MiR-690, a Runx2-targeted miRNA, regulates osteogenic differentiation of C2C12 myogenic progenitor cells by targeting NF-kappaB p65
详细信息    查看全文
  • 作者:Shouhe Yu ; Qianqian Geng ; Qiuhui Pan ; Zhongyu Liu ; Shan Ding ; Qi Xiang…
  • 关键词:Runx2 ; miR ; 690 ; Osteogenic differentiation ; p65 ; NF ; κB pathway
  • 刊名:Cell & Bioscience
  • 出版年:2016
  • 出版时间:December 2016
  • 年:2016
  • 卷:6
  • 期:1
  • 全文大小:4,165 KB
  • 参考文献:1.Jensen ED, Gopalakrishnan R, Westendorf JJ. Regulation of gene expression in osteoblasts. BioFactors. 2010;36:25–32.PubMedCentral PubMed
    2.Soltanoff CS, Yang S, Chen W, Li YP. Signaling networks that control the lineage commitment and differentiation of bone cells. Crit Rev Eukaryot Gene Expr. 2009;19:1–46.PubMedCentral CrossRef PubMed
    3.Zaidi SK, Young DW, Montecino MA, Lian JB, van Wijnen AJ, Stein JL, et al. Mitotic bookmarking of genes: a novel dimension to epigenetic control. Nat Rev Genet. 2010;11:583–9.PubMedCentral CrossRef PubMed
    4.Li Z, Hassan MQ, Volinia S, van Wijnen AJ, Stein JL, Croce CM, et al. A microRNA signature for a BMP2-induced osteoblast lineage commitment program. Proc Natl Acad Sci USA. 2008;105:13906–11.PubMedCentral CrossRef PubMed
    5.Itoh T, Nozawa Y, Akao Y. MicroRNA-141 and -200a are involved in bone morphogenetic protein-2-induced mouse pre-osteoblast differentiation by targeting distal-less homeobox 5. J Biol Chem. 2009;284:19272–9.PubMedCentral CrossRef PubMed
    6.Yang L, Cheng P, Chen C, He HB, Xie GQ, Zhou HD, et al. miR-93/Sp7 function loop mediates osteoblast mineralization. J Bone Miner Res. 2012;27:1598–606.CrossRef PubMed
    7.Huang J, Zhao L, Xing L, Chen D. MicroRNA-204 regulates Runx2 protein expression and mesenchymal progenitor cell differentiation. Stem Cells. 2010;28:357–64.PubMedCentral PubMed
    8.Zhang Y, Xie RL, Croce CM, Stein JL, Lian JB, van Wijnen AJ, et al. A program of microRNAs controls osteogenic lineage progression by targeting transcription factor Runx2. Proc Natl Acad Sci USA. 2011;108:9863–8.PubMedCentral CrossRef PubMed
    9.Kania MA, Bonner AS, Duffy JB, Gergen JP. The Drosophila segmentation gene runt encodes a novel nuclear regulatory protein that is also expressed in the developing nervous system. Genes Dev. 1990;4:1701–13.CrossRef PubMed
    10.Ducy P, Zhang R, Geoffroy V, Ridall AL, Karsenty G. Osf2/Cbfa1: a transcriptional activator of osteoblast differentiation. Cell. 1997;89:747–54.CrossRef PubMed
    11.Enomoto H, Enomoto-Iwamoto M, Iwamoto M, Nomura S, Himeno M, Kitamura Y, et al. Cbfa1 is a positive regulatory factor in chondrocyte maturation. J Biol Chem. 2000;275:8695–702.CrossRef PubMed
    12.Komori T, Yagi H, Nomura S, Yamaguchi A, Sasaki K, Deguchi K, et al. Targeted disruption of Cbfa1 results in a complete lack of bone formation owing to maturational arrest of osteoblasts. Cell. 1997;89:755–64.CrossRef PubMed
    13.Banerjee C, McCabe LR, Choi JY, Hiebert SW, Stein JL, Stein GS, et al. Runt homology domain proteins in osteoblast differentiation: AML3/CBFA1 is a major component of a bone-specific complex. J Cell Biochem. 1997;66:1–8.CrossRef PubMed
