Down-regulation of Noggin and miR-138 coordinately promote osteogenesis of mesenchymal stem cells

被引:14
|
作者
Sun, Xing-Kun [1 ,2 ,3 ,4 ]
Zhou, Jin [1 ,2 ]
Zhang, Lei [5 ]
Ma, Tian [6 ]
Wang, Yu-Han [7 ]
Yang, Yan-Mei [8 ]
Tang, Yan-Ting [9 ]
Li, Hong [1 ,2 ]
Wang, Li-Jun [3 ]
机构
[1] Inst Basic Med Sci, Dept Adv Interdisciplinary Studies, Beijing 100850, Peoples R China
[2] Tissue Engn Res Ctr, Beijing 100850, Peoples R China
[3] Gen Hosp Chinese Peoples Armed Police Forces, Dept Stomatol, Beijing 100039, Peoples R China
[4] Jinzhou Med Univ, Jinzhou 121001, Liaoning, Peoples R China
[5] ZheJiang Univ Sci & Technol, Sch Biol & Chem Engn, Hangzhou 310023, Zhejiang, Peoples R China
[6] Chinese Peoples Liberat Army Gen Hosp, Dept Plast & Reconstruct Surg, Beijing 100853, Peoples R China
[7] Tibet Vocat Tech Coll, Lhasa 850032, Tibet Autonomou, Peoples R China
[8] Chinese Peoples Liberat Army Gen Hosp, Dept Stomatol, Beijing 100853, Peoples R China
[9] Peoples Hosp, Dept Stomatol, Suzhou High Tech Zone, Suzhou 215129, Jiangsu, Peoples R China
基金
中国国家自然科学基金;
关键词
Mesenchymal stem cells; Noggin-siRNA; AntimiR-138; Osteogenic effect; MSCs; BONE-MARROW; IN-VITRO; MICRORNA EXPRESSION; SIGNALING PATHWAYS; RNA INTERFERENCE; SIRNA DELIVERY; GENE DELIVERY; DIFFERENTIATION; THERAPY; RUNX2;
D O I
10.1007/s10735-017-9740-5
中图分类号
Q2 [细胞生物学];
学科分类号
071009 ; 090102 ;
摘要
Mesenchymal stem cells (MSCs) can differentiate to osteocytes under suitable conditions. In recent years, micro-nucleotides have been progressively used to modulate gene expression in cells due to the consideration of safety. Our present study aimed to investigate whether co-delivery of Noggin-siRNA and antimiR-138 enhances the osteogenic effect of MSCs. Using a murine MSC line, C3H/10T1/2 cells, the delivery efficiency of Noggin-siRNA and antimiR-138 into MSCs was evaluated by quantitative real-time polymerase chain reaction (qRT-PCR). Cell phenotype and proliferation capacity was assessed by flow cytometry and MTT assay respectively. The osteogenesis of MSCs was tested by Alkaline Phosphatase (ALP) staining, qRT-PCR, and western blot analyses. Our results demonstrated that the expression of Noggin and miR-138 were significantly silenced in MSCs by Noggin-siRNA and/or antimiR-138 delivery, while the phenotype and proliferation capacity of MSCs were not affected. Down-regulation of Noggin and miR-138 cooperatively promoted osteogenic differentiation of MSCs. The ALP positive cells reached about 83.57 +/- 10.18%. Compared with single delivery, the expression of osteogenic related genes, such as Alp, Col-1, Bmp2, Ocn and Runx2, were the highest in cells with co-delivery of the two oligonucleotides. Moreover, the protein level of RUNX2, and the ratios of pSMAD1/5/SMAD1/5 and pERK1/2/ERK1/2 were significantly increased. The activation of Smad, Erk signaling may constitute the underlying mechanism of the enhanced osteogenesis process. Taken together, our study provides a safe strategy for the clinical rehabilitation application of MSCs in skeletal deficiency.
引用
收藏
页码:427 / 436
页数:10
相关论文
共 50 条
  • [21] PPARγ suppression inhibits adipogenesis but does not promote osteogenesis of human mesenchymal stem cells
    Yu, Wei-Hua
    Li, Fu-Gui
    Chen, Xiao-Yong
    Li, Jian-Tao
    Wu, Yan-Heng
    Huang, Li-Hua
    Wang, Zhen
    Li, Panlong
    Wang, Tao
    Lahn, Bruce T.
