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首页> 外文期刊>Osteoarthritis and cartilage >Regulation of matrix metalloproteinase expression by dynamic tensile strain in rat fibrochondrocytes.
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Regulation of matrix metalloproteinase expression by dynamic tensile strain in rat fibrochondrocytes.

机译:调节大鼠纤维软骨细胞中动态拉伸应变对基质金属蛋白酶表达的调节。

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OBJECTIVE: We sought to determine the molecular basis for the anticatabolic effects of mechanical signals on fibrocartilage cells by studying the expression of a variety of matrix metalloproteinases (MMPs). Furthermore, we examined whether the effects of biomechanical strain on MMP gene expression are sustained. METHODS: Fibrochondrocytes from temporomandibular joint (TMJ) discs were exposed to dynamic tensile strain for various time intervals in the presence of interleukin (IL)-1beta. The regulation of the messenger RNA (mRNA) expression and synthesis of MMPs and tissue inhibitors of MMPs (TIMPs) were examined by end-point and real-time reverse transcriptase-polymerase chain reaction (RT-PCR) as well as Western blot analysis. RESULTS: Fibrochondrocytes expressed mRNA for MMP-2, -3, -7, -8, -9, -11, -13, -14, -16, -17, and -19 as well as TIMP-1, -2, and -3, IL-1beta induced a significant (P<0.05) upregulation of mRNA for MMP-3, -7, -8, -9, -13, -16, -17, and -19. The IL-1beta-stimulated upregulation ofthese MMPs was significantly (P<0.05) abrogated by dynamic tensile strain. However, MMP-2, -11, -14, and TIMPs were not affected by either IL-1beta or tensile strain. Biomechanical strain also inhibited the IL-1beta-stimulated protein synthesis of MMP-3, -7, -8, -9, -13, -16, and -17. Application of mechanical strain for various time intervals during a 24-h incubation with IL-1beta showed that the suppressive effects of mechanical signals are sustained. CONCLUSIONS: The data provide evidence that biomechanical signals can downregulate the catabolic activity of fibrocartilage cells in an inflammatory environment by inhibiting the expression of a variety of MMPs. Furthermore, the matrix-protective effects of biomechanical signals are sustained even in an inflammatory environment.
机译:目的:我们试图通过研究多种基质金属蛋白酶(MMPs)的表达来确定机械信号对纤维软骨细胞的抗催化作用的分子基础。此外,我们检查了生物力学菌株对MMP基因表达的影响是否持续。方法:在存在白介素(IL)-1β的情况下,将来自颞下颌关节(TMJ)椎间盘的纤维软骨细胞暴露于不同时间间隔的动态拉伸应变。通过终点和实时逆转录酶-聚合酶链反应(RT-PCR)以及Western印迹分析检查了信使RNA(mRNA)表达和MMP合成以及MMPs组织抑制剂的调控。结果:纤维软骨细胞表达MMP-2,-3,-7,-8,-9,-11,-13,-14,-16,-17和-19以及TIMP-1,-2,和-3,IL-1beta诱导MMP-3,-7,-8,-9,-13,-16,-17和-19的mRNA显着上调(P <0.05)。 IL-1β刺激这些MMPs的上调被动态拉伸应变所消除(P <0.05)。但是,MMP-2,-11,-14和TIMP不受IL-1beta或拉伸应变的影响。生物力学菌株还抑制了IL-1β刺激的MMP-3,-7,-8,-9,-13,-16和-17蛋白合成。在与IL-1beta孵育24小时的过程中,在不同时间间隔内施加机械应变显示机械信号的抑制作用得以维持。结论:这些数据提供了证据,表明生物力学信号可以通过抑制多种MMPs的表达而在炎性环境中下调纤维软骨细胞的分解代谢活性。此外,即使在炎性环境中,生物力学信号的基质保护作用也得以维持。

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