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Tanshinone IIA attenuates osteoarthritis via inhibiting aberrant angiogenesis in subchondral bone

血管生成 血管内皮生长因子 骨关节炎 医学 软骨下骨 癌症研究 MAPK/ERK通路 软骨 血管内皮生长因子A 药理学 病理 化学 激酶 血管内皮生长因子受体 解剖 关节软骨 生物化学 替代医学
作者
Hongzhou Li,Dong Han,Rui-Feng Ao,Zhihai Cai,Guo-Zheng Zhu,Di-Zheng Wu,Jiawen Gao,Jingshen Zhuang,Chen Tu,Kai Zhao,Zhiyong Wu,Zhaoming Zhong
出处
期刊:Archives of Biochemistry and Biophysics [Elsevier BV]
卷期号:753: 109904-109904 被引量:5
标识
DOI:10.1016/j.abb.2024.109904
摘要

Excessive angiogenesis in subchondral bone is a pathological feature of osteoarthritis (OA). Tanshinone IIA (TIIA), an active compound found in Salvia miltiorrhiza, demonstrates significant anti-angiogenic properties. However, the effect of TIIA on abnormal subchondral angiogenesis in OA is still unclear. This study aims to investigate the mechanism of TIIA in modulating subchondral bone angiogenesis during OA and assess its therapeutic potential in OA. Our findings demonstrate that TIIA attenuated articular cartilage degeneration, normalized subchondral bone remodeling, and effectively suppressed aberrant angiogenesis within subchondral bone in monosodium iodoacetate (MIA)-induced OA mice. Additionally, the angiogenesis capacity of primary CD31hiEmcnhi endothelial cells was observed to be significantly reduced after treatment with TIIA in vitro. Mechanically, TIIA diminished the proportion of hypertrophic chondrocytes, ultimately leading to a substantial reduction in the secretion of vascular endothelial growth factor A (VEGFA). The supernatant of hypertrophic chondrocytes promoted the tube formation of CD31hiEMCNhi endothelial cells, whereas TIIA inhibited this process. Furthermore, TIIA effectively suppressed the expression of vascular endothelial growth factor receptor 2 (VEGFR2) along with its downstream MAPK pathway in CD31hiEmcnhi endothelial cells. In conclusion, our data indicated that TIIA could effectively inhibit the abnormal angiogenesis in subchondral bone during the progression of OA by suppressing the VEGFA/VEFGR2/MAPK pathway. These findings significantly contribute to our understanding of the abnormal angiogenesis in OA and offer a promising therapeutic target for OA treatment.

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