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Updated: Jun 6, 2026

Strand-Specific Analysis of Proteins at Replicating DNA Strands by Enrichment and Sequencing of Protein-Associated Nascent DNA Method
Published on: May 2, 2025
Improved short nascent strand sequencing (iSNS-seq) enhances DNA replication origin detection and reduces non-origin
Miiko Sokka1, John M Urban2, Nicola Neretti1
1Department of Molecular Biology, Cell Biology and Biochemistry, Brown University, 185 Meeting Street, Providence, Rhode Island, 02912, USA.
None:
Identifying DNA replication origins in human and other metazoan genomes has been challenging, as highlighted by the fact that various methods for mapping them have produced conflicting results. A popular method, short nascent strand sequencing (SNS-seq), enriches newly replicated short single-stranded DNA by size selection and λ-exonuclease (λ-exo) digestion of parental DNA. Surprisingly, SNS-seq has never been validated in Saccharomyces cerevisiae where origins have been well characterized genome-wide. We improved the SNS-seq protocol through biochemical optimization and benchmarked its origin-mapping sensitivity and precision with traditional SNS-seq in asynchronous populations of S. cerevisiae. The improved SNS-seq protocol significantly enhanced the enrichment of origin-derived DNA. Strikingly, the traditional SNS-seq failed to detect known origins and instead enriched non-origin DNA, likely arising from RNA:DNA hybrids. These findings have important implications for the interpretation of previously published datasets that rely on λ-exo for origin mapping. Overall, our biochemical and genomic analyses help unravel the mystery of the inconsistencies between SNS-seq and other techniques used to map DNA replication origins genome-wide.
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