Regulation of X-chromosome inactivation in development in mice and humans

被引:195
作者
Goto, T [1 ]
Monk, M [1 ]
机构
[1] Inst Child Hlth, Mol Embryol Unit, London WC1N 1EH, England
关键词
D O I
10.1128/MMBR.62.2.362-378.1998
中图分类号
Q93 [微生物学];
学科分类号
071005 ; 100705 ;
摘要
Dosage compensation for X-linked genes in mammals is accomplished by inactivating one of the two X chromosomes in females. X-chromosome inactivation (XCI) occurs during development, coupled with cell differentiation. In somatic cells, XCI is random, whereas in extraembryonic tissues, XCI is imprinted in that the paternally inherited X chromosome is preferentially inactivated Inactivation is initiated from an X-linked locus, the X-inactivation center (Xic), and inactivity spreads along the chromosome toward both ends. XCI is established by complex mechanisms, including DNA methylation, heterochromatinization, and late replication. Once established, inactivity is stably maintained in subsequent cell generations. The function of an X-linked regulatory gene, Xist, is critically involved in XCI. The Xist gene maps to the Xic, it is transcribed only from the inactive X chromosome, and the Xist RNA associates with the inactive X chromosome in the nucleus. Investigations with Xist-containing transgenes and with deletions of the Xist gene have shown that the Xist gene is required in cis for XCI. Regulation of XCI is therefore accomplished through regulation of Xist. Transcription of the Xist gene is itself regulated by DNA methylation. Hence, the differential methylation of the Xist gene observed in sperm and eggs and its recognition by protein binding constitute the most likely mechanism regulating imprinted preferential expression of the paternal allele in preimplantation embryos and imprinted paternal XCI in extraembryonic tissues. This article reviews the mechanisms underlying XCI and recent advances elucidating the functions of the Xist gene in mice and humans.
引用
收藏
页码:362 / +
页数:18
相关论文
共 174 条
[91]   A TARGETING SEQUENCE DIRECTS DNA METHYLTRANSFERASE TO SITES OF DNA-REPLICATION IN MAMMALIAN NUCLEI [J].
LEONHARDT, H ;
PAGE, AW ;
WEIER, HU ;
BESTOR, TH .
CELL, 1992, 71 (05) :865-873
[92]   DNA METHYLATION AND CHROMATIN STRUCTURE [J].
LEWIS, J ;
BIRD, A .
FEBS LETTERS, 1991, 285 (02) :155-159
[93]   PURIFICATION, SEQUENCE, AND CELLULAR-LOCALIZATION OF A NOVEL CHROMOSOMAL PROTEIN THAT BINDS TO METHYLATED DNA [J].
LEWIS, JD ;
MEEHAN, RR ;
HENZEL, WJ ;
MAURERFOGY, I ;
JEPPESEN, P ;
KLEIN, F ;
BIRD, A .
CELL, 1992, 69 (06) :905-914
[94]   TARGETED MUTATION OF THE DNA METHYLTRANSFERASE GENE RESULTS IN EMBRYONIC LETHALITY [J].
LI, E ;
BESTOR, TH ;
JAENISCH, R .
CELL, 1992, 69 (06) :915-926
[95]   DNA METHYLATION, GENOMIC IMPRINTING, AND MAMMALIAN DEVELOPMENT [J].
LI, E ;
BEARD, C ;
FORSTER, AC ;
BESTOR, TH ;
JAENISCH, R .
COLD SPRING HARBOR SYMPOSIA ON QUANTITATIVE BIOLOGY, 1993, 58 :297-305
[96]   ROLE FOR DNA METHYLATION IN GENOMIC IMPRINTING [J].
LI, E ;
BEARD, C ;
JAENISCH, R .
NATURE, 1993, 366 (6453) :362-365
[97]   METHYLATION OF THE HPRT GENE ON THE INACTIVE-X OCCURS AFTER CHROMOSOME INACTIVATION [J].
LOCK, LF ;
TAKAGI, N ;
MARTIN, GR .
CELL, 1987, 48 (01) :39-46
[98]   GENE DOSAGE COMPENSATION IN DROSOPHILA-MELANOGASTER [J].
LUCCHESI, JC ;
MANNING, JE .
ADVANCES IN GENETICS INCORPORATING MOLECULAR GENETIC MEDICINE, 1987, 24 :371-429
[99]   GENE ACTION IN X-CHROMOSOME OF MOUSE (MUS MUSCULUS L) [J].
LYON, MF .
NATURE, 1961, 190 (477) :372-&
[100]   INVIABILITY OF PARTHENOGENONES IS DETERMINED BY PRONUCLEI, NOT EGG CYTOPLASM [J].
MANN, JR ;
LOVELLBADGE, RH .
NATURE, 1984, 310 (5972) :66-67