He Yueying, Yang Mingjun, Chen Zhuo, Wei Peng, Qin Kun, Xie Gaoqian, Chen Keming
College of Life Science and Engineering, Lanzhou University of Tenchnology, Lanzhou 730050, Gansu, China.
Basic Medical Laboratory of the 940th Hospital of Joint Logistics Support Force of Chinese People's Liberation Army, Lanzhou 730050, Gansu, China.
Sheng Wu Gong Cheng Xue Bao. 2022 Mar 25;38(3):1159-1172. doi: 10.13345/j.cjb.210356.
It is known that low-frequency pulsed electromagnetic fields (PEMFs) can promote the differentiation and maturation of rat calvarial osteoblasts (ROBs) cultured . However, the mechanism that how ROBs perceive the physical signals of PEMFs and initiate osteogenic differentiation remains unknown. In this study, we investigated the relationship between the promotion of osteogenic differentiation of ROBs by 0.6 mT 50 Hz PEMFs and the presence of polycystin2 (PC2) located on the primary cilia on the surface of ROBs. First, immunofluorescence staining was used to study whether PC2 is located in the primary cilia of ROBs, and then the changes of PC2 protein expression in ROBs upon treatment with PEMFs for different time were detected by Western blotting. Subsequently, we detected the expression of PC2 protein by Western blotting and the effect of PEMFs on the activity of alkaline phosphatase (ALP), as well as the expression of Runx-2, Bmp-2, Col-1 and Osx proteins and genes related to bone formation after pretreating ROBs with amiloride HCl (AMI), a PC2 blocker. Moreover, we detected the expression of genes related to bone formation after inhibiting the expression of PC2 in ROBs using RNA interference. The results showed that PC2 was localized on the primary cilia of ROBs, and PEMFs treatment increased the expression of PC2 protein. When PC2 was blocked by AMI, PEMFs could no longer increase PC2 protein expression and ALP activity, and the promotion effect of PEMFs on osteogenic related protein and gene expression was also offset. After inhibiting the expression of PC2 using RNA interference, PEMFs can no longer increase the expression of genes related to bone formation. The results showed that PC2, located on the surface of primary cilia of osteoblasts, plays an indispensable role in perceiving and transmitting the physical signals from PEMFs, and the promotion of osteogenic differentiation of ROBs by PEMFs depends on the existence of PC2. This study may help to elucidate the mechanism underlying the promotion of bone formation and osteoporosis treatment in low-frequency PEMFs.
已知低频脉冲电磁场(PEMFs)可促进培养的大鼠颅骨成骨细胞(ROBs)的分化和成熟。然而,ROBs如何感知PEMFs的物理信号并启动成骨分化的机制仍不清楚。在本研究中,我们调查了0.6 mT 50 Hz PEMFs促进ROBs成骨分化与位于ROBs表面初级纤毛上的多囊蛋白2(PC2)之间的关系。首先,采用免疫荧光染色研究PC2是否位于ROBs的初级纤毛中,然后通过蛋白质印迹法检测不同时间PEMFs处理后ROBs中PC2蛋白表达的变化。随后,我们通过蛋白质印迹法检测PC2蛋白的表达以及PEMFs对碱性磷酸酶(ALP)活性的影响,以及在用PC2阻滞剂盐酸阿米洛利(AMI)预处理ROBs后,与骨形成相关的Runx-2、Bmp-2、Col-1和Osx蛋白及基因的表达。此外,我们使用RNA干扰抑制ROBs中PC2的表达后,检测与骨形成相关的基因表达。结果表明,PC2定位于ROBs的初级纤毛上,PEMFs处理增加了PC2蛋白的表达。当PC2被AMI阻断时,PEMFs不再能增加PC2蛋白表达和ALP活性,并且PEMFs对成骨相关蛋白和基因表达的促进作用也被抵消。使用RNA干扰抑制PC2的表达后,PEMFs不再能增加与骨形成相关的基因表达。结果表明,位于成骨细胞初级纤毛表面的PC2在感知和传递来自PEMFs的物理信号中起不可或缺的作用,并且PEMFs对ROBs成骨分化的促进作用取决于PC2的存在。本研究可能有助于阐明低频PEMFs促进骨形成和治疗骨质疏松症的潜在机制。