attribution 3.0 License (http://www.creativecommons.org/licenses/by/3.0/) which permits any use, reproduction and distribution of the work without further permission provided the original work is attributed as specified on the SAGE and Open Access page (https://us.sagepub.com/en-us/nam/open-access-at-sage).
spellingShingle Original Article
Wu, Shaogen
Marie Lutz, Brianna
Miao, Xuerong
Liang, Lingli
Mo, Kai
Chang, Yun-Juan
Du, Peicheng
Soteropoulos, Patricia
Tian, Bin
Kaufman, Andrew G.
Bekker, Alex
Hu, Yali
Tao, Yuan-Xiang
Dorsal root ganglion transcriptome analysis following peripheral nerve injury in mice
title Dorsal root ganglion transcriptome analysis following peripheral nerve injury in mice
title_full Dorsal root ganglion transcriptome analysis following peripheral nerve injury in mice
title_fullStr Dorsal root ganglion transcriptome analysis following peripheral nerve injury in mice
title_full_unstemmed Dorsal root ganglion transcriptome analysis following peripheral nerve injury in mice
title_short Dorsal root ganglion transcriptome analysis following peripheral nerve injury in mice
title_sort dorsal root ganglion transcriptome analysis following peripheral nerve injury in mice
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4955972/
https://www.ncbi.nlm.nih.gov/pubmed/27030721
http://dx.doi.org/10.1177/1744806916629048
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