Inhibiting 4E-BP1 re-activation represses podocyte cell cycle re-entry and apoptosis induced by adriamycin

被引:0
|
作者
Fang Li
Xing Mao
Qiyuan Zhuang
Zhonghua Zhao
Zhigang Zhang
Huijuan Wu
机构
[1] Fudan University,Department of Pathology, School of Basic Medical Sciences
来源
关键词
D O I
暂无
中图分类号
学科分类号
摘要
Podocyte loss is one of the determining factors for the progression toward glomerulosclerosis. Podocyte is terminally differentiated and does not typically proliferate following injury and loss. However, recent evidence suggested that during renal injury, podocyte could re-enter the cell cycle, sensitizing the cells to injury and death, but the molecular mechanisms underlying it, as well as the cell fate determination still remained unclear. Here, using NPHS2 Cre; mT/mG transgenic mice and primary podocytes isolated from the mice, we investigated the effect of mammalian target of rapamycin complex 1 (mTORC1)/4E-binding protein 1 (4E-BP1) signaling pathway on cell cycle re-entry and apoptosis of podocyte induced by adriamycin. It was found that podocyte cell cycle re-entry could be induced by adriamycin as early as the 1st week in vivo and the 2nd hour in vitro, accompanied with 4E-BP1 activation and was followed by podocyte loss or apoptosis from the 4th week in vivo or the 4th hour in vitro. Importantly, targeting 4E-BP1 activation by the RNA interference of 4E-BP1 or pharmacologic rapamycin (inhibitor of mTORC1, blocking mTORC1-dependent phosphorylation of its substrate 4E-BP1) treatment was able to inhibit the increases of PCNA, Ki67, and the S-phase fraction of cell cycle in primary podocyte during 2–6 h of adriamycin treatment, and also attenuated the following apoptotic cell death of podocyte detected from the 4th hour, suggesting that 4E-BP1 could be a regulator to manipulate the amount of cell cycle re-entry provided by differentiated podocyte, and thus regulate the degree of podocyte apoptosis, bringing us a new potential podocyte-protective substance that can be used for therapy.
引用
收藏
相关论文
共 50 条
  • [21] Neurodegenerative Phenotypes Induced by MYC-Driven Neuronal Cell Cycle Re-entry: Relevance to Alzheimer Disease
    Smith, Mark A.
    Casadesus, Gemma
    Richardson, Sandy L.
    Perry, George
    Petersen, Robert B.
    Lee, Hyoung-gon
    FASEB JOURNAL, 2008, 22
  • [22] Tau-Dependent Cell Cycle Re-Entry of Post-Mitotic Neurons Induced by β-amyloid Oligomers
    Seward, M. E.
    Swanson, E.
    Bloom, G. S.
    MOLECULAR BIOLOGY OF THE CELL, 2011, 22
  • [23] Sre kinase inhibition decreases thrombin-induced injury and cell cycle re-entry in striatal neurons
    Liu, Da-Zhi
    Cheng, Xi-Yuan
    Ander, Bradley P.
    Xu, Huichun
    Davis, Ryan R.
    Gregg, Jeffrey P.
    Sharp, Frank R.
    NEUROBIOLOGY OF DISEASE, 2008, 30 (02) : 201 - 211
  • [24] Neurodegenerative phenotypes induced by MYC-driven neuronal cell cycle re-entry: Relevance to Alzheimer disease
    Smith, Mark A.
    Casadesus, Gemma
    Richardson, Sandy L.
    Perry, George
    Petersen, Robert B.
    Lee, Hyoung-gon
    JOURNAL OF NEUROPATHOLOGY AND EXPERIMENTAL NEUROLOGY, 2008, 67 (05): : 493 - 493
  • [25] Amyloid β-Induced Activation of mTOR at the Plasma Membrane Leads to Neuronal Cell Cycle Re-Entry: a Seminal Step in Alzheimer's Disease Pathogenesis
    Norambuena, A.
    McMahon, L.
    Kodis, E. J.
    Swanson, E. M.
    Wallrabe, H. K.
    Thomas, S. S.
    Baerthlein, D.
    Zhou, X.
    Zhang, J.
    Oddo, S.
    Bloom, G. S.
    MOLECULAR BIOLOGY OF THE CELL, 2014, 25
  • [26] Activation of 4E-BP1 represses IGF-1 mediated cap-dependent translation in malignant pleural mesothelioma
    Jacobson, B. A.
    Patel, M. R.
    De, A.
    Frizelle, S. P.
    Kratzke, M. G.
    Farassati, F.
    Kratzke, R. A.
    LUNG CANCER, 2006, 54 : S55 - S55
  • [27] Effects of 4E-BP1 expression on hypoxic cell cycle inhibition and tumor cell proliferation and survival
    Barnhart, Bryan C.
    Lam, Jennifer C.
    Young, Regina M.
    Houghton, Peter J.
    Keith, Brian
    Simon, M. Celeste
    CANCER BIOLOGY & THERAPY, 2008, 7 (09) : 1443 - 1451
  • [28] Mir-128 Targets E2f3 to Regulate Cardiomyocyte Cell Cycle Re-entry
    Huang, Wei
    Feng, Yuliang
    Liang, Lialiang
    Cai, Wenfeng
    Kang, Kai
    Wen, Zhili
    Wang, Yuhua
    Chang, Dehua
    Fan, Guo-Chang
    Millard, Ronald W.
    Xu, Meifeng
    Ashraf, Muhammad
    Wang, Yigang
    CIRCULATION, 2013, 128 (22)
  • [29] Regulation of hepatocyte cell cycle re-entry by RNA polymerase II-associated Gdown1
    Jishage, Miki
    Roeder, Robert G.
    CELL CYCLE, 2020, 19 (23) : 3222 - 3230
  • [30] Stabilization of primary cilia reduces abortive cell cycle re-entry to protect injured adult CNS neurons from apoptosis
    Choi, Brian K. A.
    D'Onofrio, Philippe M.
    Shabanzadeh, Alireza P.
    Koeberle, Paulo D.
    PLOS ONE, 2019, 14 (08):