PTEN–GSK3β–MOB1 axis controls neurite outgrowth in vitro and in vivo

被引:0
|
作者
Zhiwen Song
Xiu Han
Hongjun Zou
Bin Zhang
Ya Ding
Xu Xu
Jian Zeng
Jinbo Liu
Aihua Gong
机构
[1] The Third Affiliated Hospital of Soochow University,Department of Orthopaedics, School of Medicine
[2] Jiangsu University,Department of Cell Biology, School of Medicine
[3] Affiliated Hospital of Jining Medical University,Department of Laboratory Medicine
来源
关键词
MOB1; PTEN; GSK3β; Neurite outgrowth; Spinal cord injury;
D O I
暂无
中图分类号
学科分类号
摘要
Mps One binder 1 (MOB1) is a core component of NDR/LATS kinase and a positive regulator of the Hippo signaling pathway. However, its role in neurite outgrowth still remains to be clarified. Here, we confirmed, for the first time, that MOB1 promoted neurite outgrowth and was involved in functional recovery after spinal cord injury (SCI) in mice. Mechanistically, we found that MOB1 stability was regulated by the PTEN–GSK3β axis. The MOB1 protein was significantly up-regulated in PTEN-knockdown neuronal cells. This effect was dependent on the lipid phosphatase activity of PTEN. Moreover, MOB1 was found to be a novel substrate for GSK3β that is phosphorylated on serine 146 and degraded via the ubiquitin–proteasome system (UPS). Finally, in vivo lentiviral-mediated silencing of PTEN promoted neurite outgrowth and functional recovery after SCI and this effect was reversed by down-regulation of MOB1. Taken together, this study provided mechanistic insight into how MOB1 acts as a novel and a necessary regulator in PTEN–GSK3β axis that controls neurite outgrowth after SCI.
引用
收藏
页码:4445 / 4464
页数:19
相关论文
共 50 条
  • [1] PTEN-GSK3-MOB1 axis controls neurite outgrowth in vitro and in vivo
    Song, Zhiwen
    Han, Xiu
    Zou, Hongjun
    Zhang, Bin
    Ding, Ya
    Xu, Xu
    Zeng, Jian
    Liu, Jinbo
    Gong, Aihua
    CELLULAR AND MOLECULAR LIFE SCIENCES, 2018, 75 (23) : 4445 - 4464
  • [2] Slit2 Inactivates GSK3β to Signal Neurite Outgrowth Inhibition
    Byun, Justin
    Kim, Bo Taek
    Kim, Yun Tai
    Jiao, Zhongxian
    Hur, Eun-Mi
    Zhou, Feng-Quan
    PLOS ONE, 2012, 7 (12):
  • [3] mTORC1 controls GSK3β nuclear localization
    Antonescu, Costin N.
    Bautista, Stephen
    Boras, Ivan
    Vissa, Adriao
    Mecica, Noa
    Yip, Christopher M.
    Kim, Peter
    FASEB JOURNAL, 2018, 32 (01):
  • [4] GSK3β is a negative regulator of platelet function in vitro and in vivo.
    Woulfe, Donna S.
    August, Shelley
    Li, Dongjun
    BLOOD, 2006, 108 (11) : 121A - 121A
  • [5] WNK1/HSN2 mediates neurite outgrowth and differentiation via a OSR1/GSK3β-LHX8 pathway
    Masahiro Shimizu
    Hiroshi Shibuya
    Scientific Reports, 12
  • [6] WNK1/HSN2 mediates neurite outgrowth and differentiation via a OSR1/GSK3β-LHX8 pathway
    Shimizu, Masahiro
    Shibuya, Hiroshi
    SCIENTIFIC REPORTS, 2022, 12 (01)
  • [7] Targeting of PP2 A/GSK3β/PTEN Axis in Alzheimer Disease: The Mooting Evidence, Divine, and Devil
    Saad Misfer Alqahtani
    Hayder M. Al-Kuraishy
    Ali I. Al-Gareeb
    Maha M. Abdel-Fattah
    Ahad Amer Alsaiari
    Mubarak Alruwaili
    Marios Papadakis
    Athanasios Alexiou
    Gaber El-Saber Batiha
    Cellular and Molecular Neurobiology, 45 (1)
  • [8] The smallest AKAP, GSKIP, possesses distinct domains of GSK3 and PKA binding, conferring a bi-functional role of neurite outgrowth and neuroprotection
    Hong, Y-R.
    Huang, W-S.
    Chou, C-H.
    Yang, M-C.
    MOLECULAR BIOLOGY OF THE CELL, 2013, 24
  • [9] PTEN silencing enhances neuronal proliferation and differentiation by activating PI3K/Akt/GSK3β pathway in vitro
    Song, Zhiwen
    Han, Xiu
    Shen, Liming
    Zou, Hongjun
    Zhang, Bin
    Liu, Jinbo
    Gong, Aihua
    EXPERIMENTAL CELL RESEARCH, 2018, 363 (02) : 179 - 187
  • [10] The GSK3-MAP1B pathway controls neurite branching and microtubule dynamics
    Barnat, Monia
    Benassy, Marie-Noelle
    Vincensini, Laetitia
    Soares, Sylvia
    Fassier, Coralie
    Propst, Friedrich
    Andrieux, Annie
    von Boxberg, Ysander
    Nothias, Fatiha
    MOLECULAR AND CELLULAR NEUROSCIENCE, 2016, 72 : 9 - 21