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A nucleotide resolution map of Top2-linked DNA breaks in the yeast and human genome

机译:酵母和人类基因组中TOP2连接的DNA突破的核苷酸分辨率图

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DNA topoisomerases are required to resolve DNA topological stress. Despite this essential role, abortive topoisomerase activity generates aberrant protein-linked DNA breaks, jeopardising genome stability. Here, to understand the genomic distribution and mechanisms underpinning topoisomerase-induced DNA breaks, we map Top2 DNA cleavage with strand-specific nucleotide resolution across the S. cerevisiae and human genomes-and use the meiotic Spo11 protein to validate the broad applicability of this method to explore the role of diverse topoisomerase family members. Our data characterises Mre11-dependent repair in yeast and defines two strikingly different fractions of Top2 activity in humans: tightly localised CTCF-proximal, and broadly distributed transcription-proximal, the latter correlated with gene length and expression. Moreover, single nucleotide accuracy reveals the influence primary DNA sequence has upon Top2 cleavage-distinguishing sites likely to form canonical DNA double-strand breaks (DSBs) from those predisposed to form strand-biased DNA single-strand breaks (SSBs) induced by etoposide (VP16) in vivo.
机译:需要DNA拓扑异构酶来解决DNA拓扑应激。尽管具有这种基本作用,但失血性拓扑异构酶活性产生异常蛋白联系的DNA断裂,危及基因组稳定性。在这里,为了了解基因组分布和支撑拓扑异构酶诱导的DNA断裂的机制,我们将TOP2 DNA裂解与S. cerevisiae和人类基因组中的链状特异性核苷酸分辨率映射 - 并使用Feiotic Spo11蛋白来验证这种方法的广泛适用性探索不同拓扑异构酶的作用。我们的数据表征了酵母中的MRE11依赖性修复,并在人类中定义了两种尖锐的不同部分的TOP2活性:紧密局部的CTCF - 近端,并且宽分布的转录 - 近端,后者与基因长度和表达相关。此外,单核苷酸精度揭示了影响初级DNA序列在TOP2切割区分位点上的影响,该裂解性可能形成规范DNA双链(DSB),从易于形成由依托泊苷( VP16)在体内。

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