Nucleotide-Resolution Genome-Wide Mapping of Oxidative DNA Damage by Click-Code-Seq.
Junzhou WuMaureen McKeagueShana J SturlaPublished in: Journal of the American Chemical Society (2018)
Single-nucleotide-resolution sequencing of DNA damage is required to decipher the complex causal link between the identity and location of DNA adducts and their biological impact. However, the low abundance and inability to specifically amplify DNA damage hinders single-nucleotide mapping of adducts within whole genomes. Despite the high biological relevance of guanine oxidation and seminal recent advances in sequencing bulky adducts, single-nucleotide-resolution whole genome mapping of oxidative damage is not yet realized. We coupled the specificity of repair enzymes with the efficiency of a click DNA ligation reaction to insert a biocompatible locator code, enabling high-throughput, nucleotide-resolution sequencing of oxidative DNA damage in a genome. We uncovered thousands of oxidation sites with distinct patterns related to transcription, chromatin architecture, and chemical oxidation potential. Click-code-seq overcomes barriers to DNA damage sequencing and provides a new approach for generating comprehensive, sequence-specific information about chemical modification patterns in whole genomes.
Keyphrases
- dna damage
- single cell
- genome wide
- single molecule
- dna repair
- high throughput
- rna seq
- oxidative stress
- high resolution
- hydrogen peroxide
- dna methylation
- circulating tumor
- cell free
- high density
- transcription factor
- electron transfer
- drug delivery
- antibiotic resistance genes
- microbial community
- drug release
- anaerobic digestion
- amino acid