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TRPV4 Inhibition and CRISPR-Cas9 Knockout Reduce Inflammation Induced by Hyperphysiological Stretching in Human Annulus Fibrosus Cells

Mechanical loading and inflammation interact to cause degenerative disc disease and low back pain (LBP). However, the underlying mechanosensing and mechanotransductive pathways are poorly understood. This results in untargeted pharmacological treatments that do not take the mechanical aspect of LBP...

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Autores principales: Cambria, Elena, Arlt, Matthias J. E., Wandel, Sandra, Krupkova, Olga, Hitzl, Wolfgang, Passini, Fabian S., Hausmann, Oliver N., Snedeker, Jess G., Ferguson, Stephen J., Wuertz-Kozak, Karin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7407144/
https://www.ncbi.nlm.nih.gov/pubmed/32708074
http://dx.doi.org/10.3390/cells9071736
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author Cambria, Elena
Arlt, Matthias J. E.
Wandel, Sandra
Krupkova, Olga
Hitzl, Wolfgang
Passini, Fabian S.
Hausmann, Oliver N.
Snedeker, Jess G.
Ferguson, Stephen J.
Wuertz-Kozak, Karin
author_facet Cambria, Elena
Arlt, Matthias J. E.
Wandel, Sandra
Krupkova, Olga
Hitzl, Wolfgang
Passini, Fabian S.
Hausmann, Oliver N.
Snedeker, Jess G.
Ferguson, Stephen J.
Wuertz-Kozak, Karin
author_sort Cambria, Elena
collection PubMed
description Mechanical loading and inflammation interact to cause degenerative disc disease and low back pain (LBP). However, the underlying mechanosensing and mechanotransductive pathways are poorly understood. This results in untargeted pharmacological treatments that do not take the mechanical aspect of LBP into account. We investigated the role of the mechanosensitive ion channel TRPV4 in stretch-induced inflammation in human annulus fibrosus (AF) cells. The cells were cyclically stretched to 20% hyperphysiological strain. TRPV4 was either inhibited with the selective TRPV4 antagonist GSK2193874 or knocked out (KO) via CRISPR-Cas9 gene editing. The gene expression, inflammatory mediator release and MAPK pathway activation were analyzed. Hyperphysiological cyclic stretching significantly increased the IL6, IL8, and COX2 mRNA, PGE2 release, and activated p38 MAPK. The TRPV4 pharmacological inhibition significantly attenuated these effects. TRPV4 KO further prevented the stretch-induced upregulation of IL8 mRNA and reduced IL6 and IL8 release, thus supporting the inhibition data. We provide novel evidence that TRPV4 transduces hyperphysiological mechanical signals into inflammatory responses in human AF cells, possibly via p38. Additionally, we show for the first time the successful gene editing of human AF cells via CRISPR-Cas9. The pharmacological inhibition or CRISPR-based targeting of TRPV4 may constitute a potential therapeutic strategy to tackle discogenic LBP in patients with AF injury.
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spelling pubmed-74071442020-08-11 TRPV4 Inhibition and CRISPR-Cas9 Knockout Reduce Inflammation Induced by Hyperphysiological Stretching in Human Annulus Fibrosus Cells Cambria, Elena Arlt, Matthias J. E. Wandel, Sandra Krupkova, Olga Hitzl, Wolfgang Passini, Fabian S. Hausmann, Oliver N. Snedeker, Jess G. Ferguson, Stephen J. Wuertz-Kozak, Karin Cells Article Mechanical loading and inflammation interact to cause degenerative disc disease and low back pain (LBP). However, the underlying mechanosensing and mechanotransductive pathways are poorly understood. This results in untargeted pharmacological treatments that do not take the mechanical aspect of LBP into account. We investigated the role of the mechanosensitive ion channel TRPV4 in stretch-induced inflammation in human annulus fibrosus (AF) cells. The cells were cyclically stretched to 20% hyperphysiological strain. TRPV4 was either inhibited with the selective TRPV4 antagonist GSK2193874 or knocked out (KO) via CRISPR-Cas9 gene editing. The gene expression, inflammatory mediator release and MAPK pathway activation were analyzed. Hyperphysiological cyclic stretching significantly increased the IL6, IL8, and COX2 mRNA, PGE2 release, and activated p38 MAPK. The TRPV4 pharmacological inhibition significantly attenuated these effects. TRPV4 KO further prevented the stretch-induced upregulation of IL8 mRNA and reduced IL6 and IL8 release, thus supporting the inhibition data. We provide novel evidence that TRPV4 transduces hyperphysiological mechanical signals into inflammatory responses in human AF cells, possibly via p38. Additionally, we show for the first time the successful gene editing of human AF cells via CRISPR-Cas9. The pharmacological inhibition or CRISPR-based targeting of TRPV4 may constitute a potential therapeutic strategy to tackle discogenic LBP in patients with AF injury. MDPI 2020-07-21 /pmc/articles/PMC7407144/ /pubmed/32708074 http://dx.doi.org/10.3390/cells9071736 Text en © 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Cambria, Elena
Arlt, Matthias J. E.
Wandel, Sandra
Krupkova, Olga
Hitzl, Wolfgang
Passini, Fabian S.
Hausmann, Oliver N.
Snedeker, Jess G.
Ferguson, Stephen J.
Wuertz-Kozak, Karin
TRPV4 Inhibition and CRISPR-Cas9 Knockout Reduce Inflammation Induced by Hyperphysiological Stretching in Human Annulus Fibrosus Cells
title TRPV4 Inhibition and CRISPR-Cas9 Knockout Reduce Inflammation Induced by Hyperphysiological Stretching in Human Annulus Fibrosus Cells
title_full TRPV4 Inhibition and CRISPR-Cas9 Knockout Reduce Inflammation Induced by Hyperphysiological Stretching in Human Annulus Fibrosus Cells
title_fullStr TRPV4 Inhibition and CRISPR-Cas9 Knockout Reduce Inflammation Induced by Hyperphysiological Stretching in Human Annulus Fibrosus Cells
title_full_unstemmed TRPV4 Inhibition and CRISPR-Cas9 Knockout Reduce Inflammation Induced by Hyperphysiological Stretching in Human Annulus Fibrosus Cells
title_short TRPV4 Inhibition and CRISPR-Cas9 Knockout Reduce Inflammation Induced by Hyperphysiological Stretching in Human Annulus Fibrosus Cells
title_sort trpv4 inhibition and crispr-cas9 knockout reduce inflammation induced by hyperphysiological stretching in human annulus fibrosus cells
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7407144/
https://www.ncbi.nlm.nih.gov/pubmed/32708074
http://dx.doi.org/10.3390/cells9071736
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