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Tomatidine suppresses inflammation in primary articular chondrocytes and attenuates cartilage degradation in osteoarthritic rats

机译:Tomatidine抑制初级关节软骨细胞中的炎症并在骨关节炎大鼠中衰减软骨降解

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摘要

In this study, we investigated whether the anti-inflammatory effects of tomatidine alleviate osteoarthritis (OA)-related pathology in primary articular chondrocytes and a rat OA model. STITCH database analysis identified 22 tomatidine-target genes that were enriched in 78 Kyoto Encyclopedia of Genes and Genomes (KEGG) pathways. Moreover,39 of the 105 OA-related KEGG pathways were related to tomatidine-target genes. The top two OA-related KEGG pathways with tomatidine-target genes were the MAPK and neutrophin signaling pathways. Pretreating primary chondrocytes with tomatidine suppressed interleukin-1β (IL-1β)-induced expression of iNOS, COX-2, MMP1, MMP3, MMP13, and ADAMTS-5. Tomatidine also suppressed IL-1β-induced degradation of collagen-II and aggrecan proteins by inhibiting NF-κB and MAPK signaling. In a rat OA model, histological and immunohistochemical analyses showed significantly less cartilage degeneration in thetibiofemoral joints of rats treated for 12 weeks with tomatidine after OA induction (experimental group) than in untreated OA group rats. However, micro-computed tomography (μ-CT) showed that tomatidine did not affect remodeling of the subchondral bone at the tibial plateau. These data shows that tomatidine suppresses IL-1β-induced inflammation in primary chondrocytes by inhibiting the NF-κB and MAPK signaling pathways, and protects against cartilage destruction in a rat OA model.
机译:在这项研究中,我们研究了初级关节软骨细胞和大鼠OA模型中西嘌呤缓解骨关节炎(OA)相关病理的抗炎作用。针脚数据库分析确定了22种Tomidine-靶基因,其在78 kyoto基因组和基因组(Kegg)途径中富集。此外,105个OA相关的KEGG途径中的39种与西嘌呤靶基因有关。具有西红柿靶基因的前两个OA相关的KEGG途径是MAPK和嗜中性素信号传导途径。预处理原发性软骨细胞抑制了西嘌呤抑制的白细胞介素-1β(IL-1β) - 诱导的InOS,COX-2,MMP1,MMP3,MMP13和ADAMTS-5的表达。通过抑制NF-κB和MAPK信号传导,Tomatidine还抑制了IL-1β诱导的胶原-II和蛋白蛋白的降解。在大鼠OA模型中,组织学和免疫组织化学分析显示出在OA诱导(实验组)后12周的大鼠Thetibioforal关节中的软骨变性显着较低,在OA诱导(实验组)中比未处理的OA群大鼠。然而,微计算断层扫描(μ-CT)显示,Tomatidine不会影响胫骨平原在胫骨髓内骨的重塑。这些数据显示,通过抑制NF-κB和MAPK信号通路,通过抑制NF-κB和MAPK信号通路,在大鼠OA模型中防止软骨破坏来抑制原发性软骨细胞中的IL-1β诱导的炎症。

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