Descendants of hypertrophic chondrocytes promote angiogenesis by secreting THBS4 during bone growth and injury repair

血管生成 生物 细胞生物学 内皮干细胞 血栓反应蛋白 癌症研究 骨髓 祖细胞 川地31 免疫染色 新生血管 生长因子 血管内皮生长因子 血栓反应蛋白1 免疫学 细胞生长 骨生长 串扰 病理 血管生成 细胞分化 转录因子
作者
Shiju Song,Jing Fan,Guangyu Ding,Jinhua Yin,Wei-guang Lü,Liangjie Huang,Hu Jingyan,Xueqin Gong,Bo Gao,Qiang Jie,Kathryn Song-Eng Cheah,Chao Zheng,Liu Yang
出处
期刊:Bone research [Springer Nature]
卷期号:13 (1): 92-92
标识
DOI:10.1038/s41413-025-00469-2
摘要

Abstract Hypertrophic chondrocytes (HCs) could transform into osteoblastic lineage cells while the pathophysiological implications of HC transformation remain largely unknown. Here, we generated a mouse line utilizing Col10a1-Cre to induce DTA expression to genetically ablate HCs and their descendants. Col10a1-Cre; R26 DTA/+ mice displayed dwarf phenotype, abnormal spongy bone, and significantly delayed drill-hole injuries healing, suggesting an indispensable role of HC lineage extension in bone growth and injury repair. Intriguingly, single-cell RNA sequencing analysis revealed the most significant loss of a cell cluster expressing multiple angiogenic factors (Pro-Angiogenic Descendants of HCs, PADs) among cells derived from Col10a1-Cre; R26 DTA/+ and control femurs. In silico analysis of cell-cell communication supported Thrombospondin 4 (THBS4) as a specific angiogenic factor mediating the crosstalk between PADs and vascular endothelial cells. Concordantly, analyses using immunostaining combined with tissue clearing revealed that PADs physically contacted with endothelial cells, whereas Col10a1-Cre; R26 DTA/+ mice showed defective metaphyseal and cortical vessel formation and post-injury angiogenesis along with a significant loss of THBS4. Moreover, in vitro assays showed that supplying THBS4 was sufficient to promote proliferation and tube formation of endothelial cells and rescue defective angiogenesis of Col10a1-Cre; R26 DTA/+ metatarsal explants. Collectively, these findings demonstrate a critical role of PADs in bone growth and injury repair by secreting THBS4 to regulate angiogenesis.
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