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DNA damage induced structural and dynamic changes at telomeres

DNA damage induced structural and dynamic changes at telomeres
DNA 损伤引起端粒结构和动态变化
批准号:
8468177
负责人:
Hong Wang
金额:
$24.21万
依托单位国家:
美国
项目类别:
财政年份:
2012
资助国家:
美国
项目状态:
已结题
起止时间:
2012-05-09 至 2015-04-30

项目摘要

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中文摘要
翻译
我获得这个K99奖项的目标是获得额外的培训,成为一个独立的 端粒蛋白质-DNA和蛋白质-蛋白质相互作用的单分子研究领域的研究者。 本研究将在Dr.货车Houten的指导下进行,并由Dr.伊利和Opresko申办。的 来自这三个实验室的专业知识和资源为我提供了一个极好的环境来提高我的技能 在AFM和单分子荧光成像、端粒蛋白生物化学和QPCR分析中。 我们假设,除了破坏TRF 1、TRF 2和POT 1蛋白与DMA的结合外, 环境诱导的DNA损伤(如紫外线或氧化应激)在端粒可以导致 端粒结合蛋白在DNA上的随机不稳定组装。这反过来又逐渐有利于 T环结构的破坏和3'突出端的暴露。本研究的具体目的是 双重的第一个目的是评估环境诱导的DMA损伤对G-四链体的影响 形成、蛋白质结合、蛋白质组装和T环形成。我们将使用AFM检查 DMA损伤对G-四链体组装的影响。大体积DMA损伤对结合的影响 POT 1、TRF 1和TRF 2对短端粒DNA底物的作用将使用电泳迁移率进行评价 移位测定(EMSA),并且将使用AFM检查T环形成。在AFM研究中, POT 1(用量子点标记)在双链端粒DNA上作为shelterin的报告基因 组装件.第二个目的是评估DNA损伤对蛋白质-DNA动力学的影响 端粒DNA相互作用和蛋白质组装。我们将描述TRF 1,TRF 2, 和POT 1-QD偶联物。这些蛋白质-QD缀合物将用于 单分子荧光研究,以评估如何紫外线诱导的DNA损伤影响的动力学 TRF 1-,TRF 2-DNA相互作用和shelterin组装。已知某些环境DNA 破坏剂导致端粒缩短增加。短端粒是各种人类的特征 疾病这项研究将大大推进我们对环境压力源的理解。 如紫外线和氧化应激,与端粒功能障碍有关的几个病因 人类疾病,包括与年龄相关的退行性疾病和癌症。
英文摘要
My goal in obtaining this K99 award is to acquire the additional training to become an independent investigator in the field of single-molecule studies of telomere protein-DNA and protein-protein interactions. This study will be under the guidance of Dr. Van Houten and sponsored by Drs. Erie and Opresko. The expertise and resources from these three labs provide an excellent environment for me to advance my skills in AFM and single-molecule fluorescence imaging, telomere protein biochemistry, and QPCR assays. We hypothesize that, in addition to disrupting TRF1, TRF2 and POT1 proteins binding to DMA, environmentally-induced DMA damage (such as UV light or oxidative stress) at telomeres can cause stochastically unstable assemblies of telomere binding proteins on DMA. This in turn progressively favors the disruption of the T-loop structure and the exposure of the 3' overhang. The specific aims of this study are two-fold. The first aim is to evaluate the effects of environmentally-induced DMA damage on G-quadruplex formation, protein binding, protein assemblies, and T-loop formation. We will use AFM to examine the effects of DMA damage on G-quadruplex assembly. The impact of bulky DMA lesions on the binding of POT1, TRF1 and TRF2 to short telomeric DMA substrates will be evaluated using electrophoresis mobility shift assays (EMSAs), and the T-loop formation will be examined using AFM. In AFM studies, loading of POT1 (marked by quantum dots, QDs) onto duplex telomeric DMA will be used as a reporter of shelterin assembly. The second aim is to evaluate the effects of DNA damage on dynamics of protein-DNA interaction and protein assembly on telomeric DNA. We will characterize the functionality of TRF1, TRF2, and POT1-QD conjugates using AFM imaging and EMSA. These protein-QD conjugates will be used in single-molecule fluorescence studies to evaluate how UV-induced DNA damage affects the dynamics of TRF1-, TRF2-DNA interactions and shelterin assembly. It is known that certain environmental DNA damaging agents cause increased telomere shortening. Short telomeres are characteristic of various human diseases. This study will greatly advance our understanding of how exposure to environmental stressors. such as UV light and oxidative stress, is associated with telomere dysfunction in the etiology of several human disorders including age-associated degenerative diseases and cancer.
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Mechanisms of inflammation-triggered taste loss and its recovery
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