Sun Yu-Long, Chen Zhi-Hao, Li Di-Jie, Zhao Fan, Ma Xiao-Li, Shang Peng, Yang Tuanming, Qian Airong
Protein Pept Lett. 2014;22(3):270-84. doi: 10.2174/0929866522666150115113428.
Neuropeptide FF (NPFF) has been implicated in many physiological processes. Previously, we have reported that NPFF modulates the viability and nitric oxide (NO) production of RAW264.7 macrophages. In this study, we investigated the influence of NPFF on lipopolysaccharide (LPS)-mediated osteoclast formation of RAW264.7 cells. Our results suggest that, NPFF dose-dependently (1 nM, 10 nM and 100 nM) inhibited osteoclast formation, TRAP enzyme activity and bone resorption in osteoclasts induced by LPS respectively. Moreover, LPS-provoked NO release was also inhibited by NPFF treatment, indicating a NO-dependent pathway is mainly involved. Furthermore, the alterations of osteoclast marker genes were also assessed including TRAP, Cathepsin K, MMP-9, NFATc1 and Runx2. NPFF downregulated LPS-caused gene augmentations of TRAP, Cathepsin K and MMP-9, whereas showed no influences on NFATc1 and Runx2. In addition, NPFF receptor 2 (NPFFR2) mRNA expression was also augmented in response to NPFF treatment, hinting the involvement of NPFFR2 pathway. It should be mentioned that RF9 (1 µ M), a reported pharmacological inhibitor for NPFF receptors, exerted NPFF-like agonist properties as to attenuate osteoclastogenesis. Collectively, our findings provide new evidence for the in vitro activity of NPFF on osteoclasts, which may be helpful to extend the scope of NPFF functions.
神经肽FF(NPFF)参与了许多生理过程。此前,我们报道过NPFF可调节RAW264.7巨噬细胞的活力和一氧化氮(NO)生成。在本研究中,我们调查了NPFF对脂多糖(LPS)介导的RAW264.7细胞破骨细胞形成的影响。我们的结果表明,NPFF分别以剂量依赖性方式(1 nM、10 nM和100 nM)抑制LPS诱导的破骨细胞形成、TRAP酶活性和破骨细胞中的骨吸收。此外,NPFF处理也抑制了LPS引发的NO释放,表明主要涉及一条依赖NO的途径。此外,还评估了破骨细胞标记基因的变化,包括TRAP、组织蛋白酶K、基质金属蛋白酶-9、活化T细胞核因子c1(NFATc1)和Runx2。NPFF下调了LPS导致的TRAP、组织蛋白酶K和基质金属蛋白酶-9基因的增加,而对NFATc1和Runx2没有影响。此外,NPFF受体2(NPFFR2)的mRNA表达也因NPFF处理而增加,提示NPFFR2途径的参与。应该提到的是,RF9(1 μM)是一种已报道的NPFF受体药理学抑制剂,具有NPFF样激动剂特性,可减弱破骨细胞生成。总的来说,我们的研究结果为NPFF在破骨细胞上的体外活性提供了新证据,这可能有助于扩展NPFF的功能范围。