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Harnessing CRISPR for Targeted and Inducible Epigenomic Reprogramming

Harnessing CRISPR for Targeted and Inducible Epigenomic Reprogramming
利用 CRISPR 进行靶向和诱导的表观基因组重编程
批准号:
8735919
负责人:
WENDELL A LIM
金额:
$51.21万
依托单位国家:
美国
项目类别:
财政年份:
2013
资助国家:
美国
项目状态:
已结题
起止时间:
2013-09-30 至 2018-05-31

项目摘要

项目成果

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中文摘要
翻译
描述(由申请人提供):表观遗传修饰,如DNA甲基化和组蛋白乙酰化/甲基化,在决定细胞的功能和行为方面起着关键作用 一种有机体。然而,解开表观基因组工作原理的努力,受到我们操纵染色质修饰能力的严重技术限制。现有的方法通常涉及药理学试剂或基因修饰,并往往具有多效性。这项提议旨在开发一套通用的工具,用于操纵表观遗传修饰,能够将特定的染色质修饰物定向到任何所需的基因座,并精确控制这些修饰的时间和幅度。拟议的平台是建立在我们最近展示的CRISPR(集群规则间隔短回文重复)干扰系统的基础上的--这是一种源自CRISPR细菌免疫系统的高效RNA引导的基因组靶向系统。该方法只需要一种蛋白质dCas9,它是CRISPR Cas9蛋白质的一个催化不活跃的变体,以及一个设计的带有与目的基因互补的区域的小引导RNA(SgRNA)。SgRNA引导dCas9-sgRNA复合体与互补基因组位点的结合。我们将开发一个基于CRISPR RNA的工具集,用于靶向和可诱导的表观遗传修饰操作。首先,我们将开发一系列优化的dCas9-sgRNA对,其中靶向的DNA位置仅由sgRNA的序列确定,靶向的表观遗传影响由dCas9招募的效应结构域决定。然后,这将与一个全基因组的sgRNA文库相结合,该文库能够随意针对人类基因组中大约100,000个位置的dCas9。其次,为了实现可诱导的表观遗传控制,我们将把dCas9蛋白融合到一组不同的表观遗传修饰域和效应域上,这些修饰域和效应域可以被光或药物控制。表观遗传修饰域将包含来自自然表观遗传调节器的不同催化和/或调节结构域,包括“编写器”和“擦除器”模块。将使用光遗传和化学门控相互作用模块来实现空间和时间控制。第三,我们将把这些工具应用到一组试验性的机械学和生物工程研究中,以测试CRISPR表观遗传工具箱如何被利用。具体地说,我们将修改小鼠Oct4和Sox2基因座的表观遗传标记作为内源性实验试验床,并研究修饰物招募定位和动力学在控制染色质状态中的重要性。最后,我们将开发可编程的CRISPR绝缘体来控制人β珠蛋白表达的染色质远程相互作用。总之,该项目将为表观基因组的精确空间和时间调控提供一个通用的RNA引导平台。我们预计,该平台将成为研究不同位点多个表观遗传修饰物之间相互作用的关键工具,了解表观基因组编程与疾病之间的关系,并促进重写和重写表观遗传标记的治疗方法的开发。
英文摘要
DESCRIPTION (provided by applicant): Epigenetic modifications, such as DNA methylation and histone acetylation/methylation, play a critical role in dictating the function and behavior of an organism. Efforts to unravel the workings of the epigenome, however, are constrained by severe technical limitations in our ability to manipulate chromatin modifications. Existing approaches typically involve pharmacological agents or genetic modification and tend to have pleiotropic effects. This proposal aims to develop a universal set of tools for manipulating epigenetic modifications capable of targeting specific chromatin modifiers to any desired locus and precisely controlling the timing and magnitude of these modifications. The proposed platform is built on our recently demonstrated CRISPR (Clustered Regularly Interspaced Short Palindromic Repeats) interference system-a highly efficient RNA- guided genome-targeting system derived from the CRISPR bacterial immune system. The method requires only a single protein, dCas9, a catalytically inactive variant of the CRISPR Cas9 proteins, and a designed small guide RNA (sgRNA) with a region that is complementary to the gene of interest. The sgRNA guides binding of the dCas9-sgRNA complex to the complementary genomic site. We will develop a CRISPR RNA-based toolset for targeted and inducible manipulation of the epigenetic modifications First, we will develop a series of optimized dCas9-sgRNA pairs in which the DNA location of targeting is determined solely by the sequence of the sgRNA and the epigenetic impact of targeting is dictated by the effector domain that is recruited by dCas9. This will then be coupled with a genome-wide library of sgRNAs capable of targeting the dCas9 at will to roughly 100,000 positions in the human genome. Second, to enable inducible epigenetic controls, we will fuse the dCas9 proteins to a complement of diverse epigenetic modifier domains and effector domains that can be controlled by light or drugs. The epigenetic modifier domains will contain different catalytic and/or regulatory domains derived from natural epigenetic regulators, including both "writer" and "eraser" modules. Optogenetically and chemically gated interaction modules will be used to achieve spatial and temporal control. Third, we will apply these tools to a small set of pilot mechanistic and bioengineering studies to test how the CRISPR epigenetic toolbox can be utilized. Specifically, we will modify the epigenetic marks of the murine Oct4 and Sox2 loci as the endogenous experimental testbed, and study the importance of modifier recruitment positioning and dynamics in controlling chromatin state. Finally, we will develop programmable CRISPR insulators to control long-range chromatin interactions of human beta globin expression. Together, this project will provide a universal RNA-guided platform for precise spatial and temporal regulation of the epigenome. We envision this platform will be a critical tool for studying the interplay between multiple epigenetic modifirs at different loci, understanding the relationship between epigenomic programming and disease, and facilitate the development of therapeutic methods to rewrite and reprogram epigenetic marks.
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