Cao Yujing, LV Qiuxia, LV Cuitian
Henan Hospital of Traditional Chinese Medicine, The Second Affiliated Hospital of Henan College of Traditional Chinese Medicine, Zhengzhou, Henan 450002, P.R. China.
Basic Medicine College, Henan University of Traditional Chinese Medicine, Zhengzhou, Henan 450046, P.R. China.
Int J Mol Med. 2015 Sep;36(3):760-6. doi: 10.3892/ijmm.2015.2275. Epub 2015 Jul 7.
Elucidation of the molecular mechanisms governing the osteogenic differentiation of human mesenchymal stem cells (hMSCs) is of great importance for improving the treatment of bone-related diseases. MicroRNAs (miRNAs or miRs), a class of small non-coding RNAs, are critical in a number of biological processes, including the proliferation, differentiation and survival of cells and organisms. Emerging evidence indicates that miRNAs are essential in regulating osteoblastogenesis and bone formation. However, the role of miRNAs in osteoblast mechanotransduction remains to be defined. The present study aimed to examine the role of miR-153 in the osteogenesis of hMSCs and to investigate the impact of miR-153 on bone morphogenetic protein receptor type II (BMPR2) expression. The overexpression of miR-153 inhibited the osteogenic differentiation of hMSCs, whereas downregulation of miR-153 enhanced the process. Furthermore, bioinformatic analysis predicted that miR-153 is a potential regulator of BMPR2. The direct binding of miR-153 to the BMPR2 3'-untranslated region (3'-UTR) was demonstrated by a luciferase reporter assay using a construct containing the BMPR2 3'-UTR. In addition, knockdown of BMPR2 by RNA interference inhibited the osteogenic differentiation of hMSCs, with a similar effect to the upregulation of miR-153. In conclusion, the results suggest that miR-153 is a mechano-sensitive miRNA that regulates osteoblast differentiation by directly targeting BMPR2, and that therapeutic inhibition of miR-153 may be an efficient anabolic strategy for skeletal disorders caused by pathological mechanical loading.
阐明调控人间充质干细胞(hMSCs)成骨分化的分子机制对于改善骨相关疾病的治疗具有重要意义。微小RNA(miRNA或miR)是一类小的非编码RNA,在许多生物学过程中起关键作用,包括细胞和生物体的增殖、分化和存活。新出现的证据表明,miRNA在调节成骨细胞生成和骨形成中至关重要。然而,miRNA在成骨细胞机械转导中的作用仍有待确定。本研究旨在探讨miR-153在hMSCs成骨过程中的作用,并研究miR-153对骨形态发生蛋白受体II型(BMPR2)表达的影响。miR-153的过表达抑制了hMSCs的成骨分化,而miR-153的下调则增强了这一过程。此外,生物信息学分析预测miR-153是BMPR2的潜在调节因子。使用包含BMPR2 3'-非翻译区(3'-UTR)的构建体进行的荧光素酶报告基因测定证明了miR-153与BMPR2 3'-UTR的直接结合。此外,通过RNA干扰敲低BMPR2抑制了hMSCs的成骨分化,其效果与miR-153上调相似。总之,结果表明miR-153是一种机械敏感的miRNA,通过直接靶向BMPR2调节成骨细胞分化,并且对miR-153的治疗性抑制可能是治疗由病理性机械负荷引起的骨骼疾病的一种有效的合成代谢策略。