Wang Liping, Roth Theresa, Abbott Marcia, Ho Linh, Wattanachanya Lalita, Nissenson Robert A
Endocrine Unit, VA Medical Center, San Francisco, CA, USA; Department of Medicine, University of California, San Francisco, CA, USA.
Endocrine Unit, VA Medical Center, San Francisco, CA, USA.
Bone. 2017 May;98:18-25. doi: 10.1016/j.bone.2016.12.005. Epub 2017 Feb 9.
FGF9 has complex and important roles in skeletal development and repair. We have previously observed that Fgf9 expression in osteoblasts (OBs) is regulated by G protein signaling and therefore the present study was done to determine whether OB-derived FGF9 was important in skeletal homeostasis. To directly test this idea, we deleted functional expression of Fgf9 gene in OBs using a 2.3kb collagen type I promoter-driven Cre transgenic mouse line (Fgf9). Both Fgf9 knockout (Fgf9) and the Fgf9 floxed littermates (Fgf9) mice were fully backcrossed and maintained in an FBV/N background. Three month old Fgf9 mice displayed a significant decrease in cancellous bone and bone formation in the distal femur and a significant decrease in cortical thickness at the TFJ. Strikingly, female Fgf9 mice did not display altered bone mass. Continuous treatment of mouse BMSCs with exogenous FGF9 inhibited mouse BMSC mineralization while acute treatment increased the proliferation of progenitors, an effect requiring the activation of Akt1. Our results suggest that mature OBs are an important source of FGF9, positively regulating skeletal homeostasis in male mice. Osteoblast-derived FGF9 may serve a paracrine role to maintain the osteogenic progenitor cell population through activation of Akt signaling.
成纤维细胞生长因子9(FGF9)在骨骼发育和修复中具有复杂而重要的作用。我们之前观察到成骨细胞(OBs)中的Fgf9表达受G蛋白信号调控,因此开展本研究以确定OB来源的FGF9在骨骼稳态中是否重要。为了直接验证这一想法,我们使用2.3kb I型胶原启动子驱动的Cre转基因小鼠品系(Fgf9)敲除了OB中的Fgf9基因功能表达。Fgf9基因敲除小鼠(Fgf9)和Fgf9基因条件性敲除同窝对照小鼠(Fgf9)均经充分回交并维持在FBV/N背景下。3月龄的Fgf9小鼠股骨远端的松质骨和骨形成显著减少,股骨转子间皮质厚度显著降低。引人注目的是,雌性Fgf9小鼠的骨量没有改变。用外源性FGF9持续处理小鼠骨髓间充质干细胞(BMSCs)会抑制其矿化,而急性处理则会增加祖细胞的增殖,这一效应需要Akt1的激活。我们的结果表明,成熟的OB是FGF9的重要来源,对雄性小鼠的骨骼稳态起正向调节作用。成骨细胞来源的FGF9可能通过激活Akt信号发挥旁分泌作用,以维持成骨祖细胞群体。