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MicroRNA-134 Contributes to Glucose-Induced Endothelial Cell Dysfunction and This Effect Can Be Reversed by Far-Infrared Irradiation

Diabetes mellitus (DM) is a metabolic disease that is increasing worldwide. Furthermore, it is associated with the deregulation of vascular-related functions, which can develop into major complications among DM patients. Endothelial colony forming cells (ECFCs) have the potential to bring about medi...

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Autores principales: Wang, Hsei-Wei, Su, Shu-Han, Wang, Yen-Li, Chang, Shih-Ting, Liao, Ko-Hsun, Lo, Hung-Hao, Chiu, Ya-Lin, Hsieh, Tsung-Han, Huang, Tse-Shun, Lin, Chin-Sheng, Cheng, Shu-Meng, Cheng, Cheng-Chung
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4723308/
https://www.ncbi.nlm.nih.gov/pubmed/26799933
http://dx.doi.org/10.1371/journal.pone.0147067
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author Wang, Hsei-Wei
Su, Shu-Han
Wang, Yen-Li
Chang, Shih-Ting
Liao, Ko-Hsun
Lo, Hung-Hao
Chiu, Ya-Lin
Hsieh, Tsung-Han
Huang, Tse-Shun
Lin, Chin-Sheng
Cheng, Shu-Meng
Cheng, Cheng-Chung
author_facet Wang, Hsei-Wei
Su, Shu-Han
Wang, Yen-Li
Chang, Shih-Ting
Liao, Ko-Hsun
Lo, Hung-Hao
Chiu, Ya-Lin
Hsieh, Tsung-Han
Huang, Tse-Shun
Lin, Chin-Sheng
Cheng, Shu-Meng
Cheng, Cheng-Chung
author_sort Wang, Hsei-Wei
collection PubMed
description Diabetes mellitus (DM) is a metabolic disease that is increasing worldwide. Furthermore, it is associated with the deregulation of vascular-related functions, which can develop into major complications among DM patients. Endothelial colony forming cells (ECFCs) have the potential to bring about medical repairs because of their post-natal angiogenic activities; however, such activities are impaired by high glucose- (HG) and the DM-associated conditions. Far-infrared radiation (FIR) transfers energy as heat that is perceived by the thermoreceptors in human skin. Several studies have revealed that FIR improves vascular endothelial functioning and boost angiogenesis. FIR has been used as anti-inflammatory therapy and as a clinical treatment for peripheral circulation improvement. In addition to vascular repair, there is increasing evidence to show that FIR can be applied to a variety of diseases, including cardiovascular disorders, hypertension and arthritis. Yet mechanism of action of FIR and the biomarkers that indicate FIR effects remain unclear. MicroRNA-134 (miR-134-5p) was identified by small RNA sequencing as being increased in high glucose (HG) treated dfECFCs (HG-dfECFCs). Highly expressed miR-134 was also validated in dmECFCs by RT-qPCR and it is associated with impaired angiogenic activities of ECFCs. The functioning of ECFCs is improved by FIR treatment and this occurs via a reduction in the level of miR-134 and an increase in the NRIP1 transcript, a direct target of miR-134. Using a mouse ischemic hindlimb model, the recovery of impaired blood flow in the presence of HG-dfECFCs was improved by FIR pretreatment and this enhanced functionality was decreased when there was miR-134 overexpression in the FIR pretreated HG-dfECFCs. In conclusion, our results reveal that the deregulation of miR-134 is involved in angiogenic defects found in DM patients. FIR treatment improves the angiogenic activity of HG-dfECFCs and dmECFCs and FIR has potential as a treatment for DM. Detection of miR-134 expression in FIR-treated ECFCs should help us to explore further the effectiveness of FIR therapy.
