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CTCF 功能受相邻 DNA 结合因子的调节。

CTCF function is modulated by neighboring DNA binding factors.

机构信息

Institute for Genetics, Justus-Liebig-University Giessen, D35392 Giessen, Germany.

出版信息

Biochem Cell Biol. 2011 Oct;89(5):459-68. doi: 10.1139/o11-033. Epub 2011 Sep 7.

Abstract

The zinc-finger protein CTCF was originally identified in the context of gene silencing and gene repression (Baniahmad et al. 1990; Lobanenkov et al. 1990). CTCF was later shown to be involved in several transcriptional mechanisms such as gene activation (Vostrov et al. 2002) and enhancer blocking (Filippova et al. 2001; Hark et al. 2000; Kanduri et al. 2000; Lutz et al. 2003; Szabó et al. 2000; Tanimoto et al. 2003; Phillips and Corces 2009; Bell et al. 1999; Zlatanova and Caiafa 2009a, 2009b). Insulators block the action of enhancers when positioned between enhancer and promoter. CTCF was found to be required in almost all cases of enhancer blocking tested in vertebrates. This CTCF-mediated enhancer blocking is in many instances conferred by constitutive CTCF action. For some examples however, a modulation of the enhancer blocking activity was documented (Lutz et al. 2003; Weth et al. 2010). One mechanism is achieved by regulation of binding to DNA. It was shown that CTCF is not able to bind to those binding-sites containing methylated CpG sequences. At the imprinting control region (ICR) of the Igf2/H19 locus the binding-site for CTCF on the paternal allele is methylated. This prevents DNA-binding of CTCF, resulting in the loss of enhancer blocking (Bell and Felsenfeld 2000; Chao et al. 2002; Filippova et al. 2001; Hark et al. 2000; Kanduri et al. 2000, 2002; Szabó et al. 2000; Takai et al. 2001). Not only can DNA methylation interfere with CTCF binding to DNA, it was also shown in one report that RNA transcription through the CTCF binding site results in CTCF eviction (Lefevre et al. 2008). In contrast to these cases most of the DNA sites are not differentially bound by CTCF. Even CTCF interaction with its cofactor cohesin does not seem to differ in different cell types (Schmidt et al. 2010). These results indicate that regulation of CTCF activity might be achieved by neighboring factors bound to DNA. In fact, whole genome analyses of CTCF binding sites identified several classes of neighboring sequences (Dickson et al. 2010; Boyle et al. 2010; Essien et al. 2009). Therefore, in this review we will summarize those results for which a combined action of CTCF with factors bound adjacently was found. These neighboring factors include the RNA polymerases I, II and III, another zinc finger factor VEZF1 and the factors YY1, SMAD, TR and Oct4. Each of these seems to influence, modulate or determine the function of CTCF. Thereby, at least some of the pleiotropic effects of CTCF can be explained.

摘要

锌指蛋白 CTCF 最初在基因沉默和基因抑制的背景下被鉴定出来(Baniahmad 等人,1990 年;Lobanenkov 等人,1990 年)。后来发现 CTCF 参与了几种转录机制,如基因激活(Vostrov 等人,2002 年)和增强子阻断(Filippova 等人,2001 年;Hark 等人,2000 年;Kanduri 等人,2000 年;Lutz 等人,2003 年;Szabó 等人,2000 年;Tanimoto 等人,2003 年;Phillips 和 Corces,2009 年;Bell 等人,1999 年;Zlatanova 和 Caiafa,2009a,2009b)。绝缘子在增强子和启动子之间的位置可以阻断增强子的作用。在脊椎动物中进行的几乎所有增强子阻断测试中,都发现 CTCF 是必需的。这种 CTCF 介导的增强子阻断在许多情况下是由 CTCF 的组成型作用赋予的。然而,对于一些例子,已经记录了增强子阻断活性的调节(Lutz 等人,2003 年;Weth 等人,2010 年)。一种机制是通过调节与 DNA 的结合来实现的。已经表明,CTCF 不能与含有甲基化 CpG 序列的那些结合位点结合。在 Igf2/H19 基因座的印记控制区(ICR)上,CTCF 结合的父本等位基因上的结合位点被甲基化。这阻止了 CTCF 的 DNA 结合,导致增强子阻断的丧失(Bell 和 Felsenfeld,2000 年;Chao 等人,2002 年;Filippova 等人,2001 年;Hark 等人,2000 年;Kanduri 等人,2000 年,2002 年;Szabó 等人,2000 年;Takai 等人,2001 年)。不仅 DNA 甲基化可以干扰 CTCF 与 DNA 的结合,而且有一份报告表明,通过 CTCF 结合位点的 RNA 转录会导致 CTCF 驱逐(Lefevre 等人,2008 年)。与这些情况相反,大多数 DNA 位点并没有被 CTCF 不同地结合。即使 CTCF 与其共因子 cohesin 的相互作用在不同的细胞类型中似乎也没有差异(Schmidt 等人,2010 年)。这些结果表明,CTCF 活性的调节可能是通过与 DNA 结合的邻近因子来实现的。事实上,对 CTCF 结合位点的全基因组分析确定了几类邻近序列(Dickson 等人,2010 年;Boyle 等人,2010 年;Essien 等人,2009 年)。因此,在本综述中,我们将总结发现 CTCF 与相邻因子共同作用的结果。这些邻近因子包括 RNA 聚合酶 I、II 和 III、另一个锌指因子 VEZF1 以及因子 YY1、SMAD、TR 和 Oct4。这些似乎都影响、调节或决定了 CTCF 的功能。因此,至少可以解释 CTCF 的一些多效性效应。

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