Roles of histone deacetylases in epigenetic regulation: emerging paradigms from studies with inhibitors

被引:379
作者
Delcuve, Genevieve P. [1 ]
Khan, Dilshad H. [1 ]
Davie, James R. [1 ]
机构
[1] Univ Manitoba, Manitoba Inst Cell Biol, Winnipeg, MB R3E 0V9, Canada
来源
CLINICAL EPIGENETICS | 2012年 / 4卷
基金
加拿大健康研究院;
关键词
histone deacetylase; HDAC; HDAC inhibitors; HDAC complexes; gene expression; noncoding RNAs; epigenetics;
D O I
10.1186/1868-7083-4-5
中图分类号
R73 [肿瘤学];
学科分类号
100214 ;
摘要
The zinc-dependent mammalian histone deacetylase (HDAC) family comprises 11 enzymes, which have specific and critical functions in development and tissue homeostasis. Mounting evidence points to a link between misregulated HDAC activity and many oncologic and nononcologic diseases. Thus the development of HDAC inhibitors for therapeutic treatment garners a lot of interest from academic researchers and biotechnology entrepreneurs. Numerous studies of HDAC inhibitor specificities and molecular mechanisms of action are ongoing. In one of these studies, mass spectrometry was used to characterize the affinities and selectivities of HDAC inhibitors toward native HDAC multiprotein complexes in cell extracts. Such a novel approach reproduces in vivo molecular interactions more accurately than standard studies using purified proteins or protein domains as targets and could be very useful in the isolation of inhibitors with superior clinical efficacy and decreased toxicity compared to the ones presently tested or approved. HDAC inhibitor induced-transcriptional reprogramming, believed to contribute largely to their therapeutic benefits, is achieved through various and complex mechanisms not fully understood, including histone deacetylation, transcription factor or regulator (including HDAC1) deacetylation followed by chromatin remodeling and positive or negative outcome regarding transcription initiation. Although only a very low percentage of protein-coding genes are affected by the action of HDAC inhibitors, about 40% of noncoding microRNAs are upregulated or downregulated. Moreover, a whole new world of long noncoding RNAs is emerging, revealing a new class of potential targets for HDAC inhibition. HDAC inhibitors might also regulate transcription elongation and have been shown to impinge on alternative splicing.
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页数:13
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  • [1] Histone Deacetylase 2 Is Phosphorylated, Ubiquitinated, and Degraded by Cigarette Smoke
    Adenuga, David
    Yao, Hongwei
    March, Thomas H.
    Seagrave, Jeanclare
    Rahman, Irfan
    [J]. AMERICAN JOURNAL OF RESPIRATORY CELL AND MOLECULAR BIOLOGY, 2009, 40 (04) : 464 - 473
  • [2] The Role of HDAC6 in Cancer
    Aldana-Masangkay, Grace I.
    Sakamoto, Kathleen M.
    [J]. JOURNAL OF BIOMEDICINE AND BIOTECHNOLOGY, 2011,
  • [3] New nomenclature for chromatin-modifying enzymes
    Allis, C. David
    Berger, Shelley L.
    Cote, Jacques
    Dent, Sharon
    Jenuwien, Thomas
    Kouzarides, Tony
    Pillus, Lorraine
    Reinberg, Danny
    Shi, Yang
    Shiekhattar, Ramin
    Shilatifard, Ali
    Workman, Jerry
    Zhang, Yi
    [J]. CELL, 2007, 131 (04) : 633 - 636
  • [4] Epigenetic regulation of microRNA expression in colorectal cancer
    Bandres, Eva
    Agirre, Xabier
    Bitarte, Nerea
    Ramirez, Natalia
    Zarate, Ruth
    Roman-Gomez, Jose
    Prosper, Felipe
    Garcia-Foncillas, Jesus
    [J]. INTERNATIONAL JOURNAL OF CANCER, 2009, 125 (11) : 2737 - 2743
  • [5] Chemoproteomics profiling of HDAC inhibitors reveals selective targeting of HDAC complexes
    Bantscheff, Marcus
    Hopf, Carsten
    Savitski, Mikhail M.
    Dittmann, Antje
    Grandi, Paola
    Michon, Anne-Marie
    Schlegl, Judith
    Abraham, Yann
    Becher, Isabelle
    Bergamini, Giovanna
    Boesche, Markus
    Delling, Manja
    Duempelfeld, Birgit
    Eberhard, Dirk
    Huthmacher, Carola
    Mathieson, Toby
    Poeckel, Daniel
    Reader, Valerie
    Strunk, Katja
    Sweetman, Gavain
    Kruse, Ulrich
    Neubauer, Gitte
    Ramsden, Nigel G.
    Drewes, Gerard
    [J]. NATURE BIOTECHNOLOGY, 2011, 29 (03) : 255 - U124
  • [6] Role of HDAC2 in the Pathophysiology of COPD
    Barnes, Peter J.
    [J]. ANNUAL REVIEW OF PHYSIOLOGY, 2009, 71 : 451 - 464
  • [7] Transcription factor co-repressors in cancer biology: roles and targeting
    Battaglia, Sebastiano
    Maguire, Orla
    Campbell, Moray J.
    [J]. INTERNATIONAL JOURNAL OF CANCER, 2010, 126 (11) : 2511 - 2519
  • [8] Inside HDAC with HDAC inhibitors
    Bertrand, Philippe
    [J]. EUROPEAN JOURNAL OF MEDICINAL CHEMISTRY, 2010, 45 (06) : 2095 - 2116
  • [9] Hdac3 Is Essential for the Maintenance of Chromatin Structure and Genome Stability
    Bhaskara, Srividya
    Knutson, Sarah K.
    Jiang, Guochun
    Chandrasekharan, Mahesh B.
    Wilson, Andrew J.
    Zheng, Siyuan
    Yenamandra, Ashwini
    Locke, Kimberly
    Yuan, Jia-ling
    Bonine-Summers, Alyssa R.
    Wells, Christina E.
    Kaiser, Jonathan F.
    Washington, M. Kay
    Zhao, Zhongming
    Wagner, Florence F.
    Sun, Zu-Wen
    Xia, Fen
    Holson, Edward B.
    Khabele, Dineo
    Hiebert, Scott W.
    [J]. CANCER CELL, 2010, 18 (05) : 436 - 447
  • [10] Chemical phylogenetics of histone deacetylases
    Bradner, James E.
    West, Nathan
    Grachan, Melissa L.
    Greenberg, Edward F.
    Haggarty, Stephen J.
    Warnow, Tandy
    Mazitschek, Ralph
    [J]. NATURE CHEMICAL BIOLOGY, 2010, 6 (03) : 238 - 243