The reorganisation of constitutive heterochromatin in differentiating muscle requires HDAC activity

被引:67
作者
Terranova, R [1 ]
Sauer, S [1 ]
Merkenschlager, M [1 ]
Fisher, AG [1 ]
机构
[1] Hammersmith Hosp, Lymphocyte Dev Grp, MRC, Clin Sci Ctr,Imperial Coll Sch Med, London W12 0NN, England
基金
英国医学研究理事会;
关键词
constitutive heterochromatin; HDAC inhibition; muscle differentiation;
D O I
10.1016/j.yexcr.2005.07.031
中图分类号
R73 [肿瘤学];
学科分类号
100214 ;
摘要
Constitutive heterochromatin was once thought to be remarkably stable in composition and transcriptionally inert, but has recently been shown to be surprisingly dynamic. Here, we show that terminal muscle differentiation results in a global reorganisation and spatial clustering of constitutive heterochromatin. This is accompanied by enhanced histone H3K9 and H4K20 tri-methylation across major satellite regions and increased levels of major and minor satellite-encoded transcripts. Historic deacetylase (HDAC) activity is known to be important for initiating muscle differentiation. However, here, we show that low doses of HDAC inhibitors applied after the onset of muscle differentiation prevent the spatial reorganisation of constitutive heterochromatin while allowing terminal differentiation to proceed. Under these conditions, HDAC inhibition interferes with historic methylation and blocks centromere clustering, but does not prevent the temporal expression of muscle regulatory factors or the accumulation of centromere-derived transcripts. The demonstration that HDAC activity is required for spatial relocation of centromeres in differentiating muscle provides a convenient system in which the molecular drivers of differentiation-induced chromosome repositioning can be dissected. (c) 2005 Elsevier Inc. All rights reserved.
引用
收藏
页码:344 / 356
页数:13
相关论文
共 54 条
[1]   A Suv39h-dependent mechanism for silencing S-phase genes in differentiating but not in cycling cells [J].
Ait-Si-Ali, S ;
Guasconi, V ;
Fritsch, L ;
Yahi, H ;
Sekhri, R ;
Naguibneva, I ;
Robin, P ;
Cabon, F ;
Polesskaya, A ;
Harel-Bellan, A .
EMBO JOURNAL, 2004, 23 (03) :605-615
[2]   Spacial associations of centromeres in the nuclei of hematopoietic cells: evidence for cell-type-specific organizational patterns [J].
Alcobia, I ;
Dilao, R ;
Parreira, L .
BLOOD, 2000, 95 (05) :1608-1615
[3]   Epigenetic aspects of differentiation [J].
Arney, KL ;
Fisher, AG .
JOURNAL OF CELL SCIENCE, 2004, 117 (19) :4355-4363
[4]   Muscle differentiation: more complexity to the network of myogenic regulators [J].
Arnold, HH ;
Winter, B .
CURRENT OPINION IN GENETICS & DEVELOPMENT, 1998, 8 (05) :539-544
[5]   Histone hypomethylation is an indicator of epigenetic plasticity in quiescent lymphocytes [J].
Baxter, J ;
Sauer, S ;
Peters, A ;
John, R ;
Williams, R ;
Caparros, ML ;
Arney, K ;
Otte, A ;
Jenuwein, T ;
Merkenschlager, M ;
Fisher, AG .
EMBO JOURNAL, 2004, 23 (22) :4462-4472
[6]   Spatial distribution patterns of interphase centromeres during retinoic acid-induced differentiation of promyelocytic leukemia cells [J].
Beil, M ;
Dürschmied, D ;
Paschke, S ;
Schreiner, B ;
Nolte, U ;
Bruel, A ;
Irinopoulou, T .
CYTOMETRY, 2002, 47 (04) :217-225
[7]   MANIPULATION OF MYOGENESIS INVITRO - REVERSIBLE INHIBITION BY DMSO [J].
BLAU, HM ;
EPSTEIN, CJ .
CELL, 1979, 17 (01) :95-108
[8]   Dynamic repositioning of genes in the nucleus of lymphocytes preparing for cell division [J].
Brown, KE ;
Baxter, J ;
Graf, D ;
Merkenschlager, M ;
Fisher, AG .
MOLECULAR CELL, 1999, 3 (02) :207-217
[9]   Expression of α- and β-globin genes occurs within different nuclear domains in haemopoietic cells [J].
Brown, KE ;
Amoils, S ;
Horn, JM ;
Buckle, VJ ;
Higgs, DR ;
Merkenschlager, M ;
Fisher, AG .
NATURE CELL BIOLOGY, 2001, 3 (06) :602-606
[10]   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