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Comprehensive miRNome-Wide Profiling in a Neuronal Cell Model of Synucleinopathy Implies Involvement of Cell Cycle Genes

Growing evidence suggests that epigenetic mechanisms like microRNA-mediated transcriptional regulation contribute to the pathogenesis of parkinsonism. In order to study the influence of microRNAs (miRNAs), we analyzed the miRNome 2 days prior to major cell death in α-synuclein-overexpressing Lund hu...

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Autores principales: Findeiss, Elisabeth, Schwarz, Sigrid C., Evsyukov, Valentin, Rösler, Thomas W., Höllerhage, Matthias, Chakroun, Tasnim, Nykänen, Niko-Petteri, Shen, Yimin, Wurst, Wolfgang, Kohl, Michael, Tost, Jörg, Höglinger, Günter U.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7969723/
https://www.ncbi.nlm.nih.gov/pubmed/33748099
http://dx.doi.org/10.3389/fcell.2021.561086
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author Findeiss, Elisabeth
Schwarz, Sigrid C.
Evsyukov, Valentin
Rösler, Thomas W.
Höllerhage, Matthias
Chakroun, Tasnim
Nykänen, Niko-Petteri
Shen, Yimin
Wurst, Wolfgang
Kohl, Michael
Tost, Jörg
Höglinger, Günter U.
author_facet Findeiss, Elisabeth
Schwarz, Sigrid C.
Evsyukov, Valentin
Rösler, Thomas W.
Höllerhage, Matthias
Chakroun, Tasnim
Nykänen, Niko-Petteri
Shen, Yimin
Wurst, Wolfgang
Kohl, Michael
Tost, Jörg
Höglinger, Günter U.
author_sort Findeiss, Elisabeth
collection PubMed
description Growing evidence suggests that epigenetic mechanisms like microRNA-mediated transcriptional regulation contribute to the pathogenesis of parkinsonism. In order to study the influence of microRNAs (miRNAs), we analyzed the miRNome 2 days prior to major cell death in α-synuclein-overexpressing Lund human mesencephalic neurons, a well-established cell model of Parkinson’s disease (PD), by next-generation sequencing. The expression levels of 23 miRNAs were significantly altered in α-synuclein-overexpressing cells, 11 were down- and 12 upregulated (P < 0.01; non-adjusted). The in silico analysis of known target genes of these miRNAs was complemented by the inclusion of a transcriptome dataset (BeadChip) of the same cellular system, revealing the G0/G1 cell cycle transition to be markedly enriched. Out of 124 KEGG-annotated cell cycle genes, 15 were present in the miRNA target gene dataset and six G0/G1 cell cycle genes were found to be significantly altered upon α-synuclein overexpression, with five genes up- (CCND1, CCND2, and CDK4 at P < 0.01; E2F3, MYC at P < 0.05) and one gene downregulated (CDKN1C at P < 0.001). Additionally, several of these altered genes are targeted by miRNAs hsa-miR-34a-5p and hsa-miR-34c-5p, which also modulate α-synuclein expression levels. Functional intervention by siRNA-mediated knockdown of the cell cycle gene cyclin D1 (CCND1) confirmed that silencing of cell cycle initiation is able to substantially reduce α-synuclein-mediated cytotoxicity. The present findings suggest that α-synuclein accumulation induces microRNA-mediated aberrant cell cycle activation in post-mitotic dopaminergic neurons. Thus, the mitotic cell cycle pathway at the level of miRNAs might offer interesting novel therapeutic targets for PD.
