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Ainscough, J. F., Koide, T., Tada, M., Barton, S. and Surani, M. A (1997). Imprinting of Igf2 and H19 from a 130 kb YAC transgene. Development 124, 3621-32.[Abstract]

Allen, N. D., Barton, S. C., Hilton, K., Norris, M. L. and Surani, M. A (1994). A functional analysis of imprinting in parthenogenetic stem cells. Development 120, 1473-1482.[Abstract]

Barlow, D. P (1997). Competition-a common motif for the imprinting mechanism?. EMBO J 16, 6899-6905.[Medline]

Brandeis, M.,Kafri, T., Ariel, M., Chaillet, J. R., McCarrey, J., Razin, A and Cedar, H (1993). The ontogeny of allele-specific methylation associated with imprinted genes in the mouse. EMBO J 12, 3669-3677.[Medline]

Dittrich, B., Buiting, K., Korn, B., Rickard, S., Buxton, J., Saitoh, S., Nicholls, R. D., Poustka, A., Winterpacht, A., Zabel, B. and Horsthemke, B (1996). Imprint switching on human chromosome 15 may involve alternative transcripts of the SNRPN gene. Nat. Genet 14, 163-170.[Medline]

Eicher, E. M. and Washburn, L. L (1978). Assignment of genes to regions of mouse chromosomes. Proc. Natn. Acad. Sci. USA 75, 946-950.[Abstract/Free Full Text]

Friedrich, G. and Soriano, P (1991). Promoter traps in embryonic stem cells: a genetic screen to identify and mutate developmental genes in mice. Genes Dev 5, 1513-1523.[Abstract/Free Full Text]

Ferguson-Smith, A. C., Sasaki, H., Cattanach, B. M. and Surani, M. A (1993). Parental-origin-specific modification of the mouse H19 gene. Nature 362, 751-755.[Medline]

Fundele, R. H. and Surani, M. A (1994). Experimental embryological analysis of genetic imprinting in mouse development. Dev. Genet 15, 515-522.[Medline]

Guillemot, F., Nagy, A., Auerbach, A., Rossant, J. and Joyner, A. L (1994). Essential role of Mash-2 in extraembryonic development. Nature 371, 333-336.[Medline]

Guillemot, F.,Caspary, T., Tilghman, S. M., Copeland, N. G., Gilbert, D.J., Jenkins, N. A., Anderson, D. J., Joyner, A. L., Rossant, J. and Nagy, A (1995). Genomic imprinting of Mash2, a mouse gene required for trophoblast development. Nat. Genet 9, 235-242.[Medline]

Hatada, I. and Mukai, T (1995). Genomic imprinting of p57(KIP2), cyclin-dependent kinase inhibitor, in mouse. Nat. Genet 11, 204-206.[Medline]

Jaenisch, R (1997). DNA methylation and imprinting: why bother?. Trends Genet 13, 323-329.[Medline]

Kafri, T., Ariel, M., Brandeis, M., Shemer, R., Urven, L., McCarrey, J., Cedar, H. and Razin, A (1992). Developmental pattern of gene-specific DNA methylation in the mouse embryo and germ line. Genes Dev 6, 705-714.[Abstract/Free Full Text]

Kafri, T., Gao, X. and Razin, A (1993). Mechanistic aspects of genome-wide demethylation in the preimplantation mouse embryo. Proc. Natl. Acad. Sci. USA 90, 10558-10562.[Abstract/Free Full Text]

Kaneko-Ishino, T., Kuroiwa, Y., Miyoshi, N., Kohda, T., Suzuki, R., Yokoyama, M., Viville, S., Barton, S. C., Ishino, F. and Surani, M. A. ( (1995). . Peg1/Mest imprinted gene on chromosome 6 identified by cDNA subtraction hybridization. Nat. Genet 11, 52-59.[Medline]

Kato, Y. and Tsunoda, Y (1995). Germ cell nuclei of male fetal mice can support development of chimeras to midgestation following serial transplantation. Development 121, 779-783.[Abstract]

