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复制体停滞位点的空间分离影响Tus/Ter介导的复制叉屏障处的同源重组质量。

Spatial separation of replisome arrest sites influences homologous recombination quality at a Tus/Ter-mediated replication fork barrier.

作者信息

Willis Nicholas A, Scully Ralph

机构信息

a Department of Medicine , Division of Hematology-Oncology and Cancer Research Institute, Beth Israel Deaconess Medical Center and Harvard Medical School , Boston , MA , USA.

出版信息

Cell Cycle. 2016 Jul 17;15(14):1812-20. doi: 10.1080/15384101.2016.1172149. Epub 2016 May 2.

Abstract

The Escherichia coli replication fork arrest complex Tus/Ter mediates site-specific replication fork arrest and homologous recombination (HR) on a mammalian chromosome, inducing both conservative "short tract" gene conversion (STGC) and error-prone "long tract" gene conversion (LTGC) products. We showed previously that bidirectional fork arrest is required for the generation of STGC products at Tus/Ter-stalled replication forks and that the HR mediators BRCA1, BRCA2 and Rad51 mediate STGC but suppress LTGC at Tus/Ter-arrested forks. Here, we report the impact of Ter array length on Tus/Ter-induced HR, comparing HR reporters containing arrays of 6, 9, 15 or 21 Ter sites-each targeted to the ROSA26 locus of mouse embryonic stem (ES) cells. Increasing Ter copy number within the array beyond 6 did not affect the magnitude of Tus/Ter-induced HR but biased HR in favor of LTGC. A "lock"-defective Tus mutant, F140A, known to exhibit higher affinity than wild type (wt)Tus for duplex Ter, reproduced these effects. In contrast, increasing Ter copy number within the array reduced HR induced by the I-SceI homing endonuclease, but produced no consistent bias toward LTGC. Thus, the mechanisms governing HR at Tus/Ter-arrested replication forks are distinct from those governing HR at an enzyme-induced chromosomal double strand break (DSB). We propose that increased spatial separation of the 2 arrested forks encountering an extended Tus/Ter barrier impairs the coordination of DNA ends generated by the processing of the stalled forks, thereby favoring aberrant LTGC over conservative STGC.

摘要

大肠杆菌复制叉停滞复合物Tus/Ter介导哺乳动物染色体上的位点特异性复制叉停滞和同源重组(HR),诱导保守的“短片段”基因转换(STGC)和易出错的“长片段”基因转换(LTGC)产物。我们之前表明,双向叉停滞是在Tus/Ter停滞的复制叉处产生STGC产物所必需的,并且HR介质BRCA1、BRCA2和Rad51介导STGC,但在Tus/Ter停滞的叉处抑制LTGC。在这里,我们报告了Ter阵列长度对Tus/Ter诱导的HR的影响,比较了包含6、9、15或21个Ter位点阵列的HR报告基因——每个都靶向小鼠胚胎干细胞(ES)的ROSA26位点。阵列中Ter拷贝数增加到超过6个并不影响Tus/Ter诱导的HR的幅度,但使HR倾向于LTGC。一种“锁定”缺陷的Tus突变体F140A,已知其对双链Ter的亲和力高于野生型(wt)Tus,重现了这些效应。相比之下,阵列中Ter拷贝数的增加降低了I-SceI归巢内切酶诱导的HR,但没有产生对LTGC的一致偏向。因此,在Tus/Ter停滞的复制叉处控制HR的机制与在酶诱导的染色体双链断裂(DSB)处控制HR的机制不同。我们提出,遇到扩展Tus/Ter屏障的两个停滞叉之间空间距离的增加会损害由停滞叉加工产生的DNA末端的协调,从而有利于异常的LTGC而不是保守的STGC。

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