KAP1-associated transcriptional inhibitory complex regulates C2C12 myoblasts differentiation and mitochondrial biogenesis via miR-133a repression

被引:13
作者
Zhang, Jialing [1 ,2 ]
Hua, Chaoju [1 ,2 ]
Zhang, Yu [1 ,2 ]
Wei, Peng [1 ,3 ]
Tu, Yaping [3 ]
Wei, Taotao [1 ,2 ]
机构
[1] Chinese Acad Sci, Inst Biophys, Natl Lab Biomacromol, Beijing 100101, Peoples R China
[2] Univ Chinese Acad Sci, Beijing 100049, Peoples R China
[3] Creighton Univ, Dept Pharmacol & Neurosci, Sch Med, Omaha, NE 68178 USA
基金
国家重点研发计划; 中国国家自然科学基金;
关键词
SKELETAL-MUSCLE; IDENTIFICATION; MICRORNA-1; MECHANISMS; PROTEINS;
D O I
10.1038/s41419-020-02937-5
中图分类号
Q2 [细胞生物学];
学科分类号
071009 ; 090102 ;
摘要
The differentiation of myoblasts plays a key role in the growth of biological individuals and the reconstruction of muscle tissue. Several microRNAs are significantly upregulated during the differentiation of myoblasts and their target genes have been explored. However, the molecular mechanisms underlying the transcriptional regulation of microRNAs remain elusive. In the present study, we found that the expression of miR-133a is increased during the differentiation of C2C12 myoblasts. miR-133a mimic is sufficient to induce the biogenesis of mitochondria and differentiation of C2C12 myoblasts whereas miR-133a inhibitor abolishes cell differentiation. Using CRISPR affinity purification in situ of regulatory elements (CAPTURE) technique, we further dissected the regulatory mechanisms of miR-133a expression and found that KAP1-associated transcription complex accounts for the suppression of miR-133a in C2C12 myoblasts. Knockdown of KAP1 increased the expression of miR-133a, which contributed to the biogenesis of mitochondria and differentiation of C2C12 myoblasts. To our knowledge, this is the first study using the CAPTURE technology to identify the regulatory factors of miR-133a during cell differentiation, which may provide new ideas for understanding the precision regulatory machinery of microRNAs during different biological processes.
引用
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页数:12
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共 38 条
  • [1] The functions of animal microRNAs
    Ambros, V
    [J]. NATURE, 2004, 431 (7006) : 350 - 355
  • [2] RNA-binding proteins and gene regulation in myogenesis
    Apponi, Luciano H.
    Corbett, Anita H.
    Pavlath, Grace K.
    [J]. TRENDS IN PHARMACOLOGICAL SCIENCES, 2011, 32 (11) : 652 - 658
  • [3] MicroRNAs: Target Recognition and Regulatory Functions
    Bartel, David P.
    [J]. CELL, 2009, 136 (02) : 215 - 233
  • [4] MicroRNAs: Genomics, biogenesis, mechanism, and function (Reprinted from Cell, vol 116, pg 281-297, 2004)
    Bartel, David P.
    [J]. CELL, 2007, 131 (04) : 11 - 29
  • [5] Muscle as a "Mediator" of Systemic Metabolism
    Baskin, Kedryn K.
    Winders, Benjamin R.
    Olson, Eric N.
    [J]. CELL METABOLISM, 2015, 21 (02) : 237 - 248
  • [6] Genome-wide identification of enhancers in skeletal muscle: the role of MyoD1
    Blum, Roy
    Vethantham, Vasupradha
    Bowman, Christopher
    Rudnicki, Michael
    Dynlacht, Brian D.
    [J]. GENES & DEVELOPMENT, 2012, 26 (24) : 2763 - 2779
  • [7] The formation of skeletal muscle: from somite to limb
    Buckingham, M
    Bajard, L
    Chang, T
    Daubas, P
    Hadchouel, J
    Meilhac, S
    Montarras, D
    Rocancourt, D
    Relaix, F
    [J]. JOURNAL OF ANATOMY, 2003, 202 (01) : 59 - 68
  • [8] Gene Regulatory Networks and Transcriptional Mechanisms that Control Myogenesis
    Buckingham, Margaret
    Rigby, Peter W. J.
    [J]. DEVELOPMENTAL CELL, 2014, 28 (03) : 225 - 238
  • [9] The role of microRNA-1 and microRNA-133 in skeletal muscle proliferation and differentiation
    Chen, JF
    Mandel, EM
    Thomson, JM
    Wu, QL
    Callis, TE
    Hammond, SM
    Conlon, FL
    Wang, DZ
    [J]. NATURE GENETICS, 2006, 38 (02) : 228 - 233
  • [10] Skeletal muscle programming and re-programming
    Fong, Abraham P.
    Tapscott, Stephen J.
    [J]. CURRENT OPINION IN GENETICS & DEVELOPMENT, 2013, 23 (05) : 568 - 573