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spelling pubmed-47233082016-01-30 MicroRNA-134 Contributes to Glucose-Induced Endothelial Cell Dysfunction and This Effect Can Be Reversed by Far-Infrared Irradiation Wang, Hsei-Wei Su, Shu-Han Wang, Yen-Li Chang, Shih-Ting Liao, Ko-Hsun Lo, Hung-Hao Chiu, Ya-Lin Hsieh, Tsung-Han Huang, Tse-Shun Lin, Chin-Sheng Cheng, Shu-Meng Cheng, Cheng-Chung PLoS One Research Article Diabetes mellitus (DM) is a metabolic disease that is increasing worldwide. Furthermore, it is associated with the deregulation of vascular-related functions, which can develop into major complications among DM patients. Endothelial colony forming cells (ECFCs) have the potential to bring about medical repairs because of their post-natal angiogenic activities; however, such activities are impaired by high glucose- (HG) and the DM-associated conditions. Far-infrared radiation (FIR) transfers energy as heat that is perceived by the thermoreceptors in human skin. Several studies have revealed that FIR improves vascular endothelial functioning and boost angiogenesis. FIR has been used as anti-inflammatory therapy and as a clinical treatment for peripheral circulation improvement. In addition to vascular repair, there is increasing evidence to show that FIR can be applied to a variety of diseases, including cardiovascular disorders, hypertension and arthritis. Yet mechanism of action of FIR and the biomarkers that indicate FIR effects remain unclear. MicroRNA-134 (miR-134-5p) was identified by small RNA sequencing as being increased in high glucose (HG) treated dfECFCs (HG-dfECFCs). Highly expressed miR-134 was also validated in dmECFCs by RT-qPCR and it is associated with impaired angiogenic activities of ECFCs. The functioning of ECFCs is improved by FIR treatment and this occurs via a reduction in the level of miR-134 and an increase in the NRIP1 transcript, a direct target of miR-134. Using a mouse ischemic hindlimb model, the recovery of impaired blood flow in the presence of HG-dfECFCs was improved by FIR pretreatment and this enhanced functionality was decreased when there was miR-134 overexpression in the FIR pretreated HG-dfECFCs. In conclusion, our results reveal that the deregulation of miR-134 is involved in angiogenic defects found in DM patients. FIR treatment improves the angiogenic activity of HG-dfECFCs and dmECFCs and FIR has potential as a treatment for DM. Detection of miR-134 expression in FIR-treated ECFCs should help us to explore further the effectiveness of FIR therapy. Public Library of Science 2016-01-22 /pmc/articles/PMC4723308/ /pubmed/26799933 http://dx.doi.org/10.1371/journal.pone.0147067 Text en © 2016 Wang 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 (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Wang, Hsei-Wei
Su, Shu-Han
Wang, Yen-Li
Chang, Shih-Ting
Liao, Ko-Hsun
Lo, Hung-Hao
Chiu, Ya-Lin
Hsieh, Tsung-Han
Huang, Tse-Shun
Lin, Chin-Sheng
Cheng, Shu-Meng
Cheng, Cheng-Chung
MicroRNA-134 Contributes to Glucose-Induced Endothelial Cell Dysfunction and This Effect Can Be Reversed by Far-Infrared Irradiation
title MicroRNA-134 Contributes to Glucose-Induced Endothelial Cell Dysfunction and This Effect Can Be Reversed by Far-Infrared Irradiation
title_full MicroRNA-134 Contributes to Glucose-Induced Endothelial Cell Dysfunction and This Effect Can Be Reversed by Far-Infrared Irradiation
title_fullStr MicroRNA-134 Contributes to Glucose-Induced Endothelial Cell Dysfunction and This Effect Can Be Reversed by Far-Infrared Irradiation
title_full_unstemmed MicroRNA-134 Contributes to Glucose-Induced Endothelial Cell Dysfunction and This Effect Can Be Reversed by Far-Infrared Irradiation
title_short MicroRNA-134 Contributes to Glucose-Induced Endothelial Cell Dysfunction and This Effect Can Be Reversed by Far-Infrared Irradiation
title_sort microrna-134 contributes to glucose-induced endothelial cell dysfunction and this effect can be reversed by far-infrared irradiation
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4723308/
https://www.ncbi.nlm.nih.gov/pubmed/26799933
http://dx.doi.org/10.1371/journal.pone.0147067
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