    14.Yu S, Geng Q, Sun F, Yu Y, Pan Q, Hong A. Osteogenic differentiation of C2C12 myogenic progenitor cells requires the Fos-related antigen Fra-1—a novel target of Runx2. Biochem Biophys Res Commun. 2013;430:173–8.CrossRef PubMed
    15.Libermann TA, Baltimore D. Activation of interleukin-6 gene expression through the NF-kappa B transcription factor. Mol Cell Biol. 1990;10:2327–34.PubMedCentral CrossRef PubMed
    16.Heinemeyer T, Wingender E, Reuter I, Hermjakob H, Kel AE, Kel OV, et al. Databases on transcriptional regulation: TRANSFAC: TRRD and COMPEL. Nucleic Acids Res. 1998;26:362–7.PubMedCentral CrossRef PubMed
    17.Sandelin A, Wasserman WW, Lenhard B. ConSite: web-based prediction of regulatory elements using cross-species comparison. Nucleic Acids Res. 2004;32:W249–52.PubMedCentral CrossRef PubMed
    18.Maragkakis M, Reczko M, Simossis VA, Alexiou P, Papadopoulos GL, Dalamagas T, et al. DIANA-microT web server: elucidating microRNA functions through target prediction. Nucleic Acids Res. 2009;37:W273–6.PubMedCentral CrossRef PubMed
    19.Wang X. miRDB: a microRNA target prediction and functional annotation database with a wiki interface. RNA. 2008;14:1012–7.PubMedCentral CrossRef PubMed
    20.Dweep H, Sticht C, Pandey P, Gretz N. miRWalk–database: prediction of possible miRNA binding sites by “walking” the genes of three genomes. J Biomed Inform. 2011;44:839–47.CrossRef PubMed
    21.Hirata-Tsuchiya S, Fukushima H, Katagiri T, Ohte S, Shin M, Nagano K, et al. Inhibition of BMP2-induced bone formation by the p65 subunit of NF-κB via an interaction with Smad4. Mol Endocrinol. 2014;28:1460–70.CrossRef PubMed
    22.Peruzzi B, Cappariello A, Del Fattore A, Rucci N, De Benedetti F, Teti A. c-Src and IL-6 inhibit osteoblast differentiation and integrate IGFBP5 signalling. Nat Commun. 2012;3:630.CrossRef PubMed
    23.Balint E, Lapointe D, Drissi H, van der Meijden C, Young DW, van Wijnen AJ, et al. Phenotype discovery by gene expression profiling: mapping of biological processes linked to BMP-2-mediated osteoblast differentiation. J Cell Biochem. 2003;89:401–26.CrossRef PubMed
    24.Fang S, Deng Y, Gu P, Fan X. MicroRNAs regulate bone development and regeneration. Int J Mol Sci. 2015;16:8227–53.PubMedCentral CrossRef PubMed
    25.Hu R, Liu W, Li H, Yang L, Chen C, Xia ZY, et al. A Runx2/miR-3960/miR-2861 regulatory feedback loop during mouse osteoblast differentiation. J Biol Chem. 2011;286:12328–39.PubMedCentral CrossRef PubMed
    26.Kim HK, Lee YS, Sivaprasad U, Malhotra A, Dutta A. Muscle-specific microRNA miR-206 promotes muscle differentiation. J Cell Biol. 2006;174:677–87.PubMedCentral CrossRef PubMed
    27.Dey BK, Gagan J, Dutta A. miR-206 and -486 induce myoblast differentiation by downregulating Pax7. Mol Cell Biol. 2011;31:203–14.PubMedCentral CrossRef PubMed
    28.Gong Y, Xu F, Zhang L, Qian Y, Chen J, Huang H, et al. MicroRNA expression signature for Satb2-induced osteogenic differentiation in bone marrow stromal cells. Mol Cell Biochem. 2014;387:227–39.CrossRef PubMed
