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Response of Gli1+ Suture Stem Cells to Mechanical Force Upon Suture Expansion

骨重建 胶质1 Wnt信号通路 细胞生物学 解剖 纤维接头 干细胞 生物 医学 内分泌学 信号转导 刺猬
作者
Dian Jing,Zexi Chen,Yi Men,Yating Yi,Yuhong Wang,Jun Wang,Jianru Yi,Lingyun Wan,Bo Shen,Jian Q. Feng,Zhihe Zhao,Hu Zhao,Chaoyuan Li
出处
期刊:Journal of Bone and Mineral Research [Oxford University Press]
卷期号:37 (7): 1307-1320 被引量:40
标识
DOI:10.1002/jbmr.4561
摘要

ABSTRACT Normal development of craniofacial sutures is crucial for cranial and facial growth in all three dimensions. These sutures provide a unique niche for suture stem cells (SuSCs), which are indispensable for homeostasis, damage repair, as well as stress balance. Expansion appliances are now routinely used to treat underdevelopment of the skull and maxilla, stimulating the craniofacial sutures through distraction osteogenesis. However, various treatment challenges exist due to a lack of full understanding of the mechanism through which mechanical forces stimulate suture and bone remodeling. To address this issue, we first identified crucial steps in the cycle of suture and bone remodeling based on the established standard suture expansion model. Observed spatiotemporal morphological changes revealed that the remodeling cycle is approximately 3 to 4 weeks, with collagen restoration proceeding more rapidly. Next, we traced the fate of the Gli1+ SuSCs lineage upon application of tensile force in three dimensions. SuSCs were rapidly activated and greatly contributed to bone remodeling within 1 month. Furthermore, we confirmed the presence of Wnt activity within Gli1+ SuSCs based on the high co-expression ratio of Gli1+ cells and Axin2+ cells, which also indicated the homogeneity and heterogeneity of two cell groups. Because Wnt signaling in the sutures is highly upregulated upon tensile force loading, conditional knockout of β-catenin largely restricted the activation of Gli1+ SuSCs and suppressed bone remodeling under physiological and expansion conditions. Thus, we concluded that Gli1+ SuSCs play essential roles in suture and bone remodeling stimulated by mechanical force and that Wnt signaling is crucial to this process. © 2022 American Society for Bone and Mineral Research (ASBMR).
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