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真核生物跨损伤合成DNA聚合酶:结构与功能的特异性

Eukaryotic translesion synthesis DNA polymerases: specificity of structure and function.

作者信息

Prakash Satya, Johnson Robert E, Prakash Louise

机构信息

Sealy Center for Molecular Science, University of Texas Medical Branch, Galveston, Texas 77555-1061, USA.

出版信息

Annu Rev Biochem. 2005;74:317-53. doi: 10.1146/annurev.biochem.74.082803.133250.

Abstract

This review focuses on eukaryotic translesion synthesis (TLS) DNA polymerases, and the emphasis is on Saccharomyces cerevisiae and human Y-family polymerases (Pols) eta, iota, kappa, and Rev1, as well as on Polzeta, which is a member of the B-family polymerases. The fidelity, mismatch extension ability, and lesion bypass efficiencies of these different polymerases are examined and evaluated in the context of their structures. One major conclusion is that, despite the overall similarity of basic structural features among the Y-family polymerases, there is a high degree of specificity in their lesion bypass properties. Some are able to bypass a particular DNA lesion, whereas others are efficient at only the insertion step or the extension step of lesion bypass. This functional divergence is related to the differences in their structures. Polzeta is a highly specialized polymerase specifically adapted for extending primer termini opposite from a diverse array of DNA lesions, and depending upon the DNA lesion, it contributes to lesion bypass in a mutagenic or in an error-free manner. Proliferating cell nuclear antigen (PCNA) provides the central scaffold to which TLS polymerases bind for access to the replication ensemble stalled at a lesion site, and Rad6-Rad18-dependent protein ubiquitination is important for polymerase exchange.

摘要

本综述聚焦于真核生物跨损伤合成(TLS)DNA聚合酶,重点关注酿酒酵母和人类Y家族聚合酶η、ι、κ和Rev1,以及B家族聚合酶成员Polζ。在这些不同聚合酶的结构背景下,对它们的保真度、错配延伸能力和损伤跨越效率进行了研究和评估。一个主要结论是,尽管Y家族聚合酶的基本结构特征总体相似,但其损伤跨越特性具有高度特异性。有些能够跨越特定的DNA损伤,而其他一些仅在损伤跨越的插入步骤或延伸步骤效率较高。这种功能差异与它们结构上的差异有关。Polζ是一种高度专业化的聚合酶,特别适合在与多种DNA损伤相对的引物末端进行延伸,并且根据DNA损伤情况,它以诱变或无错的方式促进损伤跨越。增殖细胞核抗原(PCNA)提供了中央支架,TLS聚合酶与之结合以进入停滞在损伤位点的复制复合体,并且Rad6-Rad18依赖性蛋白泛素化对于聚合酶交换很重要。

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