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microRNA-dependent regulation of biomechanical genes establishes tissue stiffness homeostasis

Vertebrate tissues exhibit mechanical homeostasis, showing stable stiffness and tension over time and recovery after changes in mechanical stress. However, the regulatory pathways that mediate these effects are unknown. A comprehensive identification of Argonaute-2(AGO2)-associated microRNAs and mRN...

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Autores principales: Moro, Albertomaria, Discroll, Tristan, Boraas, Liana C., Armero, William, Kasper, Dionna M., Baeyens, Nicolas, Jouy, Charlene, Mallikarjun, Venkatesh, Swift, Joe, Ahn, Sang Joon, Lee, Donghoon, Zhang, Jing, Gu, Mengting, Gerstein, Mark, Schwartz, Martin, Nicoli, Stefania
Formato: Online Artículo Texto
Lenguaje:English
Publicado: 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6528464/
https://www.ncbi.nlm.nih.gov/pubmed/30742093
http://dx.doi.org/10.1038/s41556-019-0272-y
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author Moro, Albertomaria
Discroll, Tristan
Boraas, Liana C.
Armero, William
Kasper, Dionna M.
Baeyens, Nicolas
Jouy, Charlene
Mallikarjun, Venkatesh
Swift, Joe
Ahn, Sang Joon
Lee, Donghoon
Zhang, Jing
Gu, Mengting
Gerstein, Mark
Schwartz, Martin
Nicoli, Stefania
author_facet Moro, Albertomaria
Discroll, Tristan
Boraas, Liana C.
Armero, William
Kasper, Dionna M.
Baeyens, Nicolas
Jouy, Charlene
Mallikarjun, Venkatesh
Swift, Joe
Ahn, Sang Joon
Lee, Donghoon
Zhang, Jing
Gu, Mengting
Gerstein, Mark
Schwartz, Martin
Nicoli, Stefania
author_sort Moro, Albertomaria
collection PubMed
description Vertebrate tissues exhibit mechanical homeostasis, showing stable stiffness and tension over time and recovery after changes in mechanical stress. However, the regulatory pathways that mediate these effects are unknown. A comprehensive identification of Argonaute-2(AGO2)-associated microRNAs and mRNAs in endothelial cells identified a network of 122 microRNA families that target 73 mRNAs encoding cytoskeletal, contractile, adhesive and extracellular matrix (CAM) proteins. These microRNAs increased in cells plated on stiff vs. soft substrates, consistent with homeostasis, and suppressed targets via microRNA recognition elements (MREs) within the 3’UTRs of CAM mRNAs. Inhibition of DROSHA or AGO2, or disruption of MREs within individual target mRNAs such as Connective Tissue Growth Factor (CTGF), induced hyper-adhesive, hyper-contractile phenotypes in endothelial and fibroblast cells in vitro, and increased tissue stiffness, contractility and extracellular matrix (ECM) deposition in the zebrafish fin-fold in vivo. Thus, a network of microRNAs buffers CAM expression to mediate tissue mechanical homeostasis.
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spelling pubmed-65284642019-08-11 microRNA-dependent regulation of biomechanical genes establishes tissue stiffness homeostasis Moro, Albertomaria Discroll, Tristan Boraas, Liana C. Armero, William Kasper, Dionna M. Baeyens, Nicolas Jouy, Charlene Mallikarjun, Venkatesh Swift, Joe Ahn, Sang Joon Lee, Donghoon Zhang, Jing Gu, Mengting Gerstein, Mark Schwartz, Martin Nicoli, Stefania Nat Cell Biol Article Vertebrate tissues exhibit mechanical homeostasis, showing stable stiffness and tension over time and recovery after changes in mechanical stress. However, the regulatory pathways that mediate these effects are unknown. A comprehensive identification of Argonaute-2(AGO2)-associated microRNAs and mRNAs in endothelial cells identified a network of 122 microRNA families that target 73 mRNAs encoding cytoskeletal, contractile, adhesive and extracellular matrix (CAM) proteins. These microRNAs increased in cells plated on stiff vs. soft substrates, consistent with homeostasis, and suppressed targets via microRNA recognition elements (MREs) within the 3’UTRs of CAM mRNAs. Inhibition of DROSHA or AGO2, or disruption of MREs within individual target mRNAs such as Connective Tissue Growth Factor (CTGF), induced hyper-adhesive, hyper-contractile phenotypes in endothelial and fibroblast cells in vitro, and increased tissue stiffness, contractility and extracellular matrix (ECM) deposition in the zebrafish fin-fold in vivo. Thus, a network of microRNAs buffers CAM expression to mediate tissue mechanical homeostasis. 2019-02-11 2019-03 /pmc/articles/PMC6528464/ /pubmed/30742093 http://dx.doi.org/10.1038/s41556-019-0272-y Text en Users may view, print, copy, and download text and data-mine the content in such documents, for the purposes of academic research, subject always to the full Conditions of use:http://www.nature.com/authors/editorial_policies/license.html#terms
spellingShingle Article
Moro, Albertomaria
Discroll, Tristan
Boraas, Liana C.
Armero, William
Kasper, Dionna M.
Baeyens, Nicolas
Jouy, Charlene
Mallikarjun, Venkatesh
Swift, Joe
Ahn, Sang Joon
Lee, Donghoon
Zhang, Jing
Gu, Mengting
Gerstein, Mark
Schwartz, Martin
Nicoli, Stefania
microRNA-dependent regulation of biomechanical genes establishes tissue stiffness homeostasis
title microRNA-dependent regulation of biomechanical genes establishes tissue stiffness homeostasis
title_full microRNA-dependent regulation of biomechanical genes establishes tissue stiffness homeostasis
title_fullStr microRNA-dependent regulation of biomechanical genes establishes tissue stiffness homeostasis
title_full_unstemmed microRNA-dependent regulation of biomechanical genes establishes tissue stiffness homeostasis
title_short microRNA-dependent regulation of biomechanical genes establishes tissue stiffness homeostasis
title_sort microrna-dependent regulation of biomechanical genes establishes tissue stiffness homeostasis
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6528464/
https://www.ncbi.nlm.nih.gov/pubmed/30742093
http://dx.doi.org/10.1038/s41556-019-0272-y
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