Genome-Wide Detection of DNA Lesions at Single-Base Resolution Using Glycosylase-Cleavage Ligation-Assisted Sequencing

Abstract Upon exposure to endogenous and exogenous damaging agents, tens of thousands of DNA lesions are generated in the mammalian genome, including uracil (U), 8-oxo-7,8-dihydroguanine (8OG), and apurinic/apyrimidinic (AP) sites. It has been documented that these lesions can impair genomic integrity by inducing single-strand breaks and affecting fundamental cellular processes such as gene transcription, DNA replication, and chromatin assembly. Comprehensive and accurate genome-wide mapping of DNA lesions is therefore essential for elucidating their biological and pathological roles. Here, we introduce glycosylase-cleavage ligation-assisted sequencing (GCLA-seq), a method for genome-wide mapping of glycosylase-targeted DNA lesions at single-base resolution. The combined use of DNA glycosylases and T4 DNA ligase in GCLA-seq achieves selective enrichment and amplification of lesion-containing DNA. Using this method, we achieved single-nucleotide-resolution mapping of U, 8OG, and AP sites. Compared with previous approaches for mapping DNA lesions, GCLA-seq does not require specific antibodies or complicated chemical labeling. It can be applied to the localization analysis of various types of DNA lesions, thereby overcoming the limitation that a specific mapping strategy should be developed for each lesion type. Together, these results establish GCLA-seq as an enzyme-based approach for single-base-resolution glycosylase-targeted lesion detection, with genome-wide uracil mapping demonstrated in mammalian genomic DNA.

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Journal
Analytical Chemistry
Published
2026-09-18
DOI
https://doi.org/10.1021/acs.analchem.6c04379
Primary Topic
DNA Repair Mechanisms
Type
article
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Genome-Wide Detection of DNA Lesions at Single-Base Resolution Using Glycosylase-Cleavage Ligation-Assisted Sequencing

Yao-Hua Gu, Bi‐Feng Yuan, Neng‐Bin Xie, Tong‐Tong Ji et al.
Analytical Chemistry
DNA Repair Mechanisms
article

Genome-Wide Detection of DNA Lesions at Single-Base Resolution Using Glycosylase-Cleavage Ligation-Assisted Sequencing

Yao-Hua Gu, Bi‐Feng Yuan, Neng‐Bin Xie, Tong‐Tong Ji, Yibin Liu, Zhiyuan Hu, Fang‐Yin Gang, Yong Zhu, Xia Guo
article en

Abstract

Abstract Upon exposure to endogenous and exogenous damaging agents, tens of thousands of DNA lesions are generated in the mammalian genome, including uracil (U), 8-oxo-7,8-dihydroguanine (8OG), and apurinic/apyrimidinic (AP) sites. It has been documented that these lesions can impair genomic integrity by inducing single-strand breaks and affecting fundamental cellular processes such as gene transcription, DNA replication, and chromatin assembly. Comprehensive and accurate genome-wide mapping of DNA lesions is therefore essential for elucidating their biological and pathological roles. Here, we introduce glycosylase-cleavage ligation-assisted sequencing (GCLA-seq), a method for genome-wide mapping of glycosylase-targeted DNA lesions at single-base resolution. The combined use of DNA glycosylases and T4 DNA ligase in GCLA-seq achieves selective enrichment and amplification of lesion-containing DNA. Using this method, we achieved single-nucleotide-resolution mapping of U, 8OG, and AP sites. Compared with previous approaches for mapping DNA lesions, GCLA-seq does not require specific antibodies or complicated chemical labeling. It can be applied to the localization analysis of various types of DNA lesions, thereby overcoming the limitation that a specific mapping strategy should be developed for each lesion type. Together, these results establish GCLA-seq as an enzyme-based approach for single-base-resolution glycosylase-targeted lesion detection, with genome-wide uracil mapping demonstrated in mammalian genomic DNA.

Analytical Chemistry
Wuhan University (CN), Zhongnan Hospital of Wuhan University (CN)
Openalex Percentile: Top 18%
DNA Repair Mechanisms
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