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组织蛋白酶K通过降解骨膜蛋白来控制皮质骨形成。

Cathepsin K Controls Cortical Bone Formation by Degrading Periostin.

作者信息

Bonnet Nicolas, Brun Julia, Rousseau Jean-Charles, Duong Le T, Ferrari Serge L

机构信息

Division of Bone Diseases, Department of Internal Medicine Specialties, Geneva University Hospital & Faculty of Medicine, Geneva, Switzerland.

INSERM, UMR 1033, Lyon, France.

出版信息

J Bone Miner Res. 2017 Jul;32(7):1432-1441. doi: 10.1002/jbmr.3136. Epub 2017 Apr 19.

DOI:10.1002/jbmr.3136
PMID:28322464
Abstract

Although inhibitors of bone resorption concomitantly reduce bone formation because of the coupling between osteoclasts and osteoblasts, inhibition or deletion of cathepsin k (CatK) stimulates bone formation despite decreasing resorption. The molecular mechanisms responsible for this increase in bone formation, particularly at periosteal surfaces where osteoclasts are relatively poor, remain unclear. Here we show that CatK pharmacological inhibition or deletion (Ctsk mice) potentiates mechanotransduction signals mediating cortical bone formation. We identify periostin (Postn) as a direct molecular target for degradation by CatK and show that CatK deletion increases Postn and β-catenin expression in vivo, particularly at the periosteum. In turn, Postn deletion selectively abolishes cortical, but not trabecular, bone formation in CatK-deficient mice. Taken together, these data indicate that CatK not only plays a major role in bone remodeling but also modulates modeling-based cortical bone formation by degrading periostin and thereby moderating Wnt-β-catenin signaling. These findings provide novel insights into the role of CatK on bone homeostasis and the mechanisms of increased cortical bone volume with CatK mutations and pharmacological inhibitors. © 2017 American Society for Bone and Mineral Research.

摘要

尽管由于破骨细胞与成骨细胞之间的偶联,骨吸收抑制剂会同时减少骨形成,但组织蛋白酶K(CatK)的抑制或缺失尽管会减少骨吸收,却能刺激骨形成。导致这种骨形成增加的分子机制,尤其是在破骨细胞相对较少的骨膜表面,仍不清楚。在此我们表明,CatK的药理抑制或缺失(Ctsk小鼠)增强了介导皮质骨形成的机械转导信号。我们确定骨膜蛋白(Postn)是被CatK降解的直接分子靶点,并表明CatK的缺失在体内增加了Postn和β-连环蛋白的表达,尤其是在骨膜处。反过来,Postn的缺失选择性地消除了CatK缺陷小鼠的皮质骨而非小梁骨的形成。综上所述,这些数据表明,CatK不仅在骨重塑中起主要作用,还通过降解骨膜蛋白从而调节Wnt-β-连环蛋白信号传导来调控基于塑形的皮质骨形成。这些发现为CatK在骨稳态中的作用以及CatK突变和药理抑制剂导致皮质骨体积增加的机制提供了新的见解。© 2017美国骨与矿物质研究学会。

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