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ERROR CORRECTION IN DNA SYNTHESIS--A BIOCHEMICAL STUDY

ERROR CORRECTION IN DNA SYNTHESIS--A BIOCHEMICAL STUDY
DNA 合成中的错误纠正——一项生化研究
批准号:
2173720
负责人:
MYRON GOODMAN
金额:
$22.8万
依托单位国家:
美国
项目类别:
财政年份:
1978
资助国家:
美国
项目状态:
已结题
起止时间:
1978-09-01 至 1995-12-07

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中文摘要
翻译
突变在生活中既有积极的核心作用,也有消极的核心作用 有机体。单碱基替换是最简单的一类 突变,但它们可能会产生深远的生物学后果。他们可以 作为进化的驱动力。还有无数的 仅一个碱基的改变就可能导致癌症的例子 在人类基因组中配对。遗传性疾病也是如此,比如 如镰状细胞性贫血和Lesch-Nyhan综合征。这是众所周知的,因为 最早的突变研究在阐明了 DNA的结构,突变以非随机的方式发生在 基因组。DNA沿线的某些位置,被称为“热点”,展示 比平均突变频率高得多,而其他部位则是“冷” 斑点“,以显著减少的速度变异。 这项拨款提案是为了研究碱基替换的冷热。 分子水平上的斑点。众所周知,近端甚至 远端碱基序列可以强烈地影响给定条件下的碱基替换 DNA基因座。我们提出了最近邻基座堆积力 调节DNA聚合酶核苷酸插入的保真度 延长含有单个碱基错配的DNA的效率。它有 也有人提出,DNA的相对稳定性(即 A-T/G-C碱基对的比例)可以深刻地影响 在复制分叉处,通过校对核酸外切酶进行纠错。 我们正在利用一种聚丙烯酰胺凝胶试验来测试聚合酶模型 作为基本上下文的函数的保真度。每个保真度组件: 可以测量核苷酸的插入、延伸和/或切除 独立的。我们将确定我们之间是否存在有趣的关联 最接近的核苷酸和酶之间的早期观察 歧视机制可以通过获得额外的 独立数据。除了涉及正常的碱基替换 碱基错配对,有生物学意义的损伤可以影响 DNA的模板特性。失去一个基数会导致一个 非指导性(基础)损害,而碱基烷化可以改变碱基 配对的具体细节。碱性中心和烷基化碱是已知的 高度有害的损伤,导致复制受阻,突变, 和致癌作用。我们打算使用凝胶保真度分析来分析 基础语境对插入、延伸和校对的影响 DNA上选定的损伤位置。最后,等位基因选择性扩增 利用聚合酶链式反应已经成为一种重要的方法 在克隆的DNA中鉴定人类起源的突变。我们的实验是关于 碱基背景对延伸超过病变的影响将具有实际意义 在这些实验的设计和分析中的应用。
英文摘要
Mutations play both a positive and negative central role in an living organisms. Single base substitutions are the simplest class of mutations, yet they can have profound biological consequences. They can act as a driving force governing evolution. There are also numerous examples of cancers that can result from an alteration of just one base pair in the human genome. The same is true for inherited diseases such as sickle cell anemia and Lesch-Nyhan syndrome. It is well known since the earliest mutagenesis studies following the elucidation of the structure of DNA, that mutations occur in a nonrandom fashion along the genome. Certain sites along DNA, referred to as "hot spots", exhibit much higher than average mutation frequencies, while other sites, "cold spots", mutate at a significantly diminished rate. The focal point of this grant proposal is to investigate base substitution hot and cold spots at a molecular level. It is well known that proximal and even distal base sequences can strongly affect base substitutions at a given DNA locus. We have proposed that nearest-neighbor base stacking forces modulate the fidelity of nucleotide insertion of DNA polymerase and the efficiency of elongating DNA containing a single base mismatch. It has also been suggested that the relative stability of the DNA (i.e., the ratio of A-T/G-C base pairs) can profoundly affect the efficiency of error correction, by proofreading exonucleases, at the replication fork. We are utilizing a polyacrylamide gel assay to test models of polymerase fidelity as a function of base context. Each fidelity component: nucleotide insertion, extension and/or excision can be measured independently. We will determine whether interesting correlations we had earlier observed between nearest neighbor nucleotides and enzyme discrimination mechanisms can be supported by obtaining additional independent data. In addition to base substitutions involving normal base mispairs, there are biologically significant lesions that can affect the templating properties of DNA. The loss of a base results in a noninstructional (abasic) lesion, while base alkyations can alter base pairing specificities. Abasic sites and alkyated bases are known to be highly deleterious lesions, causing replication blockage, mutagenesis, and carcinogenesis. We intend to use the gel fidelity assay to analyze the effects of base context on insertion, extension and proofreading at selected lesion sites on DNA. Finally, allele selective amplification using the polymerase chain reaction has become an important method to identify mutations of human origin in cloned DNA. Our experiments on the effects of base context on extension past a lesion will have practical application in the design and analysis of these experiments.
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