Department of Hematology, Tangdu Hospital, Fourth Military Medical University, 710038, Xi'an, China.
State Key Laboratory of Cancer Biology, Department of Biochemistry and Molecular Biology, Fourth Military Medical University, 710032, Xi'an, China.
Endocrine. 2019 Aug;65(2):426-439. doi: 10.1007/s12020-019-01952-7. Epub 2019 May 25.
Although the BMPR-SMAD-RUNX2 signaling pathway plays widely recognized roles in BMP-induced osteogenesis, factors regulating this pathway remain to be defined. In this study, we used simulated microgravity models, which represent mechanical unloading conditions, to detect miRNAs that function in osteoblast differentiation. We found that miR-494 was persistently increased in C2C12 cells subjected to clinorotation conditions and in osteoblasts isolated from tail-suspended rats. Experiments showed that the overexpression of miR-494 correlated with a marked reduction in osteoblast differentiation genes and a decrease in osteogenesis in BMP2-induced osteogenetic differentiation. In contrast, the inhibition of miR-494 promoted BMP2-induced osteogenesis and partially rescued osteoblast differentiation disorder under simulated microgravity conditions. Mechanism studies revealed that miR-494 directly targeted BMPR2 and RUNX2, both of which play vital roles in the BMPR-SMAD-RUNX2 signaling pathway. More importantly, we demonstrated a positive feedback loop between miR-494 and MYOD, a critical transcription factor for myogenesis, indicating that miR-494 may participate in deciding cell fate of the multipotent mesenchymal stem cells (MSCs). Collectively, our study reveals an important role for miR-494 in regulating osteogenesis, the identification of which not only clarifies a regulator of BMP2-induced osteoblast differentiation, but also offers a possible strategy for preventing bone loss under microgravity conditions.
尽管 BMPR-SMAD-RUNX2 信号通路在 BMP 诱导的成骨作用中发挥着广泛认可的作用,但调节该通路的因素仍有待确定。在这项研究中,我们使用模拟微重力模型,代表机械卸载条件,来检测在成骨细胞分化中起作用的 miRNAs。我们发现,在 C2C12 细胞受到水平旋转条件和尾部悬吊大鼠分离的成骨细胞中,miR-494 持续增加。实验表明,miR-494 的过表达与成骨分化基因的显著减少以及 BMP2 诱导的成骨分化中的成骨作用降低相关。相比之下,miR-494 的抑制促进了 BMP2 诱导的成骨作用,并在模拟微重力条件下部分挽救了成骨分化障碍。机制研究表明,miR-494 直接靶向 BMPR2 和 RUNX2,它们在 BMPR-SMAD-RUNX2 信号通路中都起着至关重要的作用。更重要的是,我们证明了 miR-494 与 MYOD 之间存在正反馈回路,MYOD 是成肌作用的关键转录因子,表明 miR-494 可能参与决定多能间充质干细胞 (MSCs) 的细胞命运。总之,我们的研究揭示了 miR-494 在调节成骨作用中的重要作用,它不仅阐明了 BMP2 诱导的成骨细胞分化的调节剂,而且为预防微重力条件下的骨质流失提供了一种可能的策略。