成骨细胞
内皮
骨质疏松症
骨愈合
骨重建
内分泌学
内科学
癌症研究
细胞生物学
化学
生物
医学
解剖
生物化学
体外
作者
Ren Xu,Alisha R. Yallowitz,An Qin,Zhuhao Wu,Dong Yeon Shin,Jung‐Min Kim,Shawon Debnath,Gang Ji,Mathias P. Bostrom,Xu Yang,Chao Zhang,Han Dong,Pouneh Kermani,Sarfaraz Lalani,Na Li,Yifang Liu,Michael G. Poulos,Amanda Wach,Yi Zhang,Kazuki Inoue
出处
期刊:Nature Medicine
[Nature Portfolio]
日期:2018-05-18
卷期号:24 (6): 823-833
被引量:322
标识
DOI:10.1038/s41591-018-0020-z
摘要
Recent studies have identified a specialized subset of CD31hiendomucinhi (CD31hiEMCNhi) vascular endothelium that positively regulates bone formation. However, it remains unclear how CD31hiEMCNhi endothelium levels are coupled to anabolic bone formation. Mice with an osteoblast-specific deletion of Shn3, which have markedly elevated bone formation, demonstrated an increase in CD31hiEMCNhi endothelium. Transcriptomic analysis identified SLIT3 as an osteoblast-derived, SHN3-regulated proangiogenic factor. Genetic deletion of Slit3 reduced skeletal CD31hiEMCNhi endothelium, resulted in low bone mass because of impaired bone formation and partially reversed the high bone mass phenotype of Shn3-/- mice. This coupling between osteoblasts and CD31hiEMCNhi endothelium is essential for bone healing, as shown by defective fracture repair in SLIT3-mutant mice and enhanced fracture repair in SHN3-mutant mice. Finally, administration of recombinant SLIT3 both enhanced bone fracture healing and counteracted bone loss in a mouse model of postmenopausal osteoporosis. Thus, drugs that target the SLIT3 pathway may represent a new approach for vascular-targeted osteoanabolic therapy to treat bone loss.
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