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摆脱常规:表观遗传基因控制系统与工程转录因子

Step out of the groove: epigenetic gene control systems and engineered transcription factors.

作者信息

Verschure Pernette J, Visser Astrid E, Rots Marianne G

机构信息

Swammerdam Institute for Life Sciences, BioCentrum Amsterdam, University of Amsterdam, 1098SM Amsterdam, The Netherlands.

出版信息

Adv Genet. 2006;56:163-204. doi: 10.1016/S0065-2660(06)56005-5.

Abstract

At the linear DNA level, gene activity is believed to be driven by binding of transcription factors, which subsequently recruit the RNA polymerase to the gene promoter region. However, it has become clear that transcriptional activation involves large complexes of many different proteins, which not only directly recruit components of the transcription machinery but also affect the DNA folding. Such proteins, including various chromatin-modifying enzymes, alter among other processes nucleosome positioning and histone modifications and are potentially involved in changing the overall structure of the chromatin and/or the position of chromatin in the nucleus. These epigenetic regulatory features are now known to control and regulate gene expression, although the molecular mechanisms still need to be clarified in more detail. Several diseases are characterized by aberrant gene-expression patterns. Many of these diseases are linked to dysregulation of epigenetic gene-regulatory systems. To interfere with aberrant gene expression, a novel approach is emerging as a disease therapy, involving engineered transcription factors. Engineered transcription factors are based on, for example, zinc-finger proteins (ZFP) that bind DNA in a sequence-specific manner. Engineered transcription factors based on ZFP are fused to effector domains that function to normalize disrupted gene-expression levels. Zinc-finger proteins most likely also influence epigenetic regulatory systems, such as the complex set of chemical histone and DNA modifications, which control chromatin compaction and nuclear organization. In this chapter, we review how epigenetic regulation systems acting at various levels of packaging the genome in the cell nucleus add to gene-expression control at the DNA level. Since an increasing number of diseases are described to have a clear link to epigenetic dysregulation, we here highlight 10 examples of such diseases. In the second part, we describe the different effector domains that have been fused to ZFPs and are capable of activating or silencing endogenous genes, and we illustrate how these effector domains influence epigenetic control mechanisms. Finally, we speculate how accumulating knowledge about epigenetics can be exploited to make such zinc-finger-transcription factors (ZF-TF) even more effective.

摘要

在线性DNA水平上,人们认为基因活性是由转录因子的结合驱动的,转录因子随后会将RNA聚合酶招募到基因启动子区域。然而,目前已经清楚的是,转录激活涉及许多不同蛋白质的大型复合物,这些复合物不仅直接招募转录机制的组成部分,还会影响DNA折叠。这类蛋白质,包括各种染色质修饰酶,除了其他过程外,还会改变核小体定位和组蛋白修饰,并可能参与改变染色质的整体结构和/或染色质在细胞核中的位置。现在已知这些表观遗传调控特征可控制和调节基因表达,尽管其分子机制仍需更详细地阐明。几种疾病的特征是异常的基因表达模式。其中许多疾病与表观遗传基因调控系统的失调有关。为了干扰异常的基因表达,一种新的方法正在作为一种疾病治疗方法出现,即工程转录因子。工程转录因子例如基于以序列特异性方式结合DNA的锌指蛋白(ZFP)。基于ZFP的工程转录因子与效应结构域融合,这些效应结构域的功能是使破坏的基因表达水平正常化。锌指蛋白很可能也会影响表观遗传调控系统,例如控制染色质压缩和核组织的化学组蛋白和DNA修饰的复杂集合。在本章中,我们回顾了在细胞核中基因组包装的各个水平上起作用的表观遗传调控系统如何在DNA水平上增加对基因表达的控制。由于越来越多的疾病被描述为与表观遗传失调有明确联系,我们在此重点介绍10个此类疾病的例子。在第二部分中,我们描述了已与ZFP融合并能够激活或沉默内源性基因的不同效应结构域,并说明了这些效应结构域如何影响表观遗传控制机制。最后,我们推测如何利用关于表观遗传学的不断积累的知识使这类锌指转录因子(ZF-TF)更加有效。

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