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Genetic Analysis of RNA-directed DNA Methylation

Genetic Analysis of RNA-directed DNA Methylation
RNA 指导的 DNA 甲基化的遗传分析
批准号:
7485036
负责人:
Julie Ann Law
金额:
$4.68万
依托单位国家:
美国
项目类别:
财政年份:
2007
资助国家:
美国
项目状态:
已结题
起止时间:
2007-09-01 至 2010-08-31

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中文摘要
翻译
描述(由申请人提供):单个基因的表达和每个细胞内DNA的其他非编码区域的表达必须精确调节正常的生长和发育,这是由与异常基因表达相关的无数疾病所证明的。在真核生物中,控制基因表达的一种机制是通过DNA中胞嘧啶残基的甲基化。DNA甲基化对于基因组中高重复元件(包括转座子和逆转录病毒)的沉默以及一些表观遗传调控过程(如亲代印记和x染色体失活)非常重要。尽管这些生物过程很重要,尽管发现DNA甲基化的错误调节可导致与癌症相关的高甲基化和低甲基化状态,但DNA甲基化的建立和维持机制尚不清楚。本研究旨在进一步阐明拟南芥RNA-directed DNA甲基化(RdDM)的机制,该机制是由哺乳动物DnmtS de novo甲基转移酶的同源结构域重组甲基化e2 (DRM2)催化的。研究将从该途径中新发现的DRM2 DNA甲基化介质(MOD)的组蛋白甲基转移酶活性的表征开始。在免疫荧光实验中,通过评估mdd突变对其他RdDM蛋白定位的影响,可以确定MOD在RdDM期间的作用时间和地点。此外,将进行基因筛选,以确定RdDM所需的其他蛋白质。更深入地了解DRM2介导的甲基化和RdDM将是回答一些重要生物学问题的关键,如甲基化最初是如何靶向特定位点的,甲基化是如何维持的,以及这一过程是如何被破坏的,从而导致基因表达的变化。相关性:在真核生物中,许多系统已经发展到确保遗传信息的正确表达,当这些系统发生故障时,蛋白质可能会被错误表达并导致癌症等疾病。在分子水平上阐明这样一个系统的机制,DNA甲基化,对于理解该系统的破坏如何导致与癌症相关的甲基化状态的增加和减少将是重要的。
英文摘要
DESCRIPTION (provided by applicant): The expression of individual genes and other non-coding regions of DNA within each cell must be precisely regulated for normal growth and development as is evident by the innumerable diseases associated with aberrant gene expression. In eukaryotes, one mechanism by which gene expression is controlled is through the methylation of cytosine residues in the DNA. DNA methylation is important for silencing of highly repetitive elements in the genome including transposons and retroviruses and for several epigenetic regulatory processes such as parental imprinting and X-chromosome inactivation. Despite the importance of these biological processes, and despite findings that mis-regulation of DNA methylation can lead to hyper and hypo methylated states associated with cancer, the mechanisms for the establishment and maintenance of DNA methylation are very poorly understood. This proposal is aimed at further elucidating the mechanism of RNA-directed DNA methylation (RdDM) in Arabidopsis thaliana, which is catalyzed by the DOMAINS REARRANGED METHYLASE2 (DRM2), a homolog of the mammalian DnmtS de novo methyltransferase. Investigation will begin with the characterization of the histone methyltransferase activity of a newly identified protein in this pathway, MEDIATOR OF DRM2 DNA METHYLATION (MOD). When and where MOD acts during RdDM will then be determined by assessing the effects of an mdd mutation on the localization of other RdDM proteins in immunofluorescence experiments. In addition, a genetic screen will be conducted to identify other proteins required for RdDM. A more thorough understanding of DRM2 mediated methylation and RdDM will be key for answering important biological questions such as how specific loci are initially targeted for methylation, how this methylation is maintained, and how this process is disrupted, leading to changes in gene expression. Relevance: In eukaryotes many system have developed to ensure the proper expression of genetic information and when these systems malfunction proteins can become mis-expressed and cause diseases such as cancer. Elucidating the mechanism of one such system, DNA methylation, on the molecular level will be important for understanding how disruptions in this system can lead to the increased and decreased methylation states associated with cancer.
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Establishment and Modulation of DNA Methylation Patterns in Arabidopsis
Establishment and Modulation of DNA Methylation Patterns in Arabidopsis
Establishment and Modulation of DNA Methylation Patterns in Arabidopsis
Establishment and Modulation of DNA Methylation Patterns in Arabidopsis
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