A cluster of oppositely imprinted transcripts at the Gnas locus in the distal imprinting region of mouse chromosome 2

被引:221
作者
Peters, J [1 ]
Wroe, SF
Wells, CA
Miller, HJ
Bodle, D
Beechey, CV
Williamson, CM
Kelsey, G
机构
[1] MRC, Mammalian Genet Unit, Didcot OX11 0RD, Oxon, England
[2] Babraham Inst, Lab Dev Genet & Imprinting, Cambridge CB2 4AT, England
关键词
D O I
10.1073/pnas.96.7.3830
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
Imprinted genes tend to occur in clusters. We have identified a cluster in distal mouse chromosome (Chr) 2, known from early genetic studies to contain both maternally and paternally imprinted, hut unspecified, genes. Subsequently, one was identified as Gnas, which encodes a G protein alpha subunit, and there is clinical and biochemical evidence that the human homologue GNAS1, mutated in patients with Albright hereditary osteodystrophy, is also imprinted. We have used representational difference analysis, based on parent-of-origin methylation differences, to isolate candidate imprinted genes in distal Chr 2 and found two oppositely imprinted genes, Gnasxl and Nesp. Gnasxl determines a variant G protein alpha subunit associated with the trans-Golgi network and Nesp encodes a secreted protein of neuroendocrine tissues. Gnasxl is maternally methylated in genomic DNA and encodes a paternal specific transcript, whereas Nesp is paternally methylated with maternal-specific expression, Their reciprocal imprinting may offer insight into the distal Chr 2 imprinting phenotypes, Remarkably, Gnasxl, Nesp, and Gnas are all part of the same transcription unit; transcripts for Gnasxl and Nesp are alternatively spliced onto exon 2 of Gnas. This demonstrates an imprinting mechanism in which two oppositely imprinted genes share the same downstream exons.
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页码:3830 / 3835
页数:6
相关论文
共 28 条
  • [1] Competition - a common motif for the imprinting mechanism?
    Barlow, DP
    [J]. EMBO JOURNAL, 1997, 16 (23) : 6899 - 6905
  • [2] Bartolomei M.S., 1992, SEMIN DEV BIOL, V3, P107
  • [3] EPIGENETIC MECHANISMS UNDERLYING THE IMPRINTING OF THE MOUSE H19-GENE
    BARTOLOMEI, MS
    WEBBER, AL
    BRUNKOW, ME
    TILGHMAN, SM
    [J]. GENES & DEVELOPMENT, 1993, 7 (09) : 1663 - 1673
  • [4] BEECHEY CV, 1994, MOUSE GENOME, V92, P353
  • [5] DIFFERENTIAL ACTIVITY OF MATERNALLY AND PATERNALLY DERIVED CHROMOSOME REGIONS IN MICE
    CATTANACH, BM
    KIRK, M
    [J]. NATURE, 1985, 315 (6019) : 496 - 498
  • [6] Imprinting mechanisms
    Constancia, M
    Pickard, B
    Kelsey, G
    Reik, W
    [J]. GENOME RESEARCH, 1998, 8 (09) : 881 - 900
  • [7] IMPRINTING IN ALBRIGHT HEREDITARY OSTEODYSTROPHY
    DAVIES, SJ
    HUGHES, HE
    [J]. JOURNAL OF MEDICAL GENETICS, 1993, 30 (02) : 101 - 103
  • [8] Imprint switching on human chromosome 15 may involve alternative transcripts of the SNRPN gene
    Dittrich, B
    Buiting, K
    Korn, B
    Rickard, S
    Buxton, J
    Saitoh, S
    Nicholls, RD
    Poustka, A
    Winterpacht, A
    Zabel, B
    Horsthemke, B
    [J]. NATURE GENETICS, 1996, 14 (02) : 163 - 170
  • [9] HATADA I, 1993, NUCLEIC ACIDS RES, V21, P5577, DOI 10.1093/nar/21.24.5577
  • [10] IDENTIFICATION OF AN IMPRINTED U2AF BINDING-PROTEIN RELATED SEQUENCE ON MOUSE CHROMOSOME-11 USING THE RLGS METHOD
    HAYASHIZAKI, Y
    SHIBATA, H
    HIROTSUNE, S
    SUGINO, H
    OKAZAKI, Y
    SASAKI, N
    HIROSE, K
    IMOTO, H
    OKUIZUMI, H
    MURAMATSU, M
    KOMATSUBARA, H
    SHIROISHI, T
    MORIWAKI, K
    KATSUKI, M
    HATANO, N
    SASAKI, H
    UEDA, T
    MISE, N
    TAKAGI, N
    PLASS, C
    CHAPMAN, VM
    [J]. NATURE GENETICS, 1994, 6 (01) : 33 - 40