Inter J Stomatol ›› 2018, Vol. 45 ›› Issue (1): 46-49.doi: 10.7518/gjkq.2018.01.009

• Original Articles • Previous Articles     Next Articles

Functions of microRNA on the osteogenic differentiation of human periodontal ligament-derived cells

Hao Yilin, Fang Fuchun, Wu Buling   

  1. Dept. of Stomatology, Nanfang Hospital, Southern Medical University, Guangzhou 510515, China
  • Received:2017-05-11 Revised:2017-10-20 Online:2018-01-01 Published:2018-01-01
  • Supported by:
    This work was supported by National Natural Science Foundation of China (81600882) and Medical Science and Technology Research Fundation of Guangdong Province (A2016190).

Abstract: Human periodontal ligament-derived cells are a group of heterogeneous cells, which can differentiate into osteoblasts, participate in remodeling and repair of alveolar bone remodeling, and periodontal regeneration. MicroRNAs (miRNAs) are thought to play a key role in the regulation of cell differentiation and be key factors in maintaining cell differentiation and regulating differentiation. MicroRNA plays a promotion or inhibition role on osteogenic differentiation by targeting mRNA. In this review, we summarized the different miRNAs in the osteogenic differentiation of periodontal-derived cells, focusing on the function and regulation of target genes and pathways under the mineralized or mechanical force induced conditions.

Key words: microRNA, periodontal ligament stem cell, periodontal ligament cell, osteogenic differentiation

CLC Number: 

