Triple-helix potential of the mouse genome Journal Article


Authors: Maekawa, K.; Yamada, S.; Sharma, R.; Chaudhuri, J.; Keeney, S.
Article Title: Triple-helix potential of the mouse genome
Abstract: Certain DNA sequences, including mirror-symmetric polypyrimidine•polypurine runs, are capable of folding into a triple-helix–containing non–B-form DNA structure called H-DNA. Such H-DNA–forming sequences occur frequently in many eukaryotic genomes, including in mammals, and multiple lines of evidence indicate that these motifs are mutagenic and can impinge on DNA replication, transcription, and other aspects of genome function. In this study, we show that the triplex-forming potential of H-DNA motifs in the mouse genome can be evaluated using S1-sequencing (S1-seq), which uses the single-stranded DNA (ssDNA)–specific nuclease S1 to generate deep-sequencing libraries that report on the position of ssDNA throughout the genome. When S1-seq was applied to genomic DNA isolated from mouse testis cells and splenic B cells, we observed prominent clusters of S1-seq reads that appeared to be independent of endogenous double-strand breaks, that coincided with H-DNA motifs, and that correlated strongly with the triplex-forming potential of the motifs. Fine-scale patterns of S1-seq reads, including a pronounced strand asymmetry in favor of centrally positioned reads on the pyrimidine-containing strand, suggested that this S1-seq signal is specific for one of the four possible isomers of H-DNA (H-y5). By leveraging the abundance and complexity of naturally occurring H-DNA motifs across the mouse genome, we further defined how polypyrimidine repeat length and the presence of repeat-interrupting substitutions modify the structure of H-DNA. This study provides an approach for studying DNA secondary structure genome-wide at high spatial resolution. © 2022 the Author(s).
Keywords: genetics; mouse; animal; animals; mice; nucleotide sequence; genomics; base sequence; genome; conformation; nucleic acid conformation; dna topology; triplex dna; h-dna; non-b dna
Journal Title: Proceedings of the National Academy of Sciences of the United States of America
Volume: 119
Issue: 19
ISSN: 0027-8424
Publisher: National Academy of Sciences  
Date Published: 2022-05-10
Start Page: e2203967119
Language: English
DOI: 10.1073/pnas.2203967119
PUBMED: 35503911
PROVIDER: scopus
PMCID: PMC9171763
DOI/URL:
Notes: Article -- Export Date: 1 June 2022 -- Source: Scopus
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MSK Authors
  1. Scott N Keeney
    138 Keeney
  2. Shintaro   Yamada
    10 Yamada
  3. Rahul Sharma
    6 Sharma