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作为不对称二聚体的染色体复制酶:亚基排列及其功能后果的研究

Chromosomal replicases as asymmetric dimers: studies of subunit arrangement and functional consequences.

作者信息

McHenry Charles S

机构信息

Department of Biochemistry and Molecular Genetics, University of Colorado Health Sciences Center, Denver, CO 80262, USA.

出版信息

Mol Microbiol. 2003 Sep;49(5):1157-65. doi: 10.1046/j.1365-2958.2003.03645.x.

Abstract

Studies of the DNA polymerase III holoenzyme of Escherichia coli support a model in which both the leading and lagging strand polymerases are held together in a complex with the replicative helicase and priming activities, allowing two identical alpha catalytic subunits to assume different functions on the two strands of the replication fork. Creation of distinct functions for each of the two polymerases within the holoenzyme depends on the asymmetric character of the entire complex. The asymmetry of the holoenzyme is created by the DnaX complex, a heptamer that includes tau and gamma products of the dnaX gene. tau and gamma perform unique functions in the DnaX complex, and the interaction between alpha and tau appears to dictate the catalytic subunit's role in the replicative reaction. This review considers the properties of the DnaX complex including both tau and gamma, with the goal of understanding the properties of the replicase and its function in vivo. Recent studies in eukaryotic and other prokaryotic systems suggest that an asymmetric dimeric replicase may be universal. The leading and lagging strand polymerases may be distinct in some systems. For example, Pol e and Pol delta may function as distinct leading and lagging strand polymerases in eukaryotes, and PolC and DnaE may function as distinct leading and lagging strand polymerases in low GC content Gram-positive bacteria.

摘要

对大肠杆菌DNA聚合酶III全酶的研究支持了一种模型,即前导链和后随链聚合酶与复制解旋酶及引发活性一起存在于一个复合物中,使得两个相同的α催化亚基在复制叉的两条链上发挥不同功能。在全酶中为这两种聚合酶各自创造不同功能取决于整个复合物的不对称特性。全酶的不对称性由DnaX复合物产生,DnaX复合物是一种七聚体,包含dnaX基因的tau和γ产物。tau和γ在DnaX复合物中发挥独特功能,并且α与tau之间的相互作用似乎决定了催化亚基在复制反应中的作用。本综述探讨了包含tau和γ的DnaX复合物的特性,目的是了解复制酶的特性及其在体内的功能。真核生物和其他原核生物系统中的最新研究表明,不对称二聚体复制酶可能是普遍存在的。在前导链和后随链聚合酶在某些系统中可能是不同的。例如,在真核生物中,Pol ε和Pol δ可能分别作为不同的前导链和后随链聚合酶发挥作用,而在低GC含量的革兰氏阳性细菌中,PolC和DnaE可能分别作为不同的前导链和后随链聚合酶发挥作用。

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