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NG2/CSPG4 regulates cartilage degeneration during TMJ osteoarthritis

Changes in the mechanical homeostasis of the temporomandibular joint (TMJ) can lead to the initiation and progression of degenerative arthropathies such as osteoarthritis (OA). Cells sense and engage with their mechanical microenvironment through interactions with the extracellular matrix. In the ma...

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Autores principales: Reed, David A., Zhao, Yan, Bagheri Varzaneh, Mina, Shin, Jun Soo, Rozynek, Jacob, Miloro, Michael, Han, Michael
Formato: Online Artículo Texto
Lenguaje:English
Publicado: 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9850834/
https://www.ncbi.nlm.nih.gov/pubmed/36685663
http://dx.doi.org/10.3389/fdmed.2022.1004942
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author Reed, David A.
Zhao, Yan
Bagheri Varzaneh, Mina
Shin, Jun Soo
Rozynek, Jacob
Miloro, Michael
Han, Michael
author_facet Reed, David A.
Zhao, Yan
Bagheri Varzaneh, Mina
Shin, Jun Soo
Rozynek, Jacob
Miloro, Michael
Han, Michael
author_sort Reed, David A.
collection PubMed
description Changes in the mechanical homeostasis of the temporomandibular joint (TMJ) can lead to the initiation and progression of degenerative arthropathies such as osteoarthritis (OA). Cells sense and engage with their mechanical microenvironment through interactions with the extracellular matrix. In the mandibular condylar cartilage, the pericellular microenvironment is composed of type VI collagen. NG2/CSPG4 is a transmembrane proteoglycan that binds with type VI collagen, and has been implicated in the cell stress response through mechanical loading-sensitive signaling networks including ERK 1/2. The objective of this study is to define the role of NG2/CSPG4 in the initiation and progression of TMJ OA and to determine if NG2/CSPG4 engages ERK 1/2 in a mechanical loading dependent manner. In vivo, we induced TMJ OA in control and NG2/CSPG4 knockout mice using a surgical destabilization approach. In control mice, NG2/CSPG4 is depleted during the early stages of TMJ OA and NG2/CSPG4 knockout mice have more severe cartilage degeneration, elevated expression of key OA proteases, and suppression of OA matrix synthesis genes. In vitro, we characterized the transcriptome and protein from control and NG2/CSPG4 knockout cells and found significant dysregulation of the ERK 1/2 signaling axis. To characterize the mechanobiological response of NG2/CSPG4, we applied mechanical loads on cell-agarose-collagen scaffolds using a compression bioreactor and illustrate that NG2/CSPG4 knockout cells fail to mechanically activate ERK 1/2 and are associated with changes in the expression of the same key OA biomarkers measured in vivo. Together, these findings implicate NG2/CSPG4 in the mechanical homeostasis of TMJ cartilage and in the progression of degenerative arthropathies including OA.
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spelling pubmed-98508342023-01-19 NG2/CSPG4 regulates cartilage degeneration during TMJ osteoarthritis Reed, David A. Zhao, Yan Bagheri Varzaneh, Mina Shin, Jun Soo Rozynek, Jacob Miloro, Michael Han, Michael Front Dent Med Article Changes in the mechanical homeostasis of the temporomandibular joint (TMJ) can lead to the initiation and progression of degenerative arthropathies such as osteoarthritis (OA). Cells sense and engage with their mechanical microenvironment through interactions with the extracellular matrix. In the mandibular condylar cartilage, the pericellular microenvironment is composed of type VI collagen. NG2/CSPG4 is a transmembrane proteoglycan that binds with type VI collagen, and has been implicated in the cell stress response through mechanical loading-sensitive signaling networks including ERK 1/2. The objective of this study is to define the role of NG2/CSPG4 in the initiation and progression of TMJ OA and to determine if NG2/CSPG4 engages ERK 1/2 in a mechanical loading dependent manner. In vivo, we induced TMJ OA in control and NG2/CSPG4 knockout mice using a surgical destabilization approach. In control mice, NG2/CSPG4 is depleted during the early stages of TMJ OA and NG2/CSPG4 knockout mice have more severe cartilage degeneration, elevated expression of key OA proteases, and suppression of OA matrix synthesis genes. In vitro, we characterized the transcriptome and protein from control and NG2/CSPG4 knockout cells and found significant dysregulation of the ERK 1/2 signaling axis. To characterize the mechanobiological response of NG2/CSPG4, we applied mechanical loads on cell-agarose-collagen scaffolds using a compression bioreactor and illustrate that NG2/CSPG4 knockout cells fail to mechanically activate ERK 1/2 and are associated with changes in the expression of the same key OA biomarkers measured in vivo. Together, these findings implicate NG2/CSPG4 in the mechanical homeostasis of TMJ cartilage and in the progression of degenerative arthropathies including OA. 2022 2022-10-25 /pmc/articles/PMC9850834/ /pubmed/36685663 http://dx.doi.org/10.3389/fdmed.2022.1004942 Text en https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY) (https://creativecommons.org/licenses/by/4.0/) . 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 Article
Reed, David A.
Zhao, Yan
Bagheri Varzaneh, Mina
Shin, Jun Soo
Rozynek, Jacob
Miloro, Michael
Han, Michael
NG2/CSPG4 regulates cartilage degeneration during TMJ osteoarthritis
title NG2/CSPG4 regulates cartilage degeneration during TMJ osteoarthritis
title_full NG2/CSPG4 regulates cartilage degeneration during TMJ osteoarthritis
title_fullStr NG2/CSPG4 regulates cartilage degeneration during TMJ osteoarthritis
title_full_unstemmed NG2/CSPG4 regulates cartilage degeneration during TMJ osteoarthritis
title_short NG2/CSPG4 regulates cartilage degeneration during TMJ osteoarthritis
title_sort ng2/cspg4 regulates cartilage degeneration during tmj osteoarthritis
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9850834/
https://www.ncbi.nlm.nih.gov/pubmed/36685663
http://dx.doi.org/10.3389/fdmed.2022.1004942
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