Duplication and maintenance of heterochromatin domains

被引:168
作者
Taddei, A
Roche, D
Sibarita, JB
Turner, BM
Almouzni, G [1 ]
机构
[1] Inst Curie, Res Sect, CNRS, UMR 144, F-75248 Paris 05, France
[2] Inst Curie, Res Sect, CNRS, UMR 218, F-75248 Paris, France
[3] Univ Birmingham, Sch Med, Dept Anat, Birmingham B15 2TT, W Midlands, England
关键词
heterochromatin; nuclear organization; histone H4 acetylation; chromatin assembly factor 1; heterochromatin protein 1;
D O I
10.1083/jcb.147.6.1153
中图分类号
Q2 [细胞生物学];
学科分类号
071009 ; 090102 ;
摘要
To investigate the mechanisms that assure the maintenance of heterochromatin regions, we took advantage of the fact that clusters of heterochromatin DNA replicate late in S phase and are processed in discrete foci with a characteristic nuclear distribution. At the light microscopy level, within these entities, we followed DNA synthesis, histone H4 acetylation, heterochromatin protein 1 (Hp1 alpha and -beta), and chromatin assembly factor 1 (CAF-1). During replication, Hp1 alpha and -beta domains of concentration are stably maintained, whereas heterochromatin regions are enriched in both CAF-1 and replication-specific acetylated isoforms of histone H4 (H4Ac 5 and 12). We defined a time window of 20 min for the maintenance of this state. Furthermore, treatment with Trichostatin A (TSA), during and after replication, sustains the H4Ac 5 and 12 state in heterochromatin excluding H4Ac 8 and 16. In comparison, early replication foci, at the same level, did not display any specific enrichment in H4Ac 5 and 12. These data emphasize the specific importance for heterochromatin of the replication-associated H4 isoforms. We propose that perpetuation of heterochromatin involves self-maintenance factors, including local concentration of Hp1 alpha and -beta, and that a degree of plasticity is provided by the cycle of H4 acetylation/deacetylation assisted by CAF-1.
引用
收藏
页码:1153 / 1166
页数:14
相关论文
共 83 条
[1]   Functional mammalian homologues of the Drosophila PEV-modifier Su(var)3-9 encode centromere-associated proteins which complex with the heterochromatin component M31 [J].
Aagaard, L ;
Laible, G ;
Selenko, P ;
Schmid, M ;
Dorn, R ;
Schotta, G ;
Kuhfittig, S ;
Wolf, A ;
Lebersorger, A ;
Singh, PB ;
Reuter, G ;
Jenuwein, T .
EMBO JOURNAL, 1999, 18 (07) :1923-1938
[2]  
ANNUNZIATO AT, 1995, NUCLEUS, V1, P31
[3]   Histone H4 acetylation and replication timing in Chinese hamster chromosomes [J].
Belyaev, ND ;
Keohane, AM ;
Turner, BM .
EXPERIMENTAL CELL RESEARCH, 1996, 225 (02) :277-285
[4]   THE ESSENTIALS OF DNA METHYLATION [J].
BIRD, A .
CELL, 1992, 70 (01) :5-8
[5]  
Braunstein M, 1996, MOL CELL BIOL, V16, P4349
[6]   Putting the genome on the map [J].
Bridger, JM ;
Bickmore, WA .
TRENDS IN GENETICS, 1998, 14 (10) :403-409
[7]   Association of transcriptionally silent genes with Ikaros complexes at centromeric heterochromatin [J].
Brown, KE ;
Guest, SS ;
Smale, ST ;
Hahm, K ;
Merkenschlager, M ;
Fisher, AG .
CELL, 1997, 91 (06) :845-854
[8]   Chromo-domain proteins: linking chromatin structure to epigenetic regulation [J].
Cavalli, G ;
Paro, R .
CURRENT OPINION IN CELL BIOLOGY, 1998, 10 (03) :354-360
[9]  
COOK PR, 1995, J CELL SCI, V108, P2927
[10]   Self-association of chrome domain peptides [J].
Cowell, IG ;
Austin, CA .
BIOCHIMICA ET BIOPHYSICA ACTA-PROTEIN STRUCTURE AND MOLECULAR ENZYMOLOGY, 1997, 1337 (02) :198-206