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NG2/CSPG4在颞下颌关节骨关节炎期间调节软骨退变。

NG2/CSPG4 regulates cartilage degeneration during TMJ osteoarthritis.

作者信息

Reed David A, Zhao Yan, Bagheri Varzaneh Mina, Shin Jun Soo, Rozynek Jacob, Miloro Michael, Han Michael

机构信息

Department of Oral Biology, University of Illinois Chicago, Chicago, IL, United States.

Department of Oral and Maxillofacial Surgery, University of Illinois Chicago, Chicago, IL, United States.

出版信息

Front Dent Med. 2022;3. doi: 10.3389/fdmed.2022.1004942. Epub 2022 Oct 25.

Abstract

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 . Together, these findings implicate NG2/CSPG4 in the mechanical homeostasis of TMJ cartilage and in the progression of degenerative arthropathies including OA.

摘要

颞下颌关节(TMJ)机械稳态的改变可导致诸如骨关节炎(OA)等退行性关节病的发生和发展。细胞通过与细胞外基质相互作用来感知并适应其机械微环境。在下颌髁突软骨中,细胞周围微环境由VI型胶原组成。NG2/CSPG4是一种与VI型胶原结合的跨膜蛋白聚糖,并通过包括ERK 1/2在内的机械负荷敏感信号网络参与细胞应激反应。本研究的目的是确定NG2/CSPG4在TMJ OA发生和发展中的作用,并确定NG2/CSPG4是否以机械负荷依赖的方式激活ERK 1/2。在体内,我们采用手术不稳定方法在对照小鼠和NG2/CSPG4基因敲除小鼠中诱导TMJ OA。在对照小鼠中,TMJ OA早期阶段NG2/CSPG4减少,而NG2/CSPG4基因敲除小鼠有更严重的软骨退变、关键OA蛋白酶表达升高以及OA基质合成基因受抑制。在体外,我们对对照细胞和NG2/CSPG4基因敲除细胞的转录组和蛋白质进行了表征,发现ERK 1/2信号轴存在明显失调。为了表征NG2/CSPG4的力学生物学反应,我们使用压缩生物反应器对细胞-琼脂糖-胶原支架施加机械负荷,并表明NG2/CSPG4基因敲除细胞不能机械激活ERK 1/2,且与所检测的相同关键OA生物标志物表达变化有关。总之,这些发现表明NG2/CSPG4参与TMJ软骨的机械稳态以及包括OA在内的退行性关节病的发展。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4661/9850834/a1e09471435f/nihms-1862694-f0001.jpg

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