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Global analysis of double-strand break processing reveals in vivo properties of the helicase-nuclease complex AddAB

机译:对双链断裂过程的全局分析揭示了解旋酶-核酸酶复合物AddAB的体内特性

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In bacteria, double-strand break (DSB) repair via homologous recombination is thought to be initiated through the bi-directional degradation and resection of DNA ends by a helicase-nuclease complex such as AddAB. The activity of AddAB has been well-studied in vitro, with translocation speeds between 400–2000 bp/s on linear DNA suggesting that a large section of DNA around a break site is processed for repair. However, the translocation rate and activity of AddAB in vivo is not known, and how AddAB is regulated to prevent excessive DNA degradation around a break site is unclear. To examine the functions and mechanistic regulation of AddAB inside bacterial cells, we developed a next-generation sequencing-based approach to assay DNA processing after a site-specific DSB was introduced on the chromosome of Caulobacter crescentus. Using this assay we determined the in vivo rates of DSB processing by AddAB and found that putative chi sites attenuate processing in a RecA-dependent manner. This RecA-mediated regulation of AddAB prevents the excessive loss of DNA around a break site, limiting the effects of DSB processing on transcription. In sum, our results, taken together with prior studies, support a mechanism for regulating AddAB that couples two key events of DSB repair–the attenuation of DNA-end processing and the initiation of homology search by RecA–thereby helping to ensure that genomic integrity is maintained during DSB repair.
机译:在细菌中,通过同源重组的双链断裂(DSB)修复被认为是通过解旋酶-核酸酶复合物(例如AddAB)的双向降解和DNA末端切除而引发的。在体外对AddAB的活性进行了充分的研究,线性DNA上的移位速度在400-2000 bp / s之间,这表明在断裂位点附近的大部分DNA都需要进行修复。然而,AddAB在体内的转运速率和活性尚不清楚,并且如何调节AddAB以防止断裂位点附近的DNA过度降解尚不清楚。为了检查细菌细胞内部AddAB的功能和机制调控,在将新的位点特异性DSB引入新月形杆菌染色体后,我们开发了一种基于测序的下一代方法来测定DNA的加工。使用该测定法,我们确定了AddAB处理DSB的体内速率,并发现推定的chi位点以RecA依赖性方式减弱了处理。 RecAB介导的AddAB调节可防止DNA在断裂位点附近过度丢失,从而限制了DSB加工对转录的影响。总之,我们的结果与先前的研究一起,为调节AddAB的机制提供了机制,该机制将DSB修复的两个关键事件耦合在一起-DNA末端加工的减弱和RecA的同源性搜索的启动-从而有助于确保基因组完整性在DSB修复期间保持不变。

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