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spelling pubmed-79697232021-03-19 Comprehensive miRNome-Wide Profiling in a Neuronal Cell Model of Synucleinopathy Implies Involvement of Cell Cycle Genes Findeiss, Elisabeth Schwarz, Sigrid C. Evsyukov, Valentin Rösler, Thomas W. Höllerhage, Matthias Chakroun, Tasnim Nykänen, Niko-Petteri Shen, Yimin Wurst, Wolfgang Kohl, Michael Tost, Jörg Höglinger, Günter U. Front Cell Dev Biol Cell and Developmental Biology Growing evidence suggests that epigenetic mechanisms like microRNA-mediated transcriptional regulation contribute to the pathogenesis of parkinsonism. In order to study the influence of microRNAs (miRNAs), we analyzed the miRNome 2 days prior to major cell death in α-synuclein-overexpressing Lund human mesencephalic neurons, a well-established cell model of Parkinson’s disease (PD), by next-generation sequencing. The expression levels of 23 miRNAs were significantly altered in α-synuclein-overexpressing cells, 11 were down- and 12 upregulated (P < 0.01; non-adjusted). The in silico analysis of known target genes of these miRNAs was complemented by the inclusion of a transcriptome dataset (BeadChip) of the same cellular system, revealing the G0/G1 cell cycle transition to be markedly enriched. Out of 124 KEGG-annotated cell cycle genes, 15 were present in the miRNA target gene dataset and six G0/G1 cell cycle genes were found to be significantly altered upon α-synuclein overexpression, with five genes up- (CCND1, CCND2, and CDK4 at P < 0.01; E2F3, MYC at P < 0.05) and one gene downregulated (CDKN1C at P < 0.001). Additionally, several of these altered genes are targeted by miRNAs hsa-miR-34a-5p and hsa-miR-34c-5p, which also modulate α-synuclein expression levels. Functional intervention by siRNA-mediated knockdown of the cell cycle gene cyclin D1 (CCND1) confirmed that silencing of cell cycle initiation is able to substantially reduce α-synuclein-mediated cytotoxicity. The present findings suggest that α-synuclein accumulation induces microRNA-mediated aberrant cell cycle activation in post-mitotic dopaminergic neurons. Thus, the mitotic cell cycle pathway at the level of miRNAs might offer interesting novel therapeutic targets for PD. Frontiers Media S.A. 2021-03-04 /pmc/articles/PMC7969723/ /pubmed/33748099 http://dx.doi.org/10.3389/fcell.2021.561086 Text en Copyright © 2021 Findeiss, Schwarz, Evsyukov, Rösler, Höllerhage, Chakroun, Nykänen, Shen, Wurst, Kohl, Tost and Höglinger. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Cell and Developmental Biology
Findeiss, Elisabeth
Schwarz, Sigrid C.
Evsyukov, Valentin
Rösler, Thomas W.
Höllerhage, Matthias
Chakroun, Tasnim
Nykänen, Niko-Petteri
Shen, Yimin
Wurst, Wolfgang
Kohl, Michael
Tost, Jörg
Höglinger, Günter U.
Comprehensive miRNome-Wide Profiling in a Neuronal Cell Model of Synucleinopathy Implies Involvement of Cell Cycle Genes
title Comprehensive miRNome-Wide Profiling in a Neuronal Cell Model of Synucleinopathy Implies Involvement of Cell Cycle Genes
title_full Comprehensive miRNome-Wide Profiling in a Neuronal Cell Model of Synucleinopathy Implies Involvement of Cell Cycle Genes
title_fullStr Comprehensive miRNome-Wide Profiling in a Neuronal Cell Model of Synucleinopathy Implies Involvement of Cell Cycle Genes
title_full_unstemmed Comprehensive miRNome-Wide Profiling in a Neuronal Cell Model of Synucleinopathy Implies Involvement of Cell Cycle Genes
title_short Comprehensive miRNome-Wide Profiling in a Neuronal Cell Model of Synucleinopathy Implies Involvement of Cell Cycle Genes
title_sort comprehensive mirnome-wide profiling in a neuronal cell model of synucleinopathy implies involvement of cell cycle genes
topic Cell and Developmental Biology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7969723/
https://www.ncbi.nlm.nih.gov/pubmed/33748099
http://dx.doi.org/10.3389/fcell.2021.561086
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