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miR-9和miR-181a表达降低会下调Bim浓度并促进破骨细胞存活。

Reduced miR-9 and miR-181a expression down-regulates Bim concentration and promote osteoclasts survival.

作者信息

Wang Shilong, Tang Chaoliang, Zhang Quan, Chen Wenjun

机构信息

Department of Orthopedics, Huashan Hospital Affiliated to Fudan University Shanghai 200040, China.

出版信息

Int J Clin Exp Pathol. 2014 Apr 15;7(5):2209-18. eCollection 2014.

Abstract

Tibial plateau fractures are often the result of blunt trauma and are associated with severe soft-tissue injury. Operative management of high-energy fractures remains difficult and challenging because the injuries often associated with serious complications. MicroRNAs (miRNAs) are the class of short noncoding single-stranded RNA molecules that negatively regulate gene expression. miRNAs contribute to every step of osteogenesis from embryonic bone development to maintenance of adult bone tissue, and disturbed miRNAs expression are identified related to osteoporosis, osteosarcoma, post-traumatic arthritis and bone remodeling. But our understandings about the roles of miRNAs in tibial plateau fractures repairing process are rare. In this study, we first detect seven candidate miRNAs expression in the SF cells of the mouse model. The results indicated that miR-9 and miR-181a were down-regulated significantly five days after injury. By using dual luciferase assay and western blot, we confirmed that the expression of Cbl is repressed by miR-9 and miR-181a. Meanwhile, the amount of ubiquitinated Bim was raised and the total Bim was reduced by miRNA inhibitors. Further functional study indicated that reduced miR-9 and miR-181a expression can active RAW264.7 cells migration ability and raise the primary mouse osteoclasts survival rate in vitro. To our understood, this is the first study about the function of disturbed miRNAs in the tibial plateau fracture mouse model, and may expand our understanding about post tibial plateau fracture recover and post-traumatic sequelae generation.

摘要

胫骨平台骨折通常是钝性创伤的结果,并伴有严重的软组织损伤。高能骨折的手术治疗仍然困难且具有挑战性,因为这些损伤常伴有严重并发症。微小RNA(miRNA)是一类短的非编码单链RNA分子,可负向调节基因表达。miRNA参与从胚胎骨发育到成人骨组织维持的成骨过程的每一步,并且已确定miRNA表达紊乱与骨质疏松症、骨肉瘤、创伤后关节炎和骨重塑有关。但我们对miRNA在胫骨平台骨折修复过程中的作用了解甚少。在本研究中,我们首先检测了小鼠模型的滑膜成纤维细胞(SF细胞)中7种候选miRNA的表达。结果表明,损伤后5天miR-9和miR-181a显著下调。通过双荧光素酶测定和蛋白质印迹法,我们证实Cbl的表达受到miR-9和miR-181a的抑制。同时,miRNA抑制剂使泛素化的Bim量增加,总Bim量减少。进一步的功能研究表明,miR-9和miR-181a表达降低可激活RAW264.7细胞的迁移能力,并提高原代小鼠破骨细胞的体外存活率。据我们所知,这是第一项关于miRNA紊乱在胫骨平台骨折小鼠模型中功能的研究,可能会扩展我们对胫骨平台骨折后恢复和创伤后后遗症发生的理解。

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