ERK2 is required for efficient terminal differentiation of skeletal myoblasts

被引:2
作者
Li, Ju [1 ]
Johnson, Sally E. [1 ]
机构
[1] Univ Florida, Dept Anim Sci, Gainesville, FL 32611 USA
关键词
ERK2; JGF-I; FGF2; myoblast; myogenin; differentiation; fusion;
D O I
10.1016/j.bbrc.2006.05.051
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Terminal differentiation of skeletal myoblasts involves alignment of the mononucleated cells, fusion into multinucleated syncitia, and transcription of muscle-specific genes. Myogenesis in vivo is regulated partially by IGF-I initiated signaling that results in activation of an intracellular phosphatidylinositol 3 kinase (PI3K) signaling cascade. Downstream signaling through the Raf/MEK/ERK axis, a pathway initiated by IGF-I, also is implicated in the regulation of muscle formation. The involvement of ERK1 and ERK2 during myogenesis was examined in C2C12 myoblasts. C2C12 myoblasts stably expressing a small interfering RNA (siRNA) directed against ERK1 or ERK2 were created. Both of the kinases were reduced to trace levels as measured by Western for total ERK and retained the capacity to become phosphorylated. C2C12siERK2 knockdown myoblasts failed to fuse into multinucleated myofibers. By contrast, cells expressing a scrambled siRNA or ERK1 siRNA fused into large multinucleated Structures. The block to muscle formation did not involve continued cell cycle progression or apoptosis. C2C12siERK1 myoblasts expressed an increased amount of ERK2 protein and formed larger myofibers in response to IGF-I treatment. Interestingly, IGF-I treatment of C2C12 ERK2 knockdown myoblasts did not reinstate the myogenic program arguing that ERK2 is required for differentiation. These results provide evidence for ERK2 as a positive regulator of myogenesis and suggest that ERK1 is dispensable for myoblast proliferation and differentiation. (c) 2006 Elsevier Inc. All rights reserved.
引用
收藏
页码:1425 / 1433
页数:9
相关论文
共 50 条
  • [31] Opposing functions of ATF2 and Fos-like transcription factors in c-Jun-mediated myogenin expression and terminal differentiation of avian myoblasts
    Laetitia Daury
    Muriel Busson
    Nikolaï Tourkine
    François Casas
    Isabelle Cassar-Malek
    Chantal Wrutniak-Cabello
    Marc Castellazzi
    Gérard Cabello
    Oncogene, 2001, 20 : 7998 - 8008
  • [32] Opposing functions of ATF2 and Fos-like transcription factors in e-Jun-mediated myogenin expression and terminal differentiation of avian myoblasts
    Daury, L
    Busson, M
    Tourkine, N
    Casas, F
    Cassar-Malek, I
    Wrutniak-Cabello, C
    Castellazzi, M
    Cabello, G
    ONCOGENE, 2001, 20 (55) : 7998 - 8008
  • [33] Bidirectional regulation of genistein on the proliferation and differentiation of C2C12 myoblasts
    Gan, Mailin
    Yang, Dongli
    Fan, Yuan
    Du, Jingjing
    Shen, Linyuan
    Li, Qiang
    Jiang, Yanzhi
    Tang, Guoqing
    Li, Mingzhou
    Wang, Jinyong
    Li, Xuewei
    Zhang, Shunhua
    Zhu, Li
    XENOBIOTICA, 2020, 50 (11) : 1352 - 1358
  • [34] The Major Lysosomal Membrane Proteins LAMP-1 and LAMP-2 Participate in Differentiation of C2C12 Myoblasts
    Sakane, Hiroshi
    Akasaki, Kenji
    BIOLOGICAL & PHARMACEUTICAL BULLETIN, 2018, 41 (08) : 1186 - 1193
  • [35] Expression and Subcellular Localization of Myogenic Regulatory Factors During the Differentiation of Skeletal Muscle C2C12 Myoblasts
    Ferri, Paola
    Barbieri, Elena
    Burattini, Sabrina
    Guescini, Michele
    D'Emilio, Alessandra
    Biagiotti, Laura
    Del Grande, Paolo
    De Luca, Antonio
    Stocchi, Vilberto
    Falcieri, Elisabetta
    JOURNAL OF CELLULAR BIOCHEMISTRY, 2009, 108 (06) : 1302 - 1317
  • [36] miRNAs ARE REQUIRED FOR THE TERMINAL DIFFERENTIATION OF WHITE MATTER ASTROCYTES IN THE DEVELOPING CNS
    Li, X.
    Chen, Y.
    Chi, Q.
    Hu, X.
    Xu, X.
    Zhang, Z.
    Qiu, M.
    Zheng, K.
    NEUROSCIENCE, 2016, 312 : 99 - 107
  • [37] Extracellular matrix is required for skeletal muscle differentiation rut not myogenin expression
    Melo, F
    Carey, DJ
    Brandan, E
    JOURNAL OF CELLULAR BIOCHEMISTRY, 1996, 62 (02) : 227 - 239
  • [38] NANOG Is Multiply Phosphorylated and Directly Modified by ERK2 and CDK1 In Vitro
    Brumbaugh, Justin
    Russell, Jason D.
    Yu, Pengzhi
    Westphall, Michael S.
    Coon, Joshua J.
    Thomson, James A.
    STEM CELL REPORTS, 2014, 2 (01): : 18 - 25
  • [39] Large-Scale Discovery of ERK2 Substrates Identifies ERK-Mediated Transcriptional Regulation by ETV3
    Carlson, Scott M.
    Chouinard, Candace R.
    Labadorf, Adam
    Lam, Carol J.
    Schmelzle, Katrin
    Fraenkel, Ernest
    White, Forest M.
    SCIENCE SIGNALING, 2011, 4 (196)
  • [40] HISTONE H4 MESSENGER-RNA LEVELS ARE DOWN-REGULATED BY 3' RNA PROCESSING DURING TERMINAL DIFFERENTIATION OF MYOBLASTS
    LARSON, DE
    HOFFMANN, I
    ZAHRADKA, P
    BIRNSTIEL, ML
    SELLS, BH
    BIOCHIMICA ET BIOPHYSICA ACTA, 1992, 1131 (02) : 139 - 144