From single-molecule to genome-wide mapping of DNA lesions: repair-assisted damage detection sequencing.

IF 2.4 Q3 BIOPHYSICS Biophysical reports Pub Date : 2021-12-08 DOI:10.1016/j.bpr.2021.100017
Noa Gilat, Dena Fridman, Hila Sharim, Sapir Margalit, Natalie R Gassman, Yael Michaeli, Yuval Ebenstein
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引用次数: 4

Abstract

Mapping DNA damage and its repair has immense potential in understanding environmental exposures, their genotoxicity, and their impact on human health. Monitoring changes in genomic stability also aids in the diagnosis of numerous DNA-related diseases, such as cancer, and assists in monitoring their progression and prognosis. Developments in recent years have enabled unprecedented sensitivity in quantifying the global DNA damage dose in cells via fluorescence-based analysis down to the single-molecule level. However, genome-wide maps of DNA damage distribution are challenging to produce. Here, we describe the localization of DNA damage and repair loci by repair-assisted damage detection sequencing (RADD-seq). Based on the enrichment of damage lesions coupled with a pull-down assay and followed by next-generation sequencing, this method is easy to perform and can produce compelling results with minimal coverage. RADD-seq enables the localization of both DNA damage and repair sites for a wide range of single-strand damage types. Using this technique, we created a genome-wide map of the oxidation DNA damage lesion 8-oxo-7,8-dihydroguanine before and after repair. Oxidation lesions were heterogeneously distributed along the human genome, with less damage occurring in tight chromatin regions. Furthermore, we showed repair is prioritized for highly expressed, essential genes and in open chromatin regions. RADD-seq sheds light on cellular repair mechanisms and is capable of identifying genomic hotspots prone to mutation.

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从DNA损伤的单分子到全基因组图谱:修复辅助损伤检测测序。
绘制DNA损伤及其修复图谱对于了解环境暴露、遗传毒性及其对人类健康的影响具有巨大的潜力。监测基因组稳定性的变化也有助于许多dna相关疾病(如癌症)的诊断,并有助于监测其进展和预后。近年来的发展,使前所未有的灵敏度量化全球DNA损伤剂量的细胞通过荧光分析到单分子水平。然而,DNA损伤分布的全基因组图谱是具有挑战性的。在这里,我们通过修复辅助损伤检测测序(RADD-seq)描述了DNA损伤和修复位点的定位。基于损伤病灶的富集,再加上下拉试验和下一代测序,该方法易于执行,并且可以在最小的覆盖范围内产生令人信服的结果。radad -seq能够定位DNA损伤和修复位点,用于广泛的单链损伤类型。利用这种技术,我们创建了修复前后8-氧-7,8-二氢鸟嘌呤氧化DNA损伤的全基因组图谱。氧化损伤沿人类基因组分布不均,在紧密染色质区域发生的损伤较少。此外,我们发现修复优先于高表达的必需基因和开放的染色质区域。radad -seq揭示了细胞修复机制,并能够识别易于突变的基因组热点。
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来源期刊
Biophysical reports
Biophysical reports Biophysics
CiteScore
2.40
自引率
0.00%
发文量
0
审稿时长
75 days
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