Loss of Atrx Affects Trophoblast Development and the Pattern of X-Inactivation in Extraembryonic Tissues
pmid: 16628246
pmc: PMC1440874
Loss of Atrx Affects Trophoblast Development and the Pattern of X-Inactivation in Extraembryonic Tissues
ATRX is an X-encoded member of the SNF2 family of ATPase/helicase proteins thought to regulate gene expression by modifying chromatin at target loci. Mutations in ATRX provided the first example of a human genetic disease associated with defects in such proteins. To better understand the role of ATRX in development and the associated abnormalities in the ATR-X (alpha thalassemia mental retardation, X-linked) syndrome, we conditionally inactivated the homolog in mice, Atrx, at the 8- to 16-cell stage of development. The protein, Atrx, was ubiquitously expressed, and male embryos null for Atrx implanted and gastrulated normally but did not survive beyond 9.5 days postcoitus due to a defect in formation of the extraembryonic trophoblast, one of the first terminally differentiated lineages in the developing embryo. Carrier female mice that inherit a maternal null allele should be affected, since the paternal X chromosome is normally inactivated in extraembryonic tissues. Surprisingly, however, some carrier females established a normal placenta and appeared to escape the usual pattern of imprinted X-inactivation in these tissues. Together these findings demonstrate an unexpected, specific, and essential role for Atrx in the development of the murine trophoblast and present an example of escape from imprinted X chromosome inactivation.
- Medical Research Council United Kingdom
- MRC Mammalian Genetics Unit United Kingdom
- University of Adelaide Australia
- Australian National University Australia
- MRC Weatherall Institute of Molecular Medicine United Kingdom
embryonal tissue, 570, X-linked Nuclear Protein, Keywords: adenosine triphosphatase, extrachromosomal inheritance, QH426-470, Mice, male, Atrx protein, nuclear protein, X Chromosome Inactivation, null, Dosage Compensation, Genetic, mental deficiency, Genetics, Animals, Humans, Cell Lineage, mouse, Alleles, nonhuman, Models, Genetic, disease course, article, DNA Helicases, Nuclear Proteins, embryo development, DNA Methylation, heterozygote, Trophoblasts, Mice, Inbred C57BL, helicase, female, Female, alpha thalassemia, Research Article
embryonal tissue, 570, X-linked Nuclear Protein, Keywords: adenosine triphosphatase, extrachromosomal inheritance, QH426-470, Mice, male, Atrx protein, nuclear protein, X Chromosome Inactivation, null, Dosage Compensation, Genetic, mental deficiency, Genetics, Animals, Humans, Cell Lineage, mouse, Alleles, nonhuman, Models, Genetic, disease course, article, DNA Helicases, Nuclear Proteins, embryo development, DNA Methylation, heterozygote, Trophoblasts, Mice, Inbred C57BL, helicase, female, Female, alpha thalassemia, Research Article
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