骨关节炎
医学
骨髓
蛋白质稳态
蛋白酶体
病理
软骨
癌症研究
热休克蛋白
软骨细胞
疾病
可药性
发病机制
生物信息学
机制(生物学)
细胞生物学
磁共振成像
细胞
蛋白酵素
病态的
关节软骨
基质骨
作者
Hailun Xu,Ting He,Yu Qian,Jia Li,Bowei Ni,Xiaojie Xu,Hao Wang,Peng Wang,Guoqing Cao,Siqi Ying,Guangyu Ding,Rong Wang,Zenghui Gu,W. Li,Zhentao Man,Houfeng Zheng,Zhaohua Zhu,Z Li,Q. Meng,Chao Zheng
标识
DOI:10.1002/advs.202516720
摘要
ABSTRACT Subchondral bone marrow lesions (BMLs) constitute a pathognomonic imaging feature of both incipient and progressive osteoarthritis (OA). However, the pathological features and molecular mechanisms underlying BMLs remain poorly characterized. Here, we innovatively established and dynamically characterized a standardized mouse model, simulating human BMLs on magnetic resonance imaging (MRI) that correlates significantly with cartilage degeneration, while revealing substantial aberrant bone matrix accumulation within BML regions. By establishing an osteochondral single‐cell atlas of mouse knee joints during BML development, we found that proteasome dysfunction and abnormal secretion of misfolded collagen, driven by dysregulated heat shock protein 70 (HSP70) and deubiquitinase 19 (USP19) expression in osteoarthritic subchondral osteoblasts, constitute a key mechanism of BML formation. Furthermore, cell‐cell communication and Col10a1‐Cre; R26 tdt+ fate‐mapping analyses uncovered that osteoblast‐secreted WNT5A mediates crosstalk with hypertrophic chondrocytes (HTCs), accelerating their hypertrophy and cell death. Critically, pharmacological HSP70 targeting by TRC051384 inhibited collagen misfolding/secretion, preventing BML formation. Notably, results of Mendelian randomization demonstrated a significant correlation between proteasome gene expression and OA risk in humans, further supporting a potential role of proteasome dysfunction in BML pathogenesis. Collectively, these data reveal mechanisms underlying BML formation and therapeutic targets for early OA intervention.
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