    29.Zhang ZJ, Zhang H, Kang Y, Sheng PY, Ma YC, Yang ZB, et al. miRNA expression profile during osteogenic differentiation of human adipose-derived stem cells. J Cell Biochem. 2012;113:888–98.CrossRef PubMed
    30.Yang N, Wang G, Hu C, Shi Y, Liao L, Shi S, et al. Tumor necrosis factor α suppresses the mesenchymal stem cell osteogenesis promoter miR-21 in estrogen deficiency-induced osteoporosis. J Bone Miner Res. 2013;28:559–73.CrossRef PubMed
    31.Mo X, Lu Y, Han J. Effects of targeted modulation of miR-762 on expression of the IFITM5 gene in Saos-2 cells. Intractable Rare Dis Res. 2014;3:12–8.PubMedCentral CrossRef PubMed
    32.Sehic A, Risnes S, Khuu C, Khan QE, Osmundsen H. Effects of in vivo transfection with anti-miR-214 on gene expression in murine molar tooth germ. Physiol Genomics. 2011;43:488–98.CrossRef PubMed
    33.Tang X, Muniappan L, Tang G, Ozcan S. Identification of glucose-regulated miRNAs from pancreatic β cells reveals a role for miR-30d in insulin transcription. RNA. 2009;15:287–93.PubMedCentral CrossRef PubMed
    34.Hegde VL, Tomar S, Jackson A, Rao R, Yang X, Singh UP, et al. Distinct microRNA expression profile and targeted biological pathways in functional myeloid-derived suppressor cells induced by Δ9-tetrahydrocannabinol in vivo: regulation of CCAAT/enhancer-binding protein α by microRNA-690. J Biol Chem. 2013;288:36810–26.PubMedCentral CrossRef PubMed
    35.Chen S, Zhang Y, Kuzel TM, Zhang B. Regulating Tumor Myeloid-Derived Suppressor Cells by MicroRNAs. Cancer Cell Microenviron. 2015;2:e637.PubMedCentral PubMed
    36.Yang W, Yee AJ. Versican 3′-untranslated region (3′UTR) promotes dermal wound repair and fibroblast migration by regulating miRNA activity. Biochim Biophys Acta. 2014;1843:1373–85.CrossRef PubMed
    37.Wong JJ, Ritchie W, Gao D, Lau KA, Gonzalez M, Choudhary A, et al. Identification of nuclear-enriched miRNAs during mouse granulopoiesis. J Hematol Oncol. 2014;7:42.PubMedCentral CrossRef PubMed
    38.Hunsberger JG, Fessler EB, Chibane FL, Leng Y, Maric D, Elkahloun AG, et al. Mood stabilizer-regulated miRNAs in neuropsychiatric and neurodegenerative diseases: identifying associations and functions. Am J Transl Res. 2013;5:450–64.PubMedCentral PubMed
    39.Delić D, Grosser C, Dkhil M, Al-Quraishy S, Wunderlich F. Testosterone-induced upregulation of miRNAs in the female mouse liver. Steroids. 2010;75:998–1004.CrossRef PubMed
    40.Soysa NS, Alles N. NF-kappaB functions in osteoclasts. Biochem Biophys Res Commun. 2009;378:1–5.CrossRef PubMed
    41.Fritz EA, Glant TT, Vermes C, Jacobs JJ, Roebuck KA. Titanium particles induce the immediate early stress responsive chemokines IL-8 and MCP-1 in osteoblasts. J Orthop Res. 2002;20:490–8.CrossRef PubMed
    42.Kurokouchi K, Kambe F, Yasukawa K, Izumi R, Ishiguro N, Iwata H, et al. TNF-alpha increases expression of IL-6 and ICAM-1 genes through activation of NF-kappaB in osteoblast-like ROS17/2.8 cells. J Bone Miner Res. 1998;13:1290–9.CrossRef PubMed
    43.Zhou R, Hu G, Gong AY, Chen XM. Binding of NF-kappaB p65 subunit to the promoter elements is involved in LPS-induced transactivation of miRNA genes in human biliary epithelial cells. Nucleic Acids Res. 2010;38:3222–32.PubMedCentral CrossRef PubMed
