Department of Spine surgery, Honghui Hospital, School of Medicine, Xi'an Jiaotong University, Shaanxi, China.
Department of Orthopedics, The Second Affiliated Hospital of Harbin Medical University, Harbin, China.
J Cell Physiol. 2019 Jul;234(7):11969-11975. doi: 10.1002/jcp.27852. Epub 2018 Dec 4.
Established RAW264.7 cell lines for osteoclastic differentiation has been widely engaged in bone homeostasis research, however, the efficacy of RANKL independently stimulating has rarely been defined, because protocols were usually developed and modified by various laboratories. Otherwise, problematic issues are also lie in the cell's seeding density, RANKL stimulating time point, and distinguishing osteoclastogenesis ability of RANKL-treated RAW264.7 cells. Therefore, in the current study, we examined the efficacy of various concentrations of RANKL-treated RAW264.7 for its osteoclastic differentiation with or without pretreated other costimulators such as: LPS and/or M-CSF. The oteoclastogenesis ability of RANKL-treated RAW264.7 cells was demonstrated by bone resorption pit, F-actin, and osteoclastogenesis specific marker studies. Besides that, through tartrate-resistant acid phosphatase (TRAP) staining, we clarified to start the treatment with 30 ng/ml RANKL at 12 hr after seeded RAW264.7 with the density of 6.25 × 10 cells/cm manifested an significantly increased number of multinucleated osteoclastic cells. Overall, our results establishing an optimal method for RANKL independently inducing RAW 264.7 cell osteoclastic differentiation, which could efficiently generate osteoclasts in vitro for significant advances in our understanding of bone biology.
已建立的 RAW264.7 破骨细胞分化细胞系广泛应用于骨稳态研究,然而,RANKL 独立刺激的效果很少被定义,因为方案通常是由各个实验室开发和修改的。此外,还存在一些问题,例如细胞接种密度、RANKL 刺激的时间点以及区分 RANKL 处理的 RAW264.7 细胞的破骨细胞生成能力。因此,在本研究中,我们研究了不同浓度的 RANKL 处理 RAW264.7 细胞的诱导破骨细胞分化的效果,同时还研究了预处理其他共刺激物(如 LPS 和/或 M-CSF)的效果。通过骨吸收陷窝、F-肌动蛋白和破骨细胞特异性标志物研究来证明 RANKL 处理的 RAW264.7 细胞的破骨细胞生成能力。此外,通过抗酒石酸酸性磷酸酶(TRAP)染色,我们确定在 RAW264.7 细胞以 6.25×10 细胞/cm 的密度接种后 12 小时开始用 30ng/ml RANKL 进行处理,可以显著增加多核破骨细胞的数量。总的来说,我们的研究结果建立了一种 RANKL 独立诱导 RAW264.7 细胞破骨细胞分化的最佳方法,能够有效地在体外生成破骨细胞,为深入了解骨生物学提供了重要的支持。