Loss of silent-chromatin looping and impaired imprinting of DLX5 in Rett syndrome

被引:423
作者
Horike, S [1 ]
Cai, ST [1 ]
Miyano, M [1 ]
Cheng, JF [1 ]
Kohwi-Shigematsu, T [1 ]
机构
[1] Univ Calif Berkeley, Lawrence Berkeley Lab, Div Life Sci, Berkeley, CA 94720 USA
基金
美国国家卫生研究院;
关键词
D O I
10.1038/ng1491
中图分类号
Q3 [遗传学];
学科分类号
071007 ; 090102 ;
摘要
Mutations in MECP2 are associated with Rett syndrome, an X-linked neurodevelopmental disorder. To identify genes targeted by Mecp2, we sequenced 100 in vivo Mecp2-binding sites in mouse brain. Several sequences mapped to an imprinted gene cluster on chromosome 6, including Dlx5 and Dlx6, whose transcription was roughly two times greater in brains of Mecp2-null mice compared with those of wild-type mice. The maternally expressed gene DLX5 showed a loss of imprinting in lymphoblastoid cells from individuals with Rett syndrome. Because Dlx5 regulates production of enzymes that synthesize gamma-aminobutyric acid (GABA), loss of imprinting of Dlx5 may alter GABAergic neuron activity in individuals with Rett syndrome. In mouse brain, Dlx5 imprinting was relaxed, yet Mecp2-mediated silent-chromatin structure existed at the Dlx5-Dlx6 locus in brains of wild-type, but not Mecp2-null, mice. Mecp2 targeted histone deacetylase 1 to a sharply defined, similar to1-kb region at the Dlx5-Dlx6 locus and promoted repressive histone methylation at Lys9 at this site. Chromatin immunoprecipitation-combined loop assays showed that Mecp2 mediated the silent chromatin-derived 11-kb chromatin loop at the Dlx5-Dlx6 locus. This loop was absent in chromatin of brains of Mecp2-null mice, and Dlx5-Dlx6 interacted with far distant sequences, forming distinct active chromatin-associated loops. These results show that formation of a silent-chromatin loop is a new mechanism underlying gene regulation by Mecp2.
引用
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页码:31 / 40
页数:10
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  • [21] Kohwi-Shigematsu T, 1998, METHOD CELL BIOL, V53, P323
  • [22] DNA methylation and Rett syndrome
    Kriaucionis, S
    Bird, A
    [J]. HUMAN MOLECULAR GENETICS, 2003, 12 : R221 - R227
  • [23] Lalande M, 1999, Adv Neurol, V79, P421
  • [24] Parental imprinting and human disease
    Lalande, M
    [J]. ANNUAL REVIEW OF GENETICS, 1996, 30 : 173 - 195
  • [25] Loss of imprinting of a paternally expressed transcript, with antisense orientation to KVLQT1, occurs frequently in Beckwith-Wiedemann syndrome and is independent of insulin-like growth factor II imprinting
    Lee, MP
    DeBaun, MR
    Mitsuya, K
    Galonek, HL
    Brandenburg, S
    Oshimura, M
    Feinberg, AP
    [J]. PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1999, 96 (09) : 5203 - 5208
  • [26] Imprinting on distal chromosome 7 in the placenta involves repressive histone methylation independent of DNA methylation
    Lewis, A
    Mitsuya, K
    Umlauf, D
    Smith, P
    Dean, W
    Walter, J
    Higgins, M
    Feil, R
    Reik, W
    [J]. NATURE GENETICS, 2004, 36 (12) : 1291 - 1295
  • [27] PURIFICATION, SEQUENCE, AND CELLULAR-LOCALIZATION OF A NOVEL CHROMOSOMAL PROTEIN THAT BINDS TO METHYLATED DNA
    LEWIS, JD
    MEEHAN, RR
    HENZEL, WJ
    MAURERFOGY, I
    JEPPESEN, P
    KLEIN, F
    BIRD, A
    [J]. CELL, 1992, 69 (06) : 905 - 914
  • [28] Chromatin modification and epigenetic reprogramming in mammalian development
    Li, E
    [J]. NATURE REVIEWS GENETICS, 2002, 3 (09) : 662 - 673
  • [29] Genome imprinting regulated by the mouse Polycomb group protein Eed
    Mager, J
    Montgomery, ND
    de Villena, FPM
    Magnuson, T
    [J]. NATURE GENETICS, 2003, 33 (04) : 502 - 507
  • [30] DNA methylation-related chromatin remodeling in activity-dependent Bdnf gene regulation
    Martinowich, K
    Hattori, D
    Wu, H
    Fouse, S
    He, F
    Hu, Y
    Fan, GP
    Sun, YE
    [J]. SCIENCE, 2003, 302 (5646) : 890 - 893