    44.Kaneki H, Guo R, Chen D, Yao Z, Schwarz EM, Zhang YE, et al. Tumor necrosis factor promotes Runx2 degradation through up-regulation of Smurf1 and Smurf2 in osteoblasts. J Biol Chem. 2006;281:4326–33.PubMedCentral CrossRef PubMed
    45.Zhao L, Huang J, Zhang H, Wang Y, Matesic LE, Takahata M, et al. Tumor necrosis factor inhibits mesenchymal stem cell differentiation into osteoblasts via the ubiquitin E3 ligase Wwp1. Stem Cells. 2011;29:1601–10.PubMedCentral CrossRef PubMed
    46.Jones DC, Wein MN, Oukka M, Hofstaetter JG, Glimcher MJ, Glimcher LH. Regulation of adult bone mass by the zinc finger adapter protein Schnurri-3. Science. 2006;312:1223–7.CrossRef PubMed
    47.Liao L, Yang X, Su X, Hu C, Zhu X, Yang N, et al. Redundant miR-3077-5p and miR-705 mediate the shift of mesenchymal stem cell lineage commitment to adipocyte in osteoporosis bone marrow. Cell Death Dis. 2013;4:e600.PubMedCentral CrossRef PubMed
    48.Nakamura T, Toita H, Yoshimoto A, Nishimura D, Takagi T, Ogawa T, et al. Potential involvement of Twist2 and Erk in the regulation of osteoblastogenesis by HB-EGF-EGFR signaling. Cell Struct Funct. 2010;35:53–61.CrossRef PubMed
    49.Sun F, Xie Q, Ma J, Yang S, Chen Q, Hong A. Nuclear factor Y is required for basal activation and chromatin accessibility of fibroblast growth factor receptor 2 promoter in osteoblast-like cells. J Biol Chem. 2009;284:3136–47.PubMedCentral CrossRef PubMed
  • 作者单位:Shouhe Yu (1)
    Qianqian Geng (1)
    Qiuhui Pan (2)
    Zhongyu Liu (3)
    Shan Ding (4)
    Qi Xiang (1)
    Fenyong Sun (5)
    Can Wang (6)
    Yadong Huang (1)
    An Hong (1)

    1. Institute of Biomedicine, Jinan University, National Engineering Research Center of Genetic Medicine, Key Lab for Bioengineering Medicine of Guangdong Province, Guangzhou, Guangdong, People’s Republic of China
    2. Central Laboratory, People’s 10th Hospital, Shanghai, People’s Republic of China
    3. College of Life Science, Yangtze University, Jingzhou, Hubei, People’s Republic of China
    4. Department of Materials Science and Engineering, Jinan University, Engineering Research Center of Artificial Organs and Materials, Ministry of Education, Guangzhou, Guangdong, People’s Republic of China
    5. Department of Medical Laboratory, People’s 10th Hospital, Shanghai, People’s Republic of China
    6. College of Pharmacy, Jinan University, Guangzhou, Guangdong, People’s Republic of China
  • 刊物主题:Cell Biology; Microbiology;
  • 出版者:BioMed Central
  • ISSN:2045-3701
文摘
Background The runt-related transcription factor 2 (Runx2) is a cell-fate-determining factor that controls osteoblast differentiation and bone formation. It has been previously demonstrated that microRNAs (miRNAs) play important roles in osteogenesis. However, the Runx2-regulated miRNAs that have been reported thus far are limited. In this study, we pursued to identify these miRNAs in Tet-on stable C2C12 cell line (C2C12/Runx2Dox subline).

© 2004-2018 中国地质图书馆版权所有 京ICP备05064691号 京公网安备11010802017129号

地址:北京市海淀区学院路29号 邮编:100083

电话:办公室:(+86 10)66554848;文献借阅、咨询服务、科技查新:66554700