Genome-wide scanning of HoxB1-associated loci in mouse ES cells using an open-ended Chromosome Conformation Capture methodology

被引:107
作者
Wurtele, Hugo
Chartrand, Pierre
机构
[1] Univ Montreal, Dept Pathol & Cellular Biol, Montreal, PQ H3C 3J7, Canada
[2] Univ Montreal, Program Mol Biol, Montreal, PQ H3C 3J7, Canada
[3] Univ Montreal, Inst Res Immunol & Canc, Montreal, PQ H3C 3J7, Canada
基金
加拿大健康研究院;
关键词
chromatin folding; chromosomal territories; Chromosome Conformation Capture; HoxB1; megabase loop model; nuclear organization;
D O I
10.1007/s10577-006-1075-0
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
Spatial proximity between genomic loci can play important roles in their function and regulation. We have developed an open-ended method based on Chromosome Conformation Capture technology allowing us to perform genome-wide scanning of the loci that form the spatial environment of a given locus at a given time. As a proof of principle we present the use of this methodology to investigate the dynamics of the spatial environment of the HoxB1 gene before and after the induction of its expression in mouse embryonic stem cells. Our results indicate that the HoxB1 locus' immediate spatial environment can be divided roughly into three parts: a first part is represented by a domain of immediate proximity on each side of the HoxB1 locus covering approximately 110 kb, a second part extends to a domain of 800 kb and a third part consists of distal intra-chromosomal and inter-chromosomal interactions. Consistent with FISH studies showing the decondensation and repositioning of HoxB1 outside of its chromosomal territory during its expression, the proportion of inter-chromosomal interactions between HoxB1 and the rest of the genome increases after its induction, while interactions with distal intra-chromosomal loci become less frequent. These results indicate that this technique can be used to determine the dynamics of loci interactions on a genome-wide scale.
引用
收藏
页码:477 / 495
页数:19
相关论文
共 36 条
[1]  
Bel-Vialar S, 2002, DEVELOPMENT, V129, P5103
[2]   Long-range chromatin regulatory interactions in vivo [J].
Carter, D ;
Chakalova, L ;
Osborne, CS ;
Dai, YF ;
Fraser, P .
NATURE GENETICS, 2002, 32 (04) :623-626
[3]   Nuclear re-organisation of the Hoxb complex during mouse embryonic development [J].
Chambeyron, S ;
Da Silva, NR ;
Lawson, KA ;
Bickmore, WA .
DEVELOPMENT, 2005, 132 (09) :2215-2223
[4]   Chromatin decondensation and nuclear reorganization of the HoxB locus upon induction of transcription [J].
Chambeyron, S ;
Bickmore, WA .
GENES & DEVELOPMENT, 2004, 18 (10) :1119-1130
[5]   Chromatin motion is constrained by association with nuclear compartments in human cells [J].
Chubb, JR ;
Boyle, S ;
Perry, P ;
Bickmore, WA .
CURRENT BIOLOGY, 2002, 12 (06) :439-445
[6]   Chromosomes are predominantly located randomly with respect to each other in interphase human cells [J].
Cornforth, MN ;
Greulich-Bode, KM ;
Loucas, BD ;
Arsuaga, J ;
Vázquez, M ;
Sachs, RK ;
Brückner, M ;
Molls, M ;
Hahnfeldt, P ;
Hlatky, L ;
Brenner, DJ .
JOURNAL OF CELL BIOLOGY, 2002, 159 (02) :237-244
[7]   Chromosome territories, nuclear architecture and gene regulation in mammalian cells [J].
Cremer, T ;
Cremer, C .
NATURE REVIEWS GENETICS, 2001, 2 (04) :292-301
[8]   Spatial organization of gene expression: the active chromatin hub [J].
de Laat, W ;
Grosveld, F .
CHROMOSOME RESEARCH, 2003, 11 (05) :447-459
[9]   Capturing chromosome conformation [J].
Dekker, J ;
Rippe, K ;
Dekker, M ;
Kleckner, N .
SCIENCE, 2002, 295 (5558) :1306-1311
[10]   Separate and variably shaped chromosome arm domains are disclosed by chromosome arm painting in human cell nuclei [J].
Dietzel, S ;
Jauch, A ;
Kienle, D ;
Qu, GQ ;
Holtgreve-Grez, H ;
Eils, R ;
Munkel, C ;
Bittner, M ;
Meltzer, PS ;
Trent, JM ;
Cremer, T .
CHROMOSOME RESEARCH, 1998, 6 (01) :25-33