软骨细胞
软骨
骨关节炎
细胞生物学
再生(生物学)
细胞
机制(生物学)
体内
细胞代谢
生物
生物信息学
医学
解剖
生物技术
生物化学
病理
认识论
哲学
替代医学
作者
Yi-Shan Chen,Yiyang Yan,Ruonan Tian,Zixuan Sheng,Liming Li,Jiachen Chen,Yuan Liao,Ya Wen,Junting Lu,Lei Zhu,Wei Sun,Haoyu Wu,Youguo Liao,Xianzhu Zhang,X.Q. Chen,Chengrui An,Kun Zhao,Wanlu Liu,Jianqing Gao,David C. Hay,Hongwei Ouyang
出处
期刊:Science Advances
[American Association for the Advancement of Science (AAAS)]
日期:2024-09-11
卷期号:10 (37)
标识
DOI:10.1126/sciadv.adp4408
摘要
The rapid advancement of cell therapies underscores the importance of understanding fundamental cellular attributes. Among these, cell fitness—how transplanted cells adapt to new microenvironments and maintain functional stability in vivo—is crucial. This study identifies a chemical compound, FPH2, that enhances the fitness of human chondrocytes and the repair of articular cartilage, which is typically nonregenerative. Through drug screening, FPH2 was shown to broadly improve cell performance, especially in maintaining chondrocyte phenotype and enhancing migration. Single-cell transcriptomics indicated that FPH2 induced a super-fit cell state. The mechanism primarily involves the inhibition of carnitine palmitoyl transferase I and the optimization of metabolic homeostasis. In animal models, FPH2-treated human chondrocytes substantially improved cartilage regeneration, demonstrating well-integrated tissue interfaces in rats. In addition, an acellular FPH2-loaded hydrogel proved effective in preventing the onset of osteoarthritis. This research provides a viable and safe method to enhance chondrocyte fitness, offering insights into the self-regulatory mechanisms of cell fitness.
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