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真核生物冈崎片段成熟的蛋白质成分及机制

The protein components and mechanism of eukaryotic Okazaki fragment maturation.

作者信息

Kao Hui-I, Bambara Robert A

机构信息

Department of Biochemistry and Biophysics, University of Rochester School of Medicine and Dentistry, Rochester, New York 14642, USA.

出版信息

Crit Rev Biochem Mol Biol. 2003;38(5):433-52. doi: 10.1080/10409230390259382.

Abstract

An initiator RNA (iRNA) is required to prime cellular DNA synthesis. The structure of double-stranded DNA allows the synthesis of one strand to be continuous but the other must be generated discontinuously. Frequent priming of the discontinuous strand results in the formation of many small segments, designated Okazaki fragments. These short pieces need to be processed and joined to form an intact DNA strand. Our knowledge of the mechanism of iRNA removal is still evolving. Early reconstituted systems suggesting that the removal of iRNA requires sequential action of RNase H and flap endonuclease 1 (FEN1) led to the RNase H/FEN1 model. However, genetic analyses implied that Dna2p, an essential helicase/nuclease, is required. Subsequent biochemical studies suggested sequential action of RPA, Dna2p, and FEN1 for iRNA removal, leading to the second model, the Dna2p/RPA/FEN1 model. Studies of strand-displacement synthesis by polymerase delta indicated that in a reconstituted system, FEN1 could act as soon as short flaps are created, giving rise to a third model, the FEN1-only model. Each of the three pathways is supported by different genetic and biochemical results. Properties of the major protein components in this process will be discussed, and the validity of each model as a true representation of Okazaki fragment processing will be critically evaluated in this review.

摘要

引发RNA(iRNA)是启动细胞DNA合成所必需的。双链DNA的结构使得一条链的合成可以是连续的,但另一条链必须以不连续的方式生成。不连续链的频繁引发导致形成许多小片段,即冈崎片段。这些短片段需要经过加工和连接才能形成完整的DNA链。我们对iRNA去除机制的了解仍在不断发展。早期的重组系统表明,iRNA的去除需要核糖核酸酶H(RNase H)和翼状内切核酸酶1(FEN1)的顺序作用,从而产生了RNase H/FEN1模型。然而,基因分析表明,必需的解旋酶/核酸酶Dna2p是必需的。随后的生化研究表明,RPA、Dna2p和FEN1顺序作用以去除iRNA,从而产生了第二个模型,即Dna2p/RPA/FEN1模型。聚合酶δ对链置换合成的研究表明,在重组系统中,一旦形成短翼,FEN1就可以发挥作用,从而产生了第三个模型,即仅FEN1模型。这三种途径都得到了不同的基因和生化结果的支持。本文将讨论这一过程中主要蛋白质成分的特性,并对每个模型作为冈崎片段加工真实代表的有效性进行批判性评估。

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