HDAC3 Regulates the Transition to the Homeostatic Myelinating Schwann Cell State

被引:32
|
作者
Rosenberg, Laura H. [1 ,3 ]
Cattin, Anne-Laure [1 ]
Fontana, Xavier [1 ]
Harford-Wright, Elizabeth [1 ]
Burden, Jemima J. [1 ]
White, Ian J. [1 ]
Smith, Jacob G. [1 ]
Napoli, Ilaria [1 ]
Quereda, Victor [1 ,5 ]
Policarpi, Cristina [1 ]
Freeman, Jamie [1 ,4 ]
Ketteler, Robin [1 ]
Riccio, Antonella [1 ]
Lloyd, Alison C. [1 ,2 ]
机构
[1] UCL, MRC Lab Mol Cell Biol, Gower St, London WC1E 6BT, England
[2] UCL, UCL Canc Inst, Gower St, London WC1E 6BT, England
[3] CRUK Therapeut Discovery Labs, Babraham Res Campus, Cambridge CB22 3AT, England
[4] Horizon Discovery, 8100 Cambridge Res Pk, Cambridge CB25 9TL, England
[5] Scripps Res Inst, 130 Scripps Way, Jupiter, FL 33458 USA
来源
CELL REPORTS | 2018年 / 25卷 / 10期
关键词
SIGNALING PATHWAY; MAINTENANCE; MECHANISMS; EXPRESSION; DISEASE; MICE; DIFFERENTIATION; IDENTIFICATION; GROWTH; NURD;
D O I
10.1016/j.celrep.2018.11.045
中图分类号
Q2 [细胞生物学];
学科分类号
071009 ; 090102 ;
摘要
The formation of myelinating Schwann cells (mSCs) involves the remarkable biogenic process, which rapidly generates the myelin sheath. Once formed, the mSC transitions to a stable homeostatic state, with loss of this stability associated with neuropathies. The histone deacetylases histone deacetylase 1 (HDAC1) and HDAC2 are required for the myelination transcriptional program. Here, we show a distinct role for HDAC3, in that, while dispensable for the formation of mSCs, it is essential for the stability of the myelin sheath once formed-with loss resulting in progressive severe neuropathy in adulthood. This is associated with the prior failure to downregulate the biogenic program upon entering the homeostatic state leading to hypertrophy and hypermyelination of the mSCs, progressing to the development of severe myelination defects. Our results highlight distinct roles of HDAC1/2 and HDAC3 in controlling the differentiation and homeostatic states of a cell with broad implications for the understanding of this important cell-state transition.
引用
收藏
页码:2755 / +
页数:16
相关论文
共 50 条
  • [1] PINK1 positively regulates HDAC3 to suppress dopaminergic neuronal cell death
    Choi, Hyo-Kyoung
    Choi, Youngsok
    Kang, HeeBum
    Lim, Eun-jin
    Park, Soo-Yeon
    Lee, Hyun-Seob
    Park, Ji-Min
    Moon, Jisook
    Kim, Yoon-Jung
    Choi, Insup
    Joe, Eun-Hye
    Choi, Kyung-Chul
    Yoon, Ho-Geun
    HUMAN MOLECULAR GENETICS, 2015, 24 (04) : 1127 - 1141
  • [2] Autotaxin is induced by TSA through HDAC3 and HDAC7 inhibition and antagonizes the TSA-induced cell apoptosis
    Li, Song
    Wang, Baolu
    Xu, Yan
    Zhang, Junjie
    MOLECULAR CANCER, 2011, 10
  • [3] Hdac3 regulates bone modeling by suppressing osteoclast responsiveness to RANKL
    Molstad, David H. H.
    Mattson, Anna M.
    Begun, Dana L.
    Westendorf, Jennifer J.
    Bradley, Elizabeth W.
    JOURNAL OF BIOLOGICAL CHEMISTRY, 2020, 295 (51) : 17713 - 17723
  • [4] NKAP Must Associate with HDAC3 to Regulate Hematopoietic Stem Cell Maintenance and Survival
    Shapiro, Michael Jeremy
    Lehrke, Michael Jonathan
    Chung, Ji Young
    Arocha, Sinibaldo Romero
    Shapiro, Virginia Smith
    JOURNAL OF IMMUNOLOGY, 2019, 202 (08): : 2287 - 2295
  • [5] Vitamin C regulates Schwann cell myelination by promoting DNA demethylation of pro-myelinating genes
    Huff, Tyler C.
    Sant, David W.
    Camarena, Vladimir
    Van Booven, Derek
    Andrade, Nadja S.
    Mustafi, Sushmita
    Monje, Paula, V
    Wang, Gaofeng
    JOURNAL OF NEUROCHEMISTRY, 2021, 157 (06) : 1759 - 1773
  • [6] The histone deacetylase HDAC3 is essential for Purkinje cell function, potentially complicating the use of HDAC inhibitors in SCA1
    Venkatraman, Anand
    Hu, Yuan-Shih
    Didonna, Alessandro
    Cvetanovic, Marija
    Krbanjevic, Aleksandar
    Bilesimo, Patrice
    Opal, Puneet
    HUMAN MOLECULAR GENETICS, 2014, 23 (14) : 3733 - 3745
  • [7] MicroRNA-193b-3p regulates chondrogenesis and chondrocyte metabolism by targeting HDAC3
    Meng, Fangang
    Li, Zhiwen
    Zhang, Zhiqi
    Yang, Zibo
    Kang, Yan
    Zhao, Xiaoyi
    Long, Dianbo
    Hu, Shu
    Gu, Minghui
    He, Suiwen
    Wu, Peihui
    Chang, Zongkun
    He, Aishan
    Liao, Weiming
    THERANOSTICS, 2018, 8 (10): : 2862 - 2883
  • [8] miR-1236 regulates hypoxia-induced epithelial-mesenchymal transition and cell migration/invasion through repressing SENP1 and HDAC3
    Chen, Sung-Yuan
    Teng, Shu-Chun
    Cheng, Tzu-Hao
    Wu, Kou-Juey
    CANCER LETTERS, 2016, 378 (01) : 59 - 67
  • [9] Hepatic HDAC3 Regulates Systemic Iron Homeostasis and Ferroptosis via the Hippo Signaling Pathway
    Meng, Hongen
    Yu, Yingying
    Xie, Enjun
    Wu, Qian
    Yin, Xiangju
    Zhao, Bin
    Min, Junxia
    Wang, Fudi
    RESEARCH, 2023, 6
  • [10] HDAC3 positively regulates HE4 expression to promote ovarian carcinoma progression
    Lou, Tong
    Zhuang, Huiyu
    Liu, Chongdong
    Zhang, Zhenyu
    ARCHIVES OF BIOCHEMISTRY AND BIOPHYSICS, 2019, 675