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本文引用的文献

1
Conserved methylation imprints in the human and mouse GRB10 genes with divergent allelic expression suggests differential reading of the same mark.人类和小鼠GRB10基因中保守的甲基化印记具有不同的等位基因表达,这表明对相同标记的差异性解读。
Hum Mol Genet. 2003 May 1;12(9):1005-19. doi: 10.1093/hmg/ddg110.
2
Methylation-sensitive binding of transcription factor YY1 to an insulator sequence within the paternally expressed imprinted gene, Peg3.转录因子YY1与父源表达的印记基因Peg3内一个绝缘子序列的甲基化敏感结合。
Hum Mol Genet. 2003 Feb 1;12(3):233-45. doi: 10.1093/hmg/ddg028.
3
Domain regulation of imprinting cluster in Kip2/Lit1 subdomain on mouse chromosome 7F4/F5: large-scale DNA methylation analysis reveals that DMR-Lit1 is a putative imprinting control region.小鼠7F4/F5染色体上Kip2/Lit1亚结构域中印迹簇的结构域调控:大规模DNA甲基化分析表明DMR-Lit1是一个假定的印迹控制区域。
Genome Res. 2002 Dec;12(12):1860-70. doi: 10.1101/gr.110702.
4
Allele-specific histone lysine methylation marks regulatory regions at imprinted mouse genes.等位基因特异性组蛋白赖氨酸甲基化标记印记小鼠基因的调控区域。
EMBO J. 2002 Dec 2;21(23):6560-70. doi: 10.1093/emboj/cdf655.
5
The imprinting mechanism of the Prader-Willi/Angelman regional control center.普拉德-威利/安吉尔曼区域控制中心的印记机制。
EMBO J. 2002 Nov 1;21(21):5807-14. doi: 10.1093/emboj/cdf570.
6
Regional loss of imprinting and growth deficiency in mice with a targeted deletion of KvDMR1.KvDMR1靶向缺失小鼠的印记区域丢失和生长缺陷
Nat Genet. 2002 Nov;32(3):426-31. doi: 10.1038/ng988. Epub 2002 Sep 9.
7
The gsalpha gene: predominant maternal origin of transcription in human thyroid gland and gonads.Gsα基因:在人类甲状腺和性腺中转录主要源自母体。
J Clin Endocrinol Metab. 2002 Oct;87(10):4736-40. doi: 10.1210/jc.2002-020183.
8
Paternal imprinting of Galpha(s) in the human thyroid as the basis of TSH resistance in pseudohypoparathyroidism type 1a.人类甲状腺中Gα(s)的父系印记作为1a型假性甲状旁腺功能减退症中促甲状腺激素抵抗的基础。
Biochem Biophys Res Commun. 2002 Aug 9;296(1):67-72. doi: 10.1016/s0006-291x(02)00833-1.
9
Physiological functions of imprinted genes.印记基因的生理功能。
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10
The mouse Zac1 locus: basis for imprinting and comparison with human ZAC.小鼠Zac1基因座:印记的基础以及与人类ZAC的比较
Gene. 2002 Jun 12;292(1-2):101-12. doi: 10.1016/s0378-1119(02)00666-2.

小鼠Gnas印记基因座Nesp - Gnasxl结构域的表观遗传特性及印记标记的鉴定

Epigenetic properties and identification of an imprint mark in the Nesp-Gnasxl domain of the mouse Gnas imprinted locus.

作者信息

Coombes Candice, Arnaud Philippe, Gordon Emma, Dean Wendy, Coar Elizabeth A, Williamson Christine M, Feil Robert, Peters Jo, Kelsey Gavin

机构信息

Developmental Genetics Programme, The Babraham Institute, Cambridge CB2 4AT, United Kingdom.

出版信息

Mol Cell Biol. 2003 Aug;23(16):5475-88. doi: 10.1128/MCB.23.16.5475-5488.2003.

DOI:10.1128/MCB.23.16.5475-5488.2003
PMID:12897124
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC166348/
Abstract

The Gnas locus in the mouse is imprinted with a complex arrangement of alternative transcripts defined by promoters with different patterns of monoallelic expression. The Gnas transcript is subject to tissue-specific imprinted expression, Nesp is expressed only from the maternal allele, and Gnasxl is expressed only from the paternal allele. The mechanisms controlling these expression patterns are not known. To identify potential imprinting regulatory regions, particularly for the reciprocally expressed Nesp and Gnasxl promoters, we examined epigenetic properties of the locus in gametes, embryonic stem cells, and fetal and adult tissues. The Nesp and Gnasxl promoter regions are contained in extensive CpG islands with methylation of the paternal allele at Nesp and the maternal allele at Gnasxl. Parental allele-specific DNase I-hypersensitive sites were found at these regions, which correlate with hypomethylation rather than actual expression status. A germ line methylation mark was identified covering the promoters for Gnasxl and the antisense transcript Nespas. Prominent DNase I-hypersensitive sites present on paternal alleles in embryonic stem cells are contained within this mark. This is the second gametic mark identified at Gnas and suggests that the Nesp and Gnasxl promoters are under separate control from the Gnas promoter. We propose models to account for the regulation of imprinting at the locus.

摘要

小鼠中的Gnas基因座具有复杂的可变转录本排列方式,这些转录本由具有不同单等位基因表达模式的启动子所定义。Gnas转录本呈现组织特异性的印记表达,Nesp仅从母本等位基因表达,而Gnasxl仅从父本等位基因表达。控制这些表达模式的机制尚不清楚。为了鉴定潜在的印记调控区域,特别是针对相互表达的Nesp和Gnasxl启动子,我们研究了该基因座在配子、胚胎干细胞以及胎儿和成年组织中的表观遗传特性。Nesp和Gnasxl启动子区域包含在广泛的CpG岛中,其中父本等位基因在Nesp处甲基化,母本等位基因在Gnasxl处甲基化。在这些区域发现了亲本等位基因特异性的DNase I超敏位点,这些位点与低甲基化相关,而非实际的表达状态。鉴定出一种生殖系甲基化标记覆盖了Gnasxl和反义转录本Nespas的启动子。胚胎干细胞中父本等位基因上存在的显著DNase I超敏位点包含在该标记内。这是在Gnas处鉴定出的第二个配子标记,表明Nesp和Gnasxl启动子受到与Gnas启动子不同的调控。我们提出了一些模型来解释该基因座印记的调控机制。