骨关节炎
炎症
医学
细胞外基质
串扰
关节病
疾病
滑膜
体外
功能(生物学)
免疫学
癌症研究
滑膜关节
关节炎
动物模型
内皮
细胞生物学
生物信息学
退行性疾病
基质金属蛋白酶
病理
间充质干细胞
动物研究
伤口愈合
临床前试验
临床实习
作者
Hannah M. Zlotnick,Declan N. Goddard,Christopher J. Calo,Abhishek P. Dhand,Matthew D. Davidson,Aina Solsona‐Pujol,Jonathan T. Makhoul,Hannah K Weppner,Melissa Wong,Carla R. Scanzello,Laurel E. Hind,Jason A. Burdick
标识
DOI:10.1073/pnas.2524677123
摘要
Most patients who sustain an acute joint injury develop degenerative joint disease or osteoarthritis (OA). Animal models have informed the design of OA therapeutics; however, no disease-modifying therapy has successfully translated to human patients. Thus, there is a strong motivation to develop humanized in vitro platforms to fill a critical gap in knowledge of disease progression postinjury. Here, we develop an acute injury-on-a-chip model of the synovium, a vascularized, joint-lining tissue that has been implicated in OA progression and as a key driver of joint disease. We apply this chip-based system to investigate the crosstalk between endothelial cells, lining an engineered vessel, and synovial fibroblasts, embedded within an extracellular matrix hydrogel. Our data indicate that synovial fibroblasts, rather than initiating disease, attempt to support and maintain vascular function in the presence of acute inflammation (i.e., interleukin-1β). Such knowledge may provide new targets for OA therapeutics, preventing the progression from joint injury to disease in patients.
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