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DNA复制保真度的生化基础。

Biochemical basis of DNA replication fidelity.

作者信息

Goodman M F, Creighton S, Bloom L B, Petruska J

机构信息

University of Southern California, Department of Biological Sciences, Los Angeles 90089-1340.

出版信息

Crit Rev Biochem Mol Biol. 1993;28(2):83-126. doi: 10.3109/10409239309086792.

DOI:10.3109/10409239309086792
PMID:8485987
Abstract

DNA polymerase is the critical enzyme maintaining genetic integrity during DNA replication. Individual steps in the replication process that contribute to DNA synthesis fidelity include nucleotide insertion, exonucleolytic proofreading, and binding to and elongation of matched and mismatched primer termini. Each process has been investigated using polyacrylamide gel electrophoresis (PAGE) to resolve 32P-labeled primer molecules extended by polymerase. We describe how integrated gel band intensities can be used to obtain site-specific velocities for addition of correct and incorrect nucleotides, extending mismatched compared to correctly matched primer termini and measuring polymerase dissociation rates and equilibrium DNA binding constants. The analysis is based on steady-state "single completed hit conditions", where polymerases encounter many DNA molecules but where each DNA encounters an enzyme at most once. Specific topics addressed include nucleotide misinsertion, mismatch extension, exonucleolytic proofreading, single nucleotide discrimination using PCR, promiscuous mismatch extension by HIV-1 and AMV reverse transcriptases, sequence context effects on fidelity and polymerase dissociation, structural and kinetic properties of mispairs relating to fidelity, error avoidance mechanisms, kinetics of copying template lesions, the "A-rule" for insertion at abasic template lesions, an interesting exception to the "A-rule", thermodynamic and kinetic determinants of base pair discrimination by polymerases.

摘要

DNA聚合酶是在DNA复制过程中维持遗传完整性的关键酶。复制过程中有助于DNA合成保真度的各个步骤包括核苷酸插入、核酸外切酶校对以及与匹配和错配引物末端的结合及延伸。每个过程都已通过聚丙烯酰胺凝胶电泳(PAGE)进行研究,以解析由聚合酶延伸的32P标记引物分子。我们描述了如何利用整合的凝胶条带强度来获得添加正确和错误核苷酸的位点特异性速度,与正确匹配的引物末端相比延伸错配末端,并测量聚合酶解离速率和平衡DNA结合常数。该分析基于稳态“单次完成命中条件”,即聚合酶会遇到许多DNA分子,但每个DNA最多只与一种酶相遇一次。所涉及的具体主题包括核苷酸错插入、错配延伸、核酸外切酶校对、使用PCR的单核苷酸区分、HIV-1和禽成髓细胞瘤病毒逆转录酶的混杂错配延伸、序列背景对保真度和聚合酶解离的影响、与保真度相关的错配的结构和动力学特性、错误避免机制、复制模板损伤的动力学、无碱基模板损伤处插入的“A规则”、“A规则”的一个有趣例外、聚合酶碱基对区分的热力学和动力学决定因素。

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