  • Q254

TrendMD: 
[1]Pihlstrom BL, Michalowicz BS, Johnson NW. Perio-dontal diseases[J]. Lancet, 2005, 366(9499):1809- 1820.
[2]Sanz AR, Carrión FS, Chaparro AP. Mesenchymal stem cells from the oral cavity and their potential value in tissue engineering[J]. Periodontol 2000, 2015, 67(1):251-267.
[3]Seo BM, Miura M, Gronthos S, et al. Investigation of multipotent postnatal stem cells from human periodontal ligament[J]. Lancet, 2004, 364(9429): 149-155.
[4]Kebschull M, Papapanou PN. Mini but mighty: microRNAs in the pathobiology of periodontal disease[J]. Periodontol 2000, 2015, 69(1):201-220.
[5]Liu B, Li J, Cairns MJ. Identifying miRNAs, targets and functions[J]. Brief Bioinform, 2014, 15(1):1-19.
[6]Vidigal JA, Ventura A. The biological functions of miRNAs: lessons from in vivo studies[J]. Trends Cell Biol, 2015, 25(3):137-147.
[7]Bak RO, Mikkelsen JG. miRNA sponges: soaking up miRNAs for regulation of gene expression[J]. Wiley Interdiscip Rev RNA, 2014, 5(3):317-333.
[8]Farh KK, Grimson A, Jan C, et al. The widespread impact of mammalian MicroRNAs on mRNA re-pression and evolution[J]. Science, 2005, 310(5755): 1817-1821.
[9]Filipowicz W, Bhattacharyya SN, Sonenberg N. Mechanisms of post-transcriptional regulation by microRNAs: are the answers in sight[J]. Nat Rev Genet, 2008, 9(2):102-114.
[10]Hung PS, Chen FC, Kuang SH, et al. miR-146a in-duces differentiation of periodontal ligament cells[J]. J Dent Res, 2010, 89(3):252-257.
[11]Nakasa T, Shibuya H, Nagata Y, et al. The inhibitory effect of microRNA-146a expression on bone des-truction in collagen-induced arthritis[J]. Arthritis Rheum, 2011, 63(6):1582-1590.
[12]Li C, Li C, Yue J, et al. miR-21 and miR-101 re-gulate PLAP-1 expression in periodontal ligament cells[J]. Mol Med Rep, 2012, 5(5):1340-1346.
[13]Qi L, Zhang Y. The microRNA 132 regulates fluid shear stress-induced differentiation in periodontal ligament cells through mTOR signaling pathway[J]. Cell Physiol Biochem, 2014, 33(2):433-445.
[14]Chen Y, Mohammed A, Oubaidin M, et al. Cyclic stretch and compression forces alter microRNA-29 expression of human periodontal ligament cells[J]. Gene, 2015, 566(1):13-17.
[15]Chang M, Lin H, Luo M, et al. Integrated miRNA and mRNA expression profiling of tension force-induced bone formation in periodontal ligament cells[J]. In Vitro Cell Dev Biol Anim, 2015, 51(8): 797-807.
[16]Liu Y, Liu W, Hu C, et al. MiR-17 modulates osteo-genic differentiation through a coherent feed-forward loop in mesenchymal stem cells isolated from perio-dontal ligaments of patients with periodontitis[J]. Stem Cclls, 2011, 29(11):1804-1816.
[17]Liu W, Liu Y, Guo T, et al. TCF3, a novel positive regulator of osteogenesis, plays a crucial role in miR-17 modulating the diverse effect of canonical Wnt signaling in different microenvironments[J]. Cell Death Dis, 2013, 4:e539.
[18]邓超, 伍燕, 杨琨, 等. 微小RNA-17在糖基化终末产物刺激下人牙周膜干细胞骨向分化过程中的调控作用[J]. 华西口腔医学杂志, 2015, 33(1):21-24. Deng C, Wu Y, Yang K, et al. Effect of microRNA- 17 on osteogenic differentiation of advanced glyca-tion end products-stimulated human perio-dontal ligament stem cells[J]. West Chin J Stomatol, 2015, 33(1):21-24.
[19]Gay I, Cavender A, Peto D, et al. Differentiation of human dental stem cells reveals a role for micro-RNA-218[J]. J Periodontal Res, 2014, 49(1):110- 120.
[20]Wei FL, Wang JH, Ding G, et al. Mechanical force-induced specific microRNA expression in human periodontal ligament stem cells[J]. Cells Tissues Organs, 2015, 199(5/6):353-363.
[21]Wei F, Liu D, Feng C, et al. MicroRNA-21 mediates stretch-induced osteogenic differentiation in human periodontal ligament stem cells[J]. Stem Cells Dev, 2015, 24(3):312-319.
[1] Zhou Jinkuo,Zhang Jinhong,Shi Xiaojing,Liu Guangshun,Jiang Lei,Liu Qianfeng. Influences of long noncoding RNA small nucleolar RNA host gene 22 on the cell proliferation, invasion and migration of oral squamous carcinoma cells by regulating microRNA-27b-3p [J]. Int J Stomatol, 2024, 51(1): 52-59.
[2] Li Liheng,Wang Rui,Wang Xiaoming,Zhang Zhiyi,Zhang Xuan,An Feng,Wang Qin,Zhang Fan. Effects of circular RNA hsa_circ_0085576 on cell migration and invasion of oral squamous cell carcinoma by regulating the microRNA-498/B-cell-specific Moloney murine leukemia virus integration site 1 axis [J]. Int J Stomatol, 2024, 51(1): 60-67.
[3] Abulaiti Guliqihere,Qin Xu,Zhu Guangxun. Research progress of mitophagy in the onset and development of periodontal disease [J]. Int J Stomatol, 2024, 51(1): 68-73.
[4] Liu Tiqian,Liang Xing,Liu Weiqing,Li Xiaohong,Zhu Rui.. Research progress on the role and mechanism of occlusal trauma in the development of periodontitis [J]. Int J Stomatol, 2023, 50(1): 19-24.
[5] Zhang Jingyi,Li Danwei,Sun Yu,Lei Yayan,Liu Tao,Gong Yu. In vitro cytotoxicity of composite resin and compomer and effect on osteogenic differentiation of osteoblasts [J]. Int J Stomatol, 2022, 49(4): 412-419.
[6] Hong Yaya,Chen Xuepeng,Si Misi. Advances in research on noncoding RNA during the osteogenic differentiation of dental follicle stem cells [J]. Int J Stomatol, 2022, 49(3): 263-271.
[7] Qian Suting,Ding Lingmin,Ji Yaning,Lin Jun.. Differential expression of microRNA in gingival crevicular fluid of periodontitis and its regulatory mechanism on periodontitis [J]. Int J Stomatol, 2022, 49(3): 349-355.
[8] Ai Xiaoqing,Dou Lei,Qiao Xin,Yang Deqin. MicroRNA profile of exosomes derived from dental pulp stromal cells under three-dimensional culture condition [J]. Int J Stomatol, 2022, 49(1): 27-36.
[9] Guo Yuting,Lü Xuechao. Research progress on drugs regulating the osteogenic differentiation of dental pulp stem cells [J]. Int J Stomatol, 2021, 48(6): 737-744.
[10] Liu Juan,Chen Bin,Yan Fuhua. Effects of platelet-rich plasma and concentrated growth factor on the proliferation and osteogenic differentiation of human periodontal cells [J]. Int J Stomatol, 2021, 48(5): 520-527.
[11] Li Jingya,Shui Yusen,Guo Yongwen. Advances in mechanisms for osteogenic differentiation of human periodontal ligament cells induced by cyclic tensile stress [J]. Int J Stomatol, 2020, 47(6): 652-660.
[12] Sun Jianwei,Lei Lihong,Tan Jingyi,Chen Lili. Regulation of osteoimmunology by MicroRNA 155 and research progress of its possible mechanism in periodontitis [J]. Int J Stomatol, 2020, 47(5): 607-615.
[13] Yang Yeqing,Chen Ming,Wu Buling. Research progress on circular RNA in the osteogenic differentiation of mesenchymal stem cells [J]. Int J Stomatol, 2020, 47(3): 257-262.
[14] Liu Junqi,Chen Yiyin,Yang Wenbin. Research progress on N6-methyladenosine for regulating the osteogenic differentiation of bone marrow mesenchymal stem cells [J]. Int J Stomatol, 2020, 47(3): 263-269.
[15] Wang Runting,Fang Fuchun. Progress in research of non-coding RNAs in osteogenic differentiation of human periodontal ligament stem cells [J]. Int J Stomatol, 2020, 47(2): 138-145.
Viewed
Full text


Abstract

Cited

  Shared   
  Discussed   
[1] . [J]. Foreign Med Sci: Stomatol, 1999, 26(06): .
[2] . [J]. Foreign Med Sci: Stomatol, 1999, 26(06): .
[3] . [J]. Foreign Med Sci: Stomatol, 1999, 26(06): .
[4] . [J]. Foreign Med Sci: Stomatol, 1999, 26(06): .
[5] . [J]. Foreign Med Sci: Stomatol, 1999, 26(06): .
[6] . [J]. Foreign Med Sci: Stomatol, 1999, 26(05): .
[7] . [J]. Foreign Med Sci: Stomatol, 1999, 26(05): .
[8] . [J]. Foreign Med Sci: Stomatol, 1999, 26(05): .
[9] . [J]. Foreign Med Sci: Stomatol, 1999, 26(04): .
[10] . [J]. Foreign Med Sci: Stomatol, 1999, 26(04): .