Regulation of histone deacetylase activities

被引:289
作者
Sengupta, N [1 ]
Seto, E [1 ]
机构
[1] H Lee Moffitt Canc Ctr & Res Inst, Tampa, FL 33612 USA
关键词
HDAC; histone deacetylation; chromatin; gene regulation; protein-protein interaction; post-translational modification; subcellular localization;
D O I
10.1002/jcb.20179
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
Histone deacetylases (HDACs) are enzymes that catalyze the removal of acetyl groups from lysine residues in both histone and non-histone proteins. They play a key role in the regulation of gene transcription and many other biological processes involving chromatin. Significantly, recent studies suggest that HDACs are critically involved in cell-cycle regulation, cell proliferation, differentiation, and in the development of human cancer. HDAC inhibitors currently are being exploited as potential anti-cancer agents. As expected for vital regulators of many cellular processes, the activities of HDACs are tightly controlled and precisely regulated by multiple mechanisms. The activities of most if not all HDACs are regulated by protein-protein interactions. In addition, many HDACs are regulated by post-translational modifications as well as by subcellular localization. Less studied, but perhaps equally important, is the regulation of some HDACs by control of expression, availability of cofactors, and by proteolytic processing. A complete understanding of how HDACs are regulated will contribute not only to our overall knowledge of chromatin structure and gene control, but will offer tremendous insight into approaches for developing therapeutic HDAC inhibitors with improved specificity. (C) 2004 Wiley-Liss, Inc.
引用
收藏
页码:57 / 67
页数:11
相关论文
共 104 条
[1]   Association of a protein phosphatase 1 activity with the human factor C1 (HCF) complex [J].
Ajuh, PM ;
Browne, GJ ;
Hawkes, NA ;
Cohen, PTW ;
Roberts, SGE ;
Lamond, AI .
NUCLEIC ACIDS RESEARCH, 2000, 28 (03) :678-686
[2]   Identification of mammalian Sds3 as an integral component of the Sin3/histone deacetylase corepressor complex [J].
Alland, L ;
David, G ;
Hong, SL ;
Potes, J ;
Muhle, R ;
Lee, HC ;
Hou, H ;
Chen, K ;
DePinho, RA .
MOLECULAR AND CELLULAR BIOLOGY, 2002, 22 (08) :2743-2750
[3]   Role for N-CoR and histone deacetylase in Sin3-mediated transcriptional repression [J].
Alland, L ;
Muhle, R ;
Hou, H ;
Potes, J ;
Chin, L ;
SchreiberAgus, N ;
DePinho, RA .
NATURE, 1997, 387 (6628) :49-55
[4]   Nicotinamide and PNC1 govern lifespan extension by calorie restriction in Saccharomyces cerevisiae [J].
Anderson, RM ;
Bitterman, KJ ;
Wood, JG ;
Medvedik, O ;
Sinclair, DA .
NATURE, 2003, 423 (6936) :181-185
[5]   Histone deacetylases: transcriptional repression with SINers and NuRDs [J].
Ayer, DE .
TRENDS IN CELL BIOLOGY, 1999, 9 (05) :193-198
[6]   Exchange of N-CoR corepressor and Tip60 coactivator complexes links gene expression by NF-κB and β-amyloid precursor protein [J].
Baek, SH ;
Ohgi, KA ;
Rose, DW ;
Koo, EH ;
Glass, CK ;
Rosenfeld, MG .
CELL, 2002, 110 (01) :55-67
[7]   Identification of mouse histone deacetylase 1 as a growth factor-inducible gene [J].
Bartl, S ;
Taplick, J ;
Lagger, G ;
Khier, H ;
Kuchler, K ;
Seiser, C .
MOLECULAR AND CELLULAR BIOLOGY, 1997, 17 (09) :5033-5043
[8]   ATP-dependent nucleosomere modeling [J].
Becker, PB ;
Hörz, W .
ANNUAL REVIEW OF BIOCHEMISTRY, 2002, 71 :247-273
[9]   Histone modifications in transcriptional regulation [J].
Berger, SL .
CURRENT OPINION IN GENETICS & DEVELOPMENT, 2002, 12 (02) :142-148
[10]   Inhibition of silencing and accelerated aging by nicotinamide, a putative negative regulator of yeast Sir2 and human SIRT1 [J].
Bitterman, KJ ;
Anderson, RM ;
Cohen, HY ;
Latorre-Esteves, M ;
Sinclair, DA .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2002, 277 (47) :45099-45107