Imprinting mechanisms

被引:231
作者
Constancia, M [1 ]
Pickard, B [1 ]
Kelsey, G [1 ]
Reik, W [1 ]
机构
[1] Babraham Inst, Programme Dev Genet, Cambridge CB2 4AT, England
关键词
D O I
10.1101/gr.8.9.881
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
A number of recent studies have provided new insights into mechanisms that regulate genomic imprinting in the mammalian genome. Regions of allele-specific differential methylation (DMRs) are present in all imprinted genes examined. Differential methylation is erased in germ cells at an early stage of their development, and germ-line-specific methylation imprints in DMRs are reestablished around the time of birth. After fertilization, differential methylation is retained in core DMRs despite genome-wide demethylation and de novo methylation during preimplantation and early postimplantation stages. Direct repeats near CC-rich DMRs may be involved in the establishment and maintenance of allele-specific methylation patterns. Imprinted genes tend to be clustered; one important component of clustering is enhancer competition, whereby promoters of linked imprinted genes compete for access to enhancers. Regional organization and spreading of the epigenotype during development is also important and depends on DMRs and imprinting centers. The mechanism of cis spreading of DNA methylation is not known, but precedent is provided by the Xist RNA, which results in X chromosome inactivation in cis. Reading of the somatic imprints could be carried out by transcription factors that are sensitive to methylation, or by methyl-cytosine-binding proteins that are involved in transcriptional repression through chromatin remodeling.
引用
收藏
页码:881 / 900
页数:20
相关论文
共 128 条
[1]   Imprinted expression of the murine Angelman syndrome gene, Ube3a, in hippocampal and Purkinje neurons [J].
Albrecht, U ;
Sutcliffe, JS ;
Cattanach, BM ;
Beechey, CV ;
Armstrong, D ;
Eichele, G ;
Beaudet, AL .
NATURE GENETICS, 1997, 17 (01) :75-78
[2]   EPIGENETIC CONTROL OF TRANSGENE EXPRESSION AND IMPRINTING BY GENOTYPE-SPECIFIC MODIFIERS [J].
ALLEN, ND ;
NORRIS, ML ;
SURANI, MA .
CELL, 1990, 61 (05) :853-861
[3]  
[Anonymous], DNA METHYLATION
[4]   GAMETE-SPECIFIC METHYLATION CORRELATES WITH IMPRINTING OF THE MURINE XIST GENE [J].
ARIEL, M ;
ROBINSON, E ;
MCCARREY, JR ;
CEDAR, H .
NATURE GENETICS, 1995, 9 (03) :312-315
[5]   METHYLATION AND IMPRINTING - FROM HOST DEFENSE TO GENE-REGULATION [J].
BARLOW, DP .
SCIENCE, 1993, 260 (5106) :309-310
[6]   Competition - a common motif for the imprinting mechanism? [J].
Barlow, DP .
EMBO JOURNAL, 1997, 16 (23) :6899-6905
[7]   EPIGENETIC MECHANISMS UNDERLYING THE IMPRINTING OF THE MOUSE H19-GENE [J].
BARTOLOMEI, MS ;
WEBBER, AL ;
BRUNKOW, ME ;
TILGHMAN, SM .
GENES & DEVELOPMENT, 1993, 7 (09) :1663-1673
[8]   GENE NUMBER, NOISE-REDUCTION AND BIOLOGICAL COMPLEXITY [J].
BIRD, AP .
TRENDS IN GENETICS, 1995, 11 (03) :94-100
[9]   SP1 ELEMENTS PROTECT A CPG ISLAND FROM DE-NOVO METHYLATION [J].
BRANDEIS, M ;
FRANK, D ;
KESHET, I ;
SIEGFRIED, Z ;
MENDELSOHN, M ;
NEMES, A ;
TEMPER, V ;
RAZIN, A ;
CEDAR, H .
NATURE, 1994, 371 (6496) :435-438
[10]   THE ONTOGENY OF ALLELE-SPECIFIC METHYLATION ASSOCIATED WITH IMPRINTED GENES IN THE MOUSE [J].
BRANDEIS, M ;
KAFRI, T ;
ARIEL, M ;
CHAILLET, JR ;
MCCARREY, J ;
RAZIN, A ;
CEDAR, H .
EMBO JOURNAL, 1993, 12 (09) :3669-3677