Myc-mediated transcriptional repression by recruitment of histone deacetylase

被引:91
作者
Kurland, John F. [1 ]
Tansey, Wilham P. [1 ]
机构
[1] Cold Spring Harbor Lab, Cold Spring Harbor, NY 11724 USA
关键词
D O I
10.1158/0008-5472.CAN-07-6552
中图分类号
R73 [肿瘤学];
学科分类号
100214 ;
摘要
Myc is a transcription factor that features prominently in cancer. The oncogenicity of Myc stems from its ability to regulate expression of genes required for cell growth and proliferation. Although the mechanisms through which Myc activates transcription have been extensively studied, less is known about how Myc represses transcription. Recently, we reported that a conserved element within Myc-MbIII(-) is important for transcriptional repression. Here, we investigate the mechanism through which MbIII contributes to repression. We show that Myc represses transcription of target genes Id2 and Gadd153 by a process that involves histone deacetylation. We show that MbIII is important for repression of these genes and present evidence that this element contributes to repression by recruiting the histone deacetylase HDAC3 to the Id2 and Gadd153 promoters. These results describe a mechanistic role for MbIII in transcription, and reveal that recruitment of HDAC3 is a process by which Myc represses gene activity.
引用
收藏
页码:3624 / 3629
页数:6
相关论文
共 23 条
[1]   Transcriptional regulation and transformation by MYC proteins [J].
Adhikary, S ;
Eilers, M .
NATURE REVIEWS MOLECULAR CELL BIOLOGY, 2005, 6 (08) :635-645
[2]   c-Myc represses the proximal promoters of GADD45a and GADD153 by a post-RNA polymerase II recruitment mechanism [J].
Barsyte-Lovejoy, D ;
Mao, DYL ;
Penn, LZ .
ONCOGENE, 2004, 23 (19) :3481-3486
[3]   Anticancer activities of histone deacetylase inhibitors [J].
Bolden, Jessica E. ;
Peart, Melissa J. ;
Johnstone, Ricky W. .
NATURE REVIEWS DRUG DISCOVERY, 2006, 5 (09) :769-784
[4]   Myc represses transcription through recruitment of DNA methyltransferase corepressor [J].
Brenner, C ;
Deplus, R ;
Didelot, C ;
Loriot, A ;
Viré, E ;
De Smet, C ;
Gutierrez, A ;
Danovi, D ;
Bernard, D ;
Boon, T ;
Pelicci, PG ;
Amati, B ;
Kouzarides, T ;
de Launoit, Y ;
Di Croce, L ;
Fuks, F .
EMBO JOURNAL, 2005, 24 (02) :336-346
[5]   Probing tumor phenotypes using stable and regulated synthetic microRNA precursors [J].
Dickins, RA ;
Hemann, MT ;
Zilfou, JT ;
Simpson, DR ;
Ibarra, I ;
Hannon, GJ ;
Lowe, SW .
NATURE GENETICS, 2005, 37 (11) :1289-1295
[6]   Enzymatic activity associated with class IIHDACs is dependent on a multiprotein complex containing HDAC3 and SMRT/N-CoR [J].
Fischle, W ;
Dequiedt, F ;
Hendzel, MJ ;
Guenther, MG ;
Lazar, MA ;
Voelter, W ;
Verdin, E .
MOLECULAR CELL, 2002, 9 (01) :45-57
[7]   Dissecting the biological functions of Drosophila histone deacetylases by RNA interference and transcriptional profiling [J].
Foglietti, Cristiana ;
Filocamo, Gessica ;
Cundari, Enrico ;
De Rinaldis, Emanuele ;
Lahm, Armin ;
Cortese, Riccardo ;
Steinkuhler, Christian .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2006, 281 (26) :17968-17976
[8]   Binding of c-Myc to chromatin mediates mitogen-induced acetylation of histone H4 and gene activation [J].
Frank, SR ;
Schroeder, M ;
Fernandez, P ;
Taubert, S ;
Amati, B .
GENES & DEVELOPMENT, 2001, 15 (16) :2069-2082
[9]   Quantitative sequential chromatin immunoprecipitation, a method for analyzing co-occupancy of proteins at genomic regions in vivo -: art. no. e151 [J].
Geisberg, JV ;
Struhl, K .
NUCLEIC ACIDS RESEARCH, 2004, 32 (19) :e151
[10]   Role of Class I and Class II histone deacetylases in carcinoma cells using siRNA [J].
Glaser, KB ;
Li, JL ;
Staver, MJ ;
Wei, RQ ;
Albert, DH ;
Davidsen, SK .
BIOCHEMICAL AND BIOPHYSICAL RESEARCH COMMUNICATIONS, 2003, 310 (02) :529-536