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miR-196a Enhances Neuronal Morphology through Suppressing RANBP10 to Provide Neuroprotection in Huntington's Disease

MicroRNAs (miRNAs) play important roles in several neurobiological processes, including the development and progression of diseases. Previously, we identified that one specific miRNA, miR-196a, provides neuroprotective effects on Huntington's disease (HD), although the detailed mechanism is sti...

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Autores principales: Her, Lu-Shiun, Mao, Su-Han, Chang, Chih-Yi, Cheng, Pei-Hsun, Chang, Yu-Fan, Yang, Han-In, Chen, Chuan-Mu, Yang, Shang-Hsun
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Ivyspring International Publisher 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5525749/
https://www.ncbi.nlm.nih.gov/pubmed/28744327
http://dx.doi.org/10.7150/thno.18813
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author Her, Lu-Shiun
Mao, Su-Han
Chang, Chih-Yi
Cheng, Pei-Hsun
Chang, Yu-Fan
Yang, Han-In
Chen, Chuan-Mu
Yang, Shang-Hsun
author_facet Her, Lu-Shiun
Mao, Su-Han
Chang, Chih-Yi
Cheng, Pei-Hsun
Chang, Yu-Fan
Yang, Han-In
Chen, Chuan-Mu
Yang, Shang-Hsun
author_sort Her, Lu-Shiun
collection PubMed
description MicroRNAs (miRNAs) play important roles in several neurobiological processes, including the development and progression of diseases. Previously, we identified that one specific miRNA, miR-196a, provides neuroprotective effects on Huntington's disease (HD), although the detailed mechanism is still unclear. Based on our bioinformatic analyses, we hypothesize miR-196a might offer neuroprotective functions through improving cytoskeletons of brain cells. Here, we show that miR-196a could enhance neuronal morphology, further ameliorating intracellular transport, synaptic plasticity, neuronal activity, and learning and memory abilities. Additionally, we found that miR-196a could suppress the expression of RAN binding protein 10 (RANBP10) through binding to its 3' untranslated region, and higher expression of RANBP10 exacerbates neuronal morphology and intracellular transport. Furthermore, miR-196a enhances neuronal morphology through suppressing RANBP10 and increasing the ability of β-tubulin polymerization. Most importantly, we observed higher expression of RANBP10 in the brains of HD transgenic mice, and higher expression of RANBP10 might exacerbate the pathological aggregates in HD. Taken together, we provide evidence that enhancement of neuronal morphology through RANBP10 is one of the neuroprotective mechanisms for miR-196a. Since miR-196a has also been reported in other neuronal diseases, this study might offer insights with regard to the therapeutic use of miR-196a in other neuronal diseases.
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spelling pubmed-55257492017-07-25 miR-196a Enhances Neuronal Morphology through Suppressing RANBP10 to Provide Neuroprotection in Huntington's Disease Her, Lu-Shiun Mao, Su-Han Chang, Chih-Yi Cheng, Pei-Hsun Chang, Yu-Fan Yang, Han-In Chen, Chuan-Mu Yang, Shang-Hsun Theranostics Research Paper MicroRNAs (miRNAs) play important roles in several neurobiological processes, including the development and progression of diseases. Previously, we identified that one specific miRNA, miR-196a, provides neuroprotective effects on Huntington's disease (HD), although the detailed mechanism is still unclear. Based on our bioinformatic analyses, we hypothesize miR-196a might offer neuroprotective functions through improving cytoskeletons of brain cells. Here, we show that miR-196a could enhance neuronal morphology, further ameliorating intracellular transport, synaptic plasticity, neuronal activity, and learning and memory abilities. Additionally, we found that miR-196a could suppress the expression of RAN binding protein 10 (RANBP10) through binding to its 3' untranslated region, and higher expression of RANBP10 exacerbates neuronal morphology and intracellular transport. Furthermore, miR-196a enhances neuronal morphology through suppressing RANBP10 and increasing the ability of β-tubulin polymerization. Most importantly, we observed higher expression of RANBP10 in the brains of HD transgenic mice, and higher expression of RANBP10 might exacerbate the pathological aggregates in HD. Taken together, we provide evidence that enhancement of neuronal morphology through RANBP10 is one of the neuroprotective mechanisms for miR-196a. Since miR-196a has also been reported in other neuronal diseases, this study might offer insights with regard to the therapeutic use of miR-196a in other neuronal diseases. Ivyspring International Publisher 2017-06-24 /pmc/articles/PMC5525749/ /pubmed/28744327 http://dx.doi.org/10.7150/thno.18813 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
Her, Lu-Shiun
Mao, Su-Han
Chang, Chih-Yi
Cheng, Pei-Hsun
Chang, Yu-Fan
Yang, Han-In
Chen, Chuan-Mu
Yang, Shang-Hsun
miR-196a Enhances Neuronal Morphology through Suppressing RANBP10 to Provide Neuroprotection in Huntington's Disease
title miR-196a Enhances Neuronal Morphology through Suppressing RANBP10 to Provide Neuroprotection in Huntington's Disease
title_full miR-196a Enhances Neuronal Morphology through Suppressing RANBP10 to Provide Neuroprotection in Huntington's Disease
title_fullStr miR-196a Enhances Neuronal Morphology through Suppressing RANBP10 to Provide Neuroprotection in Huntington's Disease
title_full_unstemmed miR-196a Enhances Neuronal Morphology through Suppressing RANBP10 to Provide Neuroprotection in Huntington's Disease
title_short miR-196a Enhances Neuronal Morphology through Suppressing RANBP10 to Provide Neuroprotection in Huntington's Disease
title_sort mir-196a enhances neuronal morphology through suppressing ranbp10 to provide neuroprotection in huntington's disease
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5525749/
https://www.ncbi.nlm.nih.gov/pubmed/28744327
http://dx.doi.org/10.7150/thno.18813
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