Fu Su, Zhang Chunlin, Yan Xu, Li Dongzhe, Wang Yongkui, Dong Chao, Cao Zhengming, Ning Yongming, Shao Chenglong, Yang Tengyue
Department of Orthopaedics, The First Affiliated Hospital of Zhengzhou University, China.
Stem Cells Int. 2021 Jan 26;2021:8850114. doi: 10.1155/2021/8850114. eCollection 2021.
Bone tissue engineering-based therapy for bone lesions requires the expansion of seeding cells, such as autologous mesenchymal stem cells (MSCs). A major obstacle to this process is the loss of the phenotype and differentiation capacity of MSCs subjected to passage. Recent studies have suggested that primary cilia, primordial organelles that transduce multiple signals, particularly hedgehog signals, play a role in senescence. Therefore, we explored the relationships among senescence, primary cilia, and hedgehog signaling in MSCs. Ageing of MSCs by expansion in vitro was accompanied by increased cell doubling time. The osteogenic capacity of aged MSCs at passage 4 was compromised compared to that of primary cells. P4 MSCs exhibited reductions in the frequency and length of primary cilia associated with decreased intensity of Arl13b staining on cilia. Senescence also resulted in downregulation of the expression of hedgehog components and CDKN2A. Suppression of ciliogenesis reduced the gene expression of both Gli1, a key molecule in the hedgehog signaling pathway and ALP, a marker of osteoblastic differentiation. This study demonstrated that the senescence of MSCs induced the loss of osteoblastic differentiation potency and inactivated hedgehog signaling associated with attenuated ciliogenesis, indicating that primary cilia play a mediating role in and are biomarkers of MSC senescence; thus, future antisenescence strategies involving manipulation of primary cilia could be developed.
基于骨组织工程的骨损伤治疗需要扩增种子细胞,如自体间充质干细胞(MSCs)。这一过程的主要障碍是传代后的MSCs会丧失其表型和分化能力。最近的研究表明,初级纤毛作为一种能转导多种信号尤其是刺猬信号的原始细胞器,在衰老过程中发挥作用。因此,我们探讨了MSCs衰老、初级纤毛和刺猬信号通路之间的关系。体外扩增导致的MSCs衰老伴随着细胞倍增时间的增加。与原代细胞相比,第4代衰老的MSCs的成骨能力受损。第4代MSCs的初级纤毛频率和长度降低,同时纤毛上Arl13b染色强度减弱。衰老还导致刺猬信号通路相关成分和CDKN2A的表达下调。抑制纤毛生成会降低刺猬信号通路中的关键分子Gli1以及成骨细胞分化标志物碱性磷酸酶(ALP)的基因表达。本研究表明,MSCs的衰老导致成骨细胞分化潜能丧失,并使与纤毛生成减弱相关的刺猬信号通路失活,这表明初级纤毛在MSCs衰老过程中起介导作用且是其生物标志物;因此,未来可开发涉及操纵初级纤毛的抗衰老策略。