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未协助的 Top3 定点切除通过模板转换重组中间体在 DNA 复制过程中发挥作用。

Resolution by unassisted Top3 points to template switch recombination intermediates during DNA replication.

机构信息

From the Department of Pathology and Laboratory Medicine.

出版信息

J Biol Chem. 2013 Nov 15;288(46):33193-204. doi: 10.1074/jbc.M113.496133. Epub 2013 Oct 7.

Abstract

The evolutionarily conserved Sgs1/Top3/Rmi1 (STR) complex plays vital roles in DNA replication and repair. One crucial activity of the complex is dissolution of toxic X-shaped recombination intermediates that accumulate during replication of damaged DNA. However, despite several years of study the nature of these X-shaped molecules remains debated. Here we use genetic approaches and two-dimensional gel electrophoresis of genomic DNA to show that Top3, unassisted by Sgs1 and Rmi1, has modest capacities to provide resistance to MMS and to resolve recombination-dependent X-shaped molecules. The X-shaped molecules have structural properties consistent with hemicatenane-related template switch recombination intermediates (Rec-Xs) but not Holliday junction (HJ) intermediates. Consistent with these findings, we demonstrate that purified Top3 can resolve a synthetic Rec-X but not a synthetic double HJ in vitro. We also find that unassisted Top3 does not affect crossing over during double strand break repair, which is known to involve double HJ intermediates, confirming that unassisted Top3 activities are restricted to substrates that are distinct from HJs. These data help illuminate the nature of the X-shaped molecules that accumulate during replication of damaged DNA templates, and also clarify the roles played by Top3 and the STR complex as a whole during the resolution of replication-associated recombination intermediates.

摘要

进化上保守的 Sgs1/Top3/Rmi1(STR)复合物在 DNA 复制和修复中发挥着重要作用。该复合物的一个关键活性是溶解在受损 DNA 复制过程中积累的有毒 X 形重组中间体。然而,尽管已经进行了多年的研究,这些 X 形分子的性质仍存在争议。在这里,我们使用遗传方法和基因组 DNA 的二维凝胶电泳来表明,Top3 无需 Sgs1 和 Rmi1 的辅助,就具有一定的能力来提供对 MMS 的抗性并解决依赖于重组的 X 形分子。X 形分子具有与半随体相关的模板转换重组中间体(Rec-Xs)而不是 Holliday 连接(HJ)中间体一致的结构特性。与这些发现一致,我们证明纯化的 Top3 可以在体外解析合成的 Rec-X,但不能解析合成的双 HJ。我们还发现,未辅助的 Top3 不会影响双链断裂修复过程中的交叉,双链断裂修复已知涉及双 HJ 中间体,这证实了未辅助的 Top3 活性仅限于与 HJ 不同的底物。这些数据有助于阐明在受损 DNA 模板复制过程中积累的 X 形分子的性质,并阐明 Top3 和 STR 复合物在整个复制相关重组中间体的解决过程中的作用。

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