Kono, T., Obata, Y., Yoshimzu, T., Nakahara, T. and Carroll, J (1996). Epigenetic modifications during oocyte growth correlates with extended parthenogenetic development in the mouse. Nat. Genet 13, 91-94.[Medline]

Kuroiwa, Y., Kaneko-Ishino, T., Kagitani, F., Kohda, T., Li, L.-L., Tada, M. and Surani, M. A (1996). . Peg3 imprinted gene on proximal chromosome 7 encodes for a zinc finger protein. Nat. Genet 12, 186-190.[Medline]

Labosky, P. A., Barlow, D. P. and Hogan, B. L. M (1994). Mouse embryonic germ (EG) cell lines: transmission through the germline and differences in the methylation imprint of insulin-like growth factor 2 receptor (Igf2r) gene compared with embryonic stem (ES) cell lines. Development 120, 3197-3204.[Abstract]

Li, E., Beard, C. and Jaenisch, R (1993). Role for DNA methylation in genomic imprinting. Nature 366, 362-365.[Medline]

Mann, J. R., Gadi, I., Harbison, M. L., Abbondanzo, S. J. and Stewart, C. L (1990). Androgenetic mouse embryonic stem cells are pluripotent and cause skeletal defects in chimeras: implications for genetic imprinting. Cell 62, 251-260.[Medline]

Matsui, Y., Zsebo, K. and Hogan, B. L (1992). Derivation of pluripotential embryonic stem cells from murine primordial germ cells in culture. Cell 70, 841-847.[Medline]

Mertineit, C., Yoder, J. A., Taketo, T., Laird, D. W., Trasler, J. M. and Bestor, T. H., (1998). Sex-specific exons control DNA methyltransferase in mammalian germ cells. Development 125, 889-897.[Abstract]

Monk, M., Boubelik, M. and Lehnert, S (1987). Temporal and regional changes in DNA methylation in the embryonic, extraembryonic and germ cell lineages during mouse embryo development. Development 99, 371-382.[Abstract]

Monk, M. and McLaren, A (1981). X-chromosome activity in foetal germ cells of the mouse. J. Embryol. Exp. Morphol 63, 75-84.[Medline]

Moore, T. and Haig, D (1991). Genomic imprinting in mammalian development: a parental tug-of-war. Trends Genet 7, 45-89.[Medline]

Nagy, A., Gocza, E., Diaz, E. M., Prideaux, V. R., Ivanyi, E., Markkula, M. and Rossant, J (1990). Embryonic stem cells alone are able to support fetal development in the mouse. Development 110, 815-821.[Abstract/Free Full Text]

Obata, Y., Kaneko-Ishino, T., Koide, T., Takai, Y., Ueda, T., Domeki, I., Shiroishi, T., Ishino, F. and Kono, T (1998). Disruption of primary imprinting during oocyte growth leads to the modified expression of imprinted genes during embryogenesis. Development 125, 1553-1560.[Abstract]

Olek, A. and Walter, J (1997). The pre-implantation ontogeny of the H19 methylation imprint. Nat. Genet 17, 275-276.[Medline]

Oz\215elik, T., Leff, S., Robinson, W., Donlon, T., Lalande, M., Sanjines, E., Schinzel, A. and Francke, U (1992). Small nuclear ribonucleoprotein polypeptide N (SNRPN), an expressed gene in the Prader-Willi syndrome critical region. Nat. Genet 2, 265-269.[Medline]

Paulsen, M., Davies, K. R., Bowden, L. M., Villar, A. J., Franck, O., Fuermann, M., Dean, W. L., Moore, T. F., Rodrigues, N., Davies, K. E., Hu, R. J., Feinberg, A. P., Maher, E. R., Reik, W. and Walter, J (1998). Syntenic organisation of the mouse distal chromosome 7 imprinting cluster and the Beckwith-Wiedemann syndrome region in chromosome 11p15.5. Human Mol. Genet 7, 1149-1159.[Abstract/Free Full Text]

Reik, W. and Walter, J (1998). Imprinting mechanisms in mammals. Curr. Opin. Genet. Dev 8, 154-164.[Medline]

