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Identification of novel genetic regulations associated with airway epithelial homeostasis using next-generation sequencing data and bioinformatics approaches

Airway epithelial cells play important roles in airway remodeling. Understanding gene regulations in airway epithelial homeostasis may provide new insights into pathogenesis and treatment of asthma. This study aimed to combine gene expression (GE) microarray, next generation sequencing (NGS), and bi...

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Autores principales: Sheu, Chau-Chyun, Tsai, Ming-Ju, Chen, Feng-Wei, Chang, Kuo-Feng, Chang, Wei-An, Chong, Inn-Wen, Kuo, Po-Lin, Hsu, Ya-Ling
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Impact Journals LLC 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5669919/
https://www.ncbi.nlm.nih.gov/pubmed/29137293
http://dx.doi.org/10.18632/oncotarget.19752
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author Sheu, Chau-Chyun
Tsai, Ming-Ju
Chen, Feng-Wei
Chang, Kuo-Feng
Chang, Wei-An
Chong, Inn-Wen
Kuo, Po-Lin
Hsu, Ya-Ling
author_facet Sheu, Chau-Chyun
Tsai, Ming-Ju
Chen, Feng-Wei
Chang, Kuo-Feng
Chang, Wei-An
Chong, Inn-Wen
Kuo, Po-Lin
Hsu, Ya-Ling
author_sort Sheu, Chau-Chyun
collection PubMed
description Airway epithelial cells play important roles in airway remodeling. Understanding gene regulations in airway epithelial homeostasis may provide new insights into pathogenesis and treatment of asthma. This study aimed to combine gene expression (GE) microarray, next generation sequencing (NGS), and bioinformatics to explore genetic regulations associated with airway epithelial homeostasis. We analyzed expression profiles of mRNAs (GE microarray) and microRNAs (NGS) in normal and asthmatic bronchial epithelial cells, and identified 9 genes with potential microRNA-mRNA interactions. Of these 9 dysregulated genes, downregulation of MEF2C and MDGA1 were validated in a representative microarray (GSE43696) from the gene expression omnibus (GEO) database. Our findings suggested that upregulated mir-203a may repress MEF2C, a transcription factor, leading to decreased cellular proliferation. In addition, upregulated mir-3065-3p may repress MDGA1, a cell membrane anchor protein, resulting in suppression of cell-cell adhesion. We also found that KCNJ2, a potassium channel, was downregulated in severe asthma and may promote epithelial cell apoptosis. We proposed that aberrant regulations of mir-203a-MEF2C and mir-3065-3p-MDGA1, as well as downregulation of KCNJ2, play important roles in airway epithelial homeostasis in asthma. These findings provide new perspectives on diagnostic or therapeutic strategies targeting bronchial epithelium for asthma. The approach in this study also provides a new aspect of studying asthma.
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spelling pubmed-56699192017-11-09 Identification of novel genetic regulations associated with airway epithelial homeostasis using next-generation sequencing data and bioinformatics approaches Sheu, Chau-Chyun Tsai, Ming-Ju Chen, Feng-Wei Chang, Kuo-Feng Chang, Wei-An Chong, Inn-Wen Kuo, Po-Lin Hsu, Ya-Ling Oncotarget Research Paper Airway epithelial cells play important roles in airway remodeling. Understanding gene regulations in airway epithelial homeostasis may provide new insights into pathogenesis and treatment of asthma. This study aimed to combine gene expression (GE) microarray, next generation sequencing (NGS), and bioinformatics to explore genetic regulations associated with airway epithelial homeostasis. We analyzed expression profiles of mRNAs (GE microarray) and microRNAs (NGS) in normal and asthmatic bronchial epithelial cells, and identified 9 genes with potential microRNA-mRNA interactions. Of these 9 dysregulated genes, downregulation of MEF2C and MDGA1 were validated in a representative microarray (GSE43696) from the gene expression omnibus (GEO) database. Our findings suggested that upregulated mir-203a may repress MEF2C, a transcription factor, leading to decreased cellular proliferation. In addition, upregulated mir-3065-3p may repress MDGA1, a cell membrane anchor protein, resulting in suppression of cell-cell adhesion. We also found that KCNJ2, a potassium channel, was downregulated in severe asthma and may promote epithelial cell apoptosis. We proposed that aberrant regulations of mir-203a-MEF2C and mir-3065-3p-MDGA1, as well as downregulation of KCNJ2, play important roles in airway epithelial homeostasis in asthma. These findings provide new perspectives on diagnostic or therapeutic strategies targeting bronchial epithelium for asthma. The approach in this study also provides a new aspect of studying asthma. Impact Journals LLC 2017-07-31 /pmc/articles/PMC5669919/ /pubmed/29137293 http://dx.doi.org/10.18632/oncotarget.19752 Text en Copyright: © 2017 Sheu et al. http://creativecommons.org/licenses/by/3.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/3.0/) 3.0 (CC BY 3.0), which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Paper
Sheu, Chau-Chyun
Tsai, Ming-Ju
Chen, Feng-Wei
Chang, Kuo-Feng
Chang, Wei-An
Chong, Inn-Wen
Kuo, Po-Lin
Hsu, Ya-Ling
Identification of novel genetic regulations associated with airway epithelial homeostasis using next-generation sequencing data and bioinformatics approaches
title Identification of novel genetic regulations associated with airway epithelial homeostasis using next-generation sequencing data and bioinformatics approaches
title_full Identification of novel genetic regulations associated with airway epithelial homeostasis using next-generation sequencing data and bioinformatics approaches
title_fullStr Identification of novel genetic regulations associated with airway epithelial homeostasis using next-generation sequencing data and bioinformatics approaches
title_full_unstemmed Identification of novel genetic regulations associated with airway epithelial homeostasis using next-generation sequencing data and bioinformatics approaches
title_short Identification of novel genetic regulations associated with airway epithelial homeostasis using next-generation sequencing data and bioinformatics approaches
title_sort identification of novel genetic regulations associated with airway epithelial homeostasis using next-generation sequencing data and bioinformatics approaches
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5669919/
https://www.ncbi.nlm.nih.gov/pubmed/29137293
http://dx.doi.org/10.18632/oncotarget.19752
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