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机械压力决定了关节炎炎症和组织损伤的特定部位。

Mechanical strain determines the site-specific localization of inflammation and tissue damage in arthritis.

机构信息

Unit for Molecular Immunology and Inflammation, VIB Inflammation Research Center (IRC), Technologiepark 927, 9052, Ghent, Belgium.

Department of Rheumatology, Ghent University, Ghent University Hospital, De Pintelaan 185, 9000, Ghent, Belgium.

出版信息

Nat Commun. 2018 Nov 5;9(1):4613. doi: 10.1038/s41467-018-06933-4.

Abstract

Many pro-inflammatory pathways leading to arthritis have global effects on the immune system rather than only acting locally in joints. The reason behind the regional and patchy distribution of arthritis represents a longstanding paradox. Here we show that biomechanical loading acts as a decisive factor in the transition from systemic autoimmunity to joint inflammation. Distribution of inflammation and erosive disease is confined to mechano-sensitive regions with a unique microanatomy. Curiously, this pathway relies on stromal cells but not adaptive immunity. Mechano-stimulation of mesenchymal cells induces CXCL1 and CCL2 for the recruitment of classical monocytes, which can differentiate into bone-resorbing osteoclasts. Genetic ablation of CCL2 or pharmacologic targeting of its receptor CCR2 abates mechanically-induced exacerbation of arthritis, indicating that stress-induced chemokine release by mesenchymal cells and chemo-attraction of monocytes determines preferential homing of arthritis to certain hot spots. Thus, mechanical strain controls the site-specific localisation of inflammation and tissue damage in arthritis.

摘要

许多导致关节炎的促炎途径对免疫系统具有全身性影响,而不仅仅在关节局部起作用。关节炎区域性和斑块状分布的背后原因一直是个谜。在这里,我们表明,生物力学负荷是系统性自身免疫向关节炎症转变的决定性因素。炎症和侵蚀性疾病的分布局限于具有独特微观解剖结构的机械敏感区域。奇怪的是,这条途径依赖于基质细胞而不是适应性免疫。间充质细胞的机械刺激诱导 CXCL1 和 CCL2 招募经典单核细胞,这些单核细胞可以分化为破骨细胞。CCL2 的基因缺失或 CCR2 的药物靶向均可减轻机械诱导的关节炎恶化,表明间充质细胞应激诱导趋化因子释放和单核细胞的趋化吸引决定了关节炎向特定热点的优先归巢。因此,机械应变控制关节炎中炎症和组织损伤的特定部位定位。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/006b/6218475/07bb9396b1c5/41467_2018_6933_Fig2_HTML.jpg

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