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氧化还原和 NF-κB 信号通路在骨关节炎中的作用。

Redox and NF-κB signaling in osteoarthritis.

机构信息

Fourth Department of Orthopaedics & Trauma, 'KAT' General Hospital, Kifissia, 14561 Athens, Greece.

Department of Biological Chemistry, Medical School, National and Kapodistrian University of Athens, 75 M. Asias Street, 11527 Athens, Greece.

出版信息

Free Radic Biol Med. 2019 Feb 20;132:90-100. doi: 10.1016/j.freeradbiomed.2018.09.025. Epub 2018 Sep 17.

Abstract

Human cells have to deal with the constant production of reactive oxygen species (ROS). Although ROS overproduction might be harmful to cell biology, there are plenty of data showing that moderate levels of ROS control gene expression by maintaining redox signaling. Osteoarthritis (OA) is the most common joint disorder with a multi-factorial etiology including overproduction of ROS. ROS overproduction in OA modifies intracellular signaling, chondrocyte life cycle, metabolism of cartilage matrix and contributes to synovial inflammation and dysfunction of the subchondral bone. In arthritic tissues, the NF-κB signaling pathway can be activated by pro-inflammatory cytokines, mechanical stress, and extracellular matrix degradation products. This activation results in regulation of expression of many cytokines, inflammatory mediators, transcription factors, and several matrix-degrading enzymes. Overall, NF-κB signaling affects cartilage matrix remodeling, chondrocyte apoptosis, synovial inflammation, and has indirect stimulatory effects on downstream regulators of terminal chondrocyte differentiation. Interaction between redox signaling and NF-κB transcription factors seems to play a distinctive role in OA pathogenesis.

摘要

人类细胞必须应对活性氧(ROS)的持续产生。虽然 ROS 过量产生可能对细胞生物学有害,但有大量数据表明,适度水平的 ROS 通过维持氧化还原信号来控制基因表达。骨关节炎(OA)是最常见的关节疾病,其病因包括 ROS 的过量产生具有多因素。OA 中 ROS 过量产生会改变细胞内信号转导、软骨细胞生命周期、软骨基质代谢,并导致滑膜炎症和软骨下骨功能障碍。在关节炎组织中,NF-κB 信号通路可被促炎细胞因子、机械应激和细胞外基质降解产物激活。这种激活导致许多细胞因子、炎症介质、转录因子和几种基质降解酶的表达调控。总的来说,NF-κB 信号转导影响软骨基质重塑、软骨细胞凋亡、滑膜炎症,并对终末软骨细胞分化的下游调节因子有间接刺激作用。氧化还原信号和 NF-κB 转录因子之间的相互作用似乎在 OA 的发病机制中起着独特的作用。

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