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Proteomic Analysis Reveals a New Benefit of Periodic Mechanical Stress on Chondrocytes

机译:蛋白质组学分析揭示了周期性机械应力对软骨细胞的新好处

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>Background/Aims: In recent years, a variety of studies have been performed to investigate the cellular responses of periodic mechanical stress. In our previous studies, we found that periodic mechanical stress can promote proliferation and matrix synthesis through the integrin beta 1-mediated ERK1/2 pathway, and we used proteomic analysis to detect quantitative changes in chondrocytes under periodic mechanical stress. Despite these results, the effects and mechanisms of periodic mechanical stress are still not fully understood, so in this study we extended our study using phosphoproteomic techniques. Methods: We used phosphoproteomic techniques to detect phosphorylation changes in chondrocytes under periodic mechanical stress and combined the results with the quantitative proteomic data to further explore the underlying mechanisms. Data were obtained by phosphorylation inhibition, quantitative real-time PCR (qPCR) analysis, western blot analysis and immunofluorescence assay. Results: From phosphoproteomic analysis, a total of 1073 phosphorylated proteins and 2054 phosphopeptides were identified. The number of significant differentially expressed proteins and phosphopeptides was 97 and 108, respectively (ratio >1.20 or <0.83 at p<0.05). Periodic mechanical stress increased glycogen synthase kinase 3-beta (GSK3-beta) phosphorylation at Y216, promoted the phosphorylation of beta-catenin, decreased beta-catenin levels and suppressed the expression of type I collagen. In contrast, inhibition of GSK3-beta by TWS119, which specifically inhibits the phosphorylation of Y216, suppressed the phosphorylation of beta-catenin, which resulted in the accumulation of beta-catenin and an increase in the expression of type I collagen. Conclusions: We successfully constructed differentially expressed phosphoproteomic profiles of rat chondrocytes under periodic mechanical stress, and discovered a potential new therapeutic benefit in which periodic mechanical stress suppressed the formation of type I collagen in the matrix of chondrocytes via phosphorylation of GSK3-beta and beta-catenin.
机译:> 背景/目标: 近年来,已经进行了各种研究来研究周期性机械应力的细胞反应。在我们以前的研究中,我们发现周期性机械应力可以通过整合素β1介导的ERK1 / 2途径促进增殖和基质合成,并且我们使用蛋白质组学分析来检测周期性机械应力下软骨细胞的定量变化。尽管有这些结果,周期性机械应力的影响和机理仍未完全了解,因此在本研究中,我们使用磷酸化蛋白质组学技术扩展了研究范围。 方法: 我们使用磷酸化蛋白质组学技术检测周期性机械应力下软骨细胞的磷酸化变化,并将结果与​​定量蛋白质组学数据相结合,以进一步探索其潜在机制。通过磷酸化抑制,实时荧光定量PCR(qPCR)分析,蛋白质印迹分析和免疫荧光分析获得数据。 结果: 通过磷酸化蛋白质组学分析,共鉴定出1073个磷酸化蛋白和2054个磷酸肽。显着差异表达的蛋白质和磷酸肽的数量分别为97和108(比率,p> 0.05时,比率> 1.20或<0.83)。周期性的机械应激会在Y216处增加糖原合酶激酶3-β(GSK3-β)的磷酸化,促进β-catenin的磷酸化,降低β-catenin的水平并抑制I型胶原的表达。相反,TWS119对GSK3-β的抑制,特别是抑制Y216的磷酸化,抑制了β-catenin的磷酸化,从而导致β-catenin的积累和I型胶原蛋白表达的增加。 结论: 我们成功构建了在周期性机械应力下大鼠软骨细胞差异表达的磷酸化蛋白质组学特征,并发现了潜在的新治疗益处,其中周期性机械应力抑制了I型胶原的形成GSK3-β和β-catenin磷酸化软骨细胞的基质。

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