    Xiang, Andy Peng
    INTERNATIONAL JOURNAL OF BIOCHEMISTRY & CELL BIOLOGY, 2012, 44 (02) : 377 - 384
  • [22] Down-Regulation of Sox11 Is Required for Efficient Osteogenic Differentiation of Adipose-Derived Stem Cells
    Choi, Mi Kyung
    Seong, Ikjoo
    Kang, Seon Ah
    Kim, Jaesang
    MOLECULES AND CELLS, 2014, 37 (04) : 337 - 344
  • [23] Regulation of adipogenesis and osteogenesis in mesenchymal stem cells by vascular endothelial growth factor A
    Berendsen, A. D.
    Olsen, B. R.
    JOURNAL OF INTERNAL MEDICINE, 2015, 277 (06) : 674 - 680
  • [24] Can Extracorporeal Shockwave Promote Osteogenesis of Equine Bone Marrow-Derived Mesenchymal Stem Cells In Vitro?
    Colbath, Aimee C.
    Kisiday, John D.
    Phillips, Jennifer N.
    Goodrich, Laurie R.
    STEM CELLS AND DEVELOPMENT, 2020, 29 (02) : 110 - 118
  • [25] Calcium carbonate nanoparticles promote osteogenesis compared to adipogenesis in human bone-marrow mesenchymal stem cells
    Li, Xiaoning
    Yang, Xing
    Liu, Xujie
    He, Wei
    Huang, Qianli
    Li, Shengrong
    Feng, Qingling
    PROGRESS IN NATURAL SCIENCE-MATERIALS INTERNATIONAL, 2018, 28 (05) : 598 - 608
  • [26] Silver nanoparticles promote osteogenesis of mesenchymal stem cells and improve bone fracture healing in osteogenesis mechanism mouse model
    Zhang, Ruizhong
    Lee, Puiyan
    Lui, Vincent C. H.
    Chen, Yan
    Liu, Xuelai
    Lok, Chun Nam
    To, Michael
    Yeung, Kelvin W. K.
    Wong, Kenneth K. Y.
    NANOMEDICINE-NANOTECHNOLOGY BIOLOGY AND MEDICINE, 2015, 11 (08) : 1949 - 1959
  • [27] The mechanism of miR-889 regulates osteogenesis in human bone marrow mesenchymal stem cells
    Xu, Gang
    Ding, Zheng
    Shi, Hui-feng
    JOURNAL OF ORTHOPAEDIC SURGERY AND RESEARCH, 2019, 14 (01)
  • [28] Down-regulation of CD105 is associated with multi-lineage differentiation in human umbilical cord blood-derived mesenchymal stem cells
    Jin, Hye Jin
    Park, Se Kyong
    Oh, Wonil
    Yang, Yoon Sun
    Kim, Seong Who
    Choi, Soo Jin
    BIOCHEMICAL AND BIOPHYSICAL RESEARCH COMMUNICATIONS, 2009, 381 (04) : 676 - 681
  • [29] miR-195 in human primary mesenchymal stromal/stem cells regulates proliferation, osteogenesis and paracrine effect on angiogenesis
    Almeida, Maria Ines
    Silva, Andreia Machado
    Vasconcelos, Daniel Marques
    Almeida, Catarina Rodrigues
    Caires, Hugo
    Pinto, Marta Teixeira
    Calin, George Adrian
    Santos, Susana Gomes
    Barbosa, Mario Adolfo
    ONCOTARGET, 2016, 7 (01) : 7 - 22
  • [30] Harnessing a Novel Inhibitory Role of miR-16 in Osteogenesis by Human Mesenchymal Stem Cells for Advanced Scaffold-Based Bone Tissue Engineering
    Castano, Irene Mencia
    Curtin, Caroline M.
    Duffy, Garry P.
    O'Brien, Fergal J.
    TISSUE ENGINEERING PART A, 2019, 25 (1-2) : 24 - 33