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Nick-seq 用于单核苷酸分辨率的 DNA 修饰和损伤的基因组图谱。

Nick-seq for single-nucleotide resolution genomic maps of DNA modifications and damage.

机构信息

College of Life Sciences, Qufu Normal University, Qufu, Shandong 273165, China.

Department of Biological Engineering, Massachusetts Institute of Technology, Cambridge, MA 02139, USA.

出版信息

Nucleic Acids Res. 2020 Jul 9;48(12):6715-6725. doi: 10.1093/nar/gkaa473.

Abstract

DNA damage and epigenetic marks are well established to have profound influences on genome stability and cell phenotype, yet there are few technologies to obtain high-resolution genomic maps of the many types of chemical modifications of DNA. Here we present Nick-seq for quantitative, sensitive, and accurate mapping of DNA modifications at single-nucleotide resolution across genomes. Pre-existing breaks are first blocked and DNA modifications are then converted enzymatically or chemically to strand-breaks for both 3'-extension by nick-translation to produce nuclease-resistant oligonucleotides and 3'-terminal transferase tailing. Following library preparation and next generation sequencing, the complementary datasets are mined with a custom workflow to increase sensitivity, specificity and accuracy of the map. The utility of Nick-seq is demonstrated with genomic maps of site-specific endonuclease strand-breaks in purified DNA from Eschericia coli, phosphorothioate epigenetics in Salmonella enterica Cerro 87, and oxidation-induced abasic sites in DNA from E. coli treated with a sublethal dose of hydrogen peroxide. Nick-seq applicability is demonstrated with strategies for >25 types of DNA modification and damage.

摘要

DNA 损伤和表观遗传标记被广泛认为对基因组稳定性和细胞表型有深远影响,但目前很少有技术能够获得 DNA 化学修饰的多种类型的高分辨率基因组图谱。在这里,我们提出了 Nick-seq 技术,用于在全基因组范围内以单核苷酸分辨率进行定量、敏感和准确的 DNA 修饰图谱绘制。首先阻止预先存在的断裂,然后通过酶或化学方法将 DNA 修饰转化为链断裂,以便通过缺口平移进行 3'-延伸,产生核酸酶抗性寡核苷酸,并通过 3'-末端转移酶加尾。在文库制备和下一代测序之后,使用自定义工作流程挖掘互补数据集,以提高图谱的灵敏度、特异性和准确性。Nick-seq 的实用性通过来自大肠杆菌的纯化 DNA 中特定位置内切酶链断裂、沙门氏菌 enterica Cerro 87 中的硫代磷酸酯表观遗传学以及用亚致死剂量过氧化氢处理的大肠杆菌中氧化诱导的无碱基位点的基因组图谱得到了证明。Nick-seq 的适用性通过超过 25 种 DNA 修饰和损伤的策略得到了证明。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ef7b/7337925/30b1e7a889f9/gkaa473fig1.jpg

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