碱性成纤维细胞生长因子
弯月面
软骨
间充质干细胞
软骨发生
再生(生物学)
干细胞
细胞生物学
成纤维细胞生长因子
骨关节炎
移植
生物
生长因子
解剖
病理
医学
外科
内科学
物理
受体
入射(几何)
光学
替代医学
作者
Atsushi Goshima,Yuki Etani,Makoto Hirao,Satoshi Yamakawa,Gensuke Okamura,Akira Miyama,Kenji Takami,Toshiaki Miura,Y. Fukuda,Takuya Kurihara,Nagahiro Ochiai,Shohei Oyama,Shunya Otani,Masashi Tamaki,Teruya Ishibashi,Tetsuya Tomita,Takashi Kanamoto,Ken Nakata,Seiji Okada,Kosuke Ebina
标识
DOI:10.1016/j.joca.2023.07.010
摘要
Objective To investigate the efficacy of basic fibroblast growth factor (bFGF) in promoting meniscus regeneration by cultivating synovial mesenchymal stem cells (SMSCs) and to validate the underlying mechanisms. Methods Human SMSCs were collected from patients with osteoarthritis. Eight-week-old nude rats underwent hemi-meniscectomy, and SMSCs in pellet form, either with or without bFGF (1.0 × 106 cells per pellet), were implanted at the site of meniscus defects. Rats were divided into the control (no transplantation), FGF (−) (pellet without bFGF), and FGF (+) (pellet with bFGF) groups. Different examinations, including assessment of the regenerated meniscus area, histological scoring of the regenerated meniscus and cartilage, meniscus indentation test, and immunohistochemistry analysis, were performed at 4 and 8 weeks after surgery. Results Transplanted SMSCs adhered to the regenerative meniscus. Compared with the control group, the FGF (+) group had larger regenerated meniscus areas, superior histological scores of the meniscus and cartilage, and better meniscus mechanical properties. RNA sequencing of SMSCs revealed that the gene expression of chemokines that bind to CXCR2 was upregulated by bFGF. Furthermore, conditioned medium derived from SMSCs cultivated with bFGF exhibited enhanced cell migration, proliferation, and chondrogenic differentiation, which were specifically inhibited by CXCR2 or CXCL6 inhibitors. Conclusion SMSCs cultured with bFGF promoted the expression of CXCL6. This mechanism may enhance cell migration, proliferation, and chondrogenic differentiation, thereby resulting in superior meniscus regeneration and cartilage preservation.
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