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REPLICATION REPAIR

REPLICATION REPAIR
复制修复
批准号:
6290035
负责人:
JOHN W. DRAKE
金额:
$0.0万
依托单位国家:
美国
项目类别:
财政年份:
--
资助国家:
美国
项目状态:
未结题
起止时间:
至

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中文摘要
翻译
工作概述:DNA损伤会导致细胞死亡或突变,这两种情况都会对健康造成严重后果。大多数DNA损伤在造成伤害之前就被修复了。经典定义的DNA修复机制是损伤的直接逆转、损伤的切除和受损链的再合成、绕过损伤而不去除损伤的重组过程和诱变翻译合成。在T4噬菌体中发现了第四种但特征不明确的机制。在诱导多种DNA损伤的治疗后,某些DNA复制基因的突变会降低存活,但突变不会严重影响噬菌体的繁殖。这一过程似乎不涉及任何经典机制,并已被命名。复制修复吗?因为它涉及到DNA复制的酶。我们已经建立了Nossal噬菌体T4多蛋白系统,用于在体外复制两条DNA链,我们现在正在研究受损DNA的处理,比较野生型和突变型酶。(DNA损伤包括一个特定位置的胸腺嘧啶-胸腺嘧啶二聚体。)突变的DNA结合蛋白对单链DNA的亲和力降低,而突变的复制性DNA解旋酶的解旋酶活性降低。-噬菌体,DNA结合蛋白,DNA损伤,DNA修复,DNA重组,基因,诱变
英文摘要
Summary of Work: DNA damage produces cell death or mutation, both of which can have serious health consequences. Most DNA damage is repaired before it can cause harm. The classically defined mechanisms of DNA repair are direct reversal of the damage, excision of the damage followed by resynthesis of the damaged strand, recombinational processes that bypass the damage without removing it, and mutagenic translesion synthesis. A fourth but poorly characterized mechanism has been identified in bacteriophage T4. Mutations in certain genes of DNA replication reduce survival after treatments inducing a variety of kinds of DNA damage, but the mutations do not otherwise severely affect phage reproduction. The process appears not to involve any of the classical mechanisms and has been names ?replication repair? because it involves enzymes of DNA replication. We have set up the Nossal bacteriophage T4 multi-protein system for replicating both strands of DNA in vitro and we are now investigating the processing of damaged DNA, comparing wild-type and mutant enzymes. (The DNA damage consists of a single, specifically located thymine-thymine dimer.) A mutant DNA- binding protein exhibits reduced affinity for single-stranded DNA, while a mutant replicative DNA helicase exhibits diminished helicase activity. - Bacteriophages, DNA-Binding Proteins, DNA Damage, DNA Repair, DNA Recombinant, Genes, Mutagenesis
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Direct Isolation of Chromosomal Regions for the Study of Human Genes
Structural Basis of Polymerase Fidelity
Replication Repair
Structural Basis Of Polymerase Fidelity
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