Resnick, J. L., Bixler, L. S., Cheng, L. and Donovan, P (1992). Long-term proliferation of mouse primordial germ cells in culture. Nature 359, 550-551.[Medline]

Shemer, R., Birger, Y., Riggs, A. D. and Razin, A (1997). Structure of the imprinted mouse Snrpn gene and establishment of its parental-specific methylation pattern. Proc. Natl. Acad. Sci. USA 94, 10267-10272.[Abstract/Free Full Text]

Solter, D (1988). Differential imprinting and expression of maternal and paternal genomes. Annu. Rev. Genet 22, 127-146.[Medline]

Solter, D. and Knowles, B. B (1975). Immunosurgery of mouse blastocyst. Proc. Natl. Acad. Sci. USA 72, 5099-50102.[Abstract/Free Full Text]

Stewart, C. L., Gadi, I. and Bhatt, H (1994). Stem cell from primordial germ cells can reenter the germ line. Dev. Biol 161, 626-628.[Medline]

St\232ger, R., Kubicka, P., Liu, C. G., Kafri, T., Razin, A., Cedar, H., Barlow, D. P (1993). Maternal-specific methylation of the imprinted mouse Igf2r locus identifies the expressed locus as carrying the imprinting signal. Cell 73, 61-71.[Medline]

Surani, M. A., Barton, S. C. and Norris, M. L (1986). Nuclear transplantation in the mouse: heritable differences between parental genomes after activation of the embryonic genome. Cell 45, 127-36.[Medline]

Surani, M. A (1998). Imprinting and the initiation of gene silencing in the germ line. Cell 93, 309-312.[Medline]

Szabo, P. E. and Mann, J. R (1995). Biallelic expression of imprinted genes in the mouse germ line: Implications for erasure, establishment, and mechanisms of genomic imprinting. Genes Dev 9, 1857-1868.[Abstract/Free Full Text]

Tada, M., Tada, T., Lefebvre, L., Barton, S. C. and Surani, M. A (1997). Embryonic germ cells induce epigenetic reprogramming of somatic nucleus in hybrid cells. EMBO J 16, 6510-6520.[Medline]

Tanaka, M., Gertsenstein, M., Rossant, J. and Nagy, A (1997). Mash2 acts cell autonomously in mouse spongiotrophoblast development. Dev. Biol 190, 55-65.[Medline]

Tremblay, K. D., Saam, J. R., Ingram, R. S., Tilghman, S. M. and Bartolomei, M. S (1995). A paternal-specific methylation imprint marks the alleles of the mouse H19 gene. Nat. Genet 9, 407-413.[Medline]

Tsunoda, Y., Tokunaga, T., Imai, H. and Uchida, T (1989). Nuclear transplantation of male primordial germ cells in the mouse. Development 107, 407-411.[Abstract]

Tucker, K. L., Beard, C., Dausmann, J., Jackson-Grusby, L., Laird, P. W., Lei, H., Li, E. and Jaenisch, R (1996). Germ-line passage is required for establishment of methylation and expression patterns of imprinted but not of nonimprinted genes. Genes Dev 10, 1008-1020.[Abstract/Free Full Text]

Wakayama, T., Perry, A. F. C., Zuccotti, M., Johnson, K. R. and Yanagimachi, R (1998). Full-term development of mice from enucleated oocytes injected with cumulus cell nuclei. Nature 394, 369-374.[Medline]

Wilmut, I., Schnieke, A. E., McWhir, J., Kind, A. J. and Campbell, K. H (1997). Viable offspring derived from fetal and adult mammalian cells. Nature 385, 810-813.[Medline]

Wutz, A., Smrzka, O. W., Schweifer, N., Schellander, K., Wagner, E. F. and Barlow, D. P (1997). Imprinted expression of the Igf2r gene depends on an intronic CpG island. Nature 389, 745-749.[Medline]

Wilkinson, D. G. and Nieto, M. A (1993). Detection of messenger RNA by in situ hybridization to tissue sections and whole mounts. Methods Enzymol 225, 361-373.[Medline]




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