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MicroRNA-497 impairs the growth of chemoresistant neuroblastoma cells by targeting cell cycle, survival and vascular permeability genes

Despite multimodal therapies, a high percentage of high-risk neuroblastoma (NB) become refractory to current treatments, most of which interfere with cell cycle and DNA synthesis or function, activating the DNA damage response (DDR). In cancer, this process is frequently altered by deregulated expre...

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Autores principales: Soriano, Aroa, París-Coderch, Laia, Jubierre, Luz, Martínez, Alba, Zhou, Xiangyu, Piskareva, Olga, Bray, Isabella, Vidal, Isaac, Almazán-Moga, Ana, Molist, Carla, Roma, Josep, Bayascas, José R., Casanovas, Oriol, Stallings, Raymond L., de Toledo, José Sánchez, Gallego, Soledad, Segura, Miguel F.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Impact Journals LLC 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4891039/
https://www.ncbi.nlm.nih.gov/pubmed/26824183
http://dx.doi.org/10.18632/oncotarget.7005
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author Soriano, Aroa
París-Coderch, Laia
Jubierre, Luz
Martínez, Alba
Zhou, Xiangyu
Piskareva, Olga
Bray, Isabella
Vidal, Isaac
Almazán-Moga, Ana
Molist, Carla
Roma, Josep
Bayascas, José R.
Casanovas, Oriol
Stallings, Raymond L.
de Toledo, José Sánchez
Gallego, Soledad
Segura, Miguel F.
author_facet Soriano, Aroa
París-Coderch, Laia
Jubierre, Luz
Martínez, Alba
Zhou, Xiangyu
Piskareva, Olga
Bray, Isabella
Vidal, Isaac
Almazán-Moga, Ana
Molist, Carla
Roma, Josep
Bayascas, José R.
Casanovas, Oriol
Stallings, Raymond L.
de Toledo, José Sánchez
Gallego, Soledad
Segura, Miguel F.
author_sort Soriano, Aroa
collection PubMed
description Despite multimodal therapies, a high percentage of high-risk neuroblastoma (NB) become refractory to current treatments, most of which interfere with cell cycle and DNA synthesis or function, activating the DNA damage response (DDR). In cancer, this process is frequently altered by deregulated expression or function of several genes which contribute to multidrug resistance (MDR). MicroRNAs are outstanding candidates for therapy since a single microRNA can modulate the expression of multiple genes of the same or different pathways, thus hindering the development of resistance mechanisms by the tumor. We found several genes implicated in the MDR to be overexpressed in high-risk NB which could be targeted by microRNAs simultaneously. Our functional screening identified several of those microRNAs that reduced proliferation of chemoresistant NB cell lines, the best of which was miR-497. Low expression of miR-497 correlated with poor patient outcome. The overexpression of miR-497 reduced the proliferation of multiple chemoresistant NB cell lines and induced apoptosis in MYCN-amplified cell lines. Moreover, the conditional expression of miR-497 in NB xenografts reduced tumor growth and inhibited vascular permeabilization. MiR-497 targets multiple genes related to the DDR, cell cycle, survival and angiogenesis, which renders this molecule a promising candidate for NB therapy.
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spelling pubmed-48910392016-06-20 MicroRNA-497 impairs the growth of chemoresistant neuroblastoma cells by targeting cell cycle, survival and vascular permeability genes Soriano, Aroa París-Coderch, Laia Jubierre, Luz Martínez, Alba Zhou, Xiangyu Piskareva, Olga Bray, Isabella Vidal, Isaac Almazán-Moga, Ana Molist, Carla Roma, Josep Bayascas, José R. Casanovas, Oriol Stallings, Raymond L. de Toledo, José Sánchez Gallego, Soledad Segura, Miguel F. Oncotarget Research Paper Despite multimodal therapies, a high percentage of high-risk neuroblastoma (NB) become refractory to current treatments, most of which interfere with cell cycle and DNA synthesis or function, activating the DNA damage response (DDR). In cancer, this process is frequently altered by deregulated expression or function of several genes which contribute to multidrug resistance (MDR). MicroRNAs are outstanding candidates for therapy since a single microRNA can modulate the expression of multiple genes of the same or different pathways, thus hindering the development of resistance mechanisms by the tumor. We found several genes implicated in the MDR to be overexpressed in high-risk NB which could be targeted by microRNAs simultaneously. Our functional screening identified several of those microRNAs that reduced proliferation of chemoresistant NB cell lines, the best of which was miR-497. Low expression of miR-497 correlated with poor patient outcome. The overexpression of miR-497 reduced the proliferation of multiple chemoresistant NB cell lines and induced apoptosis in MYCN-amplified cell lines. Moreover, the conditional expression of miR-497 in NB xenografts reduced tumor growth and inhibited vascular permeabilization. MiR-497 targets multiple genes related to the DDR, cell cycle, survival and angiogenesis, which renders this molecule a promising candidate for NB therapy. Impact Journals LLC 2016-01-25 /pmc/articles/PMC4891039/ /pubmed/26824183 http://dx.doi.org/10.18632/oncotarget.7005 Text en Copyright: © 2016 Soriano et al. http://creativecommons.org/licenses/by/2.5/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Paper
Soriano, Aroa
París-Coderch, Laia
Jubierre, Luz
Martínez, Alba
Zhou, Xiangyu
Piskareva, Olga
Bray, Isabella
Vidal, Isaac
Almazán-Moga, Ana
Molist, Carla
Roma, Josep
Bayascas, José R.
Casanovas, Oriol
Stallings, Raymond L.
de Toledo, José Sánchez
Gallego, Soledad
Segura, Miguel F.
MicroRNA-497 impairs the growth of chemoresistant neuroblastoma cells by targeting cell cycle, survival and vascular permeability genes
title MicroRNA-497 impairs the growth of chemoresistant neuroblastoma cells by targeting cell cycle, survival and vascular permeability genes
title_full MicroRNA-497 impairs the growth of chemoresistant neuroblastoma cells by targeting cell cycle, survival and vascular permeability genes
title_fullStr MicroRNA-497 impairs the growth of chemoresistant neuroblastoma cells by targeting cell cycle, survival and vascular permeability genes
title_full_unstemmed MicroRNA-497 impairs the growth of chemoresistant neuroblastoma cells by targeting cell cycle, survival and vascular permeability genes
title_short MicroRNA-497 impairs the growth of chemoresistant neuroblastoma cells by targeting cell cycle, survival and vascular permeability genes
title_sort microrna-497 impairs the growth of chemoresistant neuroblastoma cells by targeting cell cycle, survival and vascular permeability genes
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4891039/
https://www.ncbi.nlm.nih.gov/pubmed/26824183
http://dx.doi.org/10.18632/oncotarget.7005
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