TY - JOUR
T1 - Most human DNA replication initiation is dispersed throughout the genome with only a minority within previously identified initiation zones
AU - Carrington, Jamie T.
AU - Wilson, Rosemary H.C.
AU - de La Vega, Eduardo
AU - Thiyagarajan, Sathish
AU - Barker, Tom
AU - Catchpole, Leah
AU - Durrant, Alex
AU - Knitlhoffer, Vanda
AU - Watkins, Chris
AU - Gharbi, Karim
AU - Nieduszynski, Conrad A.
N1 - Data availability:
Raw (fastq) and processed (bigwig files) BrdU-ip-seq Illumina data are available from NCBI GEO under accession number GSE265956 [78]. BrdU calls on aligned nascent reads (mod.bam format) and inferred replication dynamics (bed files) are available from Zenodo (https://doi.org/10.5281/zenodo.10827586) [79]. Code described here is available from GitHub (https://github.com/DNAReplicationLab/MammalianNanopore) together with a Zenodo repository [80].
PY - 2025/5/9
Y1 - 2025/5/9
N2 - Background: The identification of sites of DNA replication initiation in mammalian cells has been challenging. Here, we present unbiased detection of replication initiation events in human cells using BrdU incorporation and single-molecule nanopore sequencing. Results: Increases in BrdU incorporation allow us to measure DNA replication dynamics, including identification of replication initiation, fork direction, and termination on individual nanopore sequencing reads. Importantly, initiation and termination events are identified on single molecules with high resolution, throughout S-phase, genome-wide, and at high coverage at specific loci using targeted enrichment. We find a significant enrichment of initiation sites within the broad initiation zones identified by population-level studies. However, these focused initiation sites only account for ~ 20% of all identified replication initiation events. Most initiation events are dispersed throughout the genome and are missed by cell population approaches. This indicates that most initiation occurs at sites that, individually, are rarely used. These dispersed initiation sites contrast with the focused sites identified by population studies, in that they do not show a strong relationship to transcription or a particular epigenetic signature. Conclusions: We show here that single-molecule sequencing enables unbiased detection and characterization of DNA replication initiation events, including the numerous dispersed initiation events that replicate most of the human genome.
AB - Background: The identification of sites of DNA replication initiation in mammalian cells has been challenging. Here, we present unbiased detection of replication initiation events in human cells using BrdU incorporation and single-molecule nanopore sequencing. Results: Increases in BrdU incorporation allow us to measure DNA replication dynamics, including identification of replication initiation, fork direction, and termination on individual nanopore sequencing reads. Importantly, initiation and termination events are identified on single molecules with high resolution, throughout S-phase, genome-wide, and at high coverage at specific loci using targeted enrichment. We find a significant enrichment of initiation sites within the broad initiation zones identified by population-level studies. However, these focused initiation sites only account for ~ 20% of all identified replication initiation events. Most initiation events are dispersed throughout the genome and are missed by cell population approaches. This indicates that most initiation occurs at sites that, individually, are rarely used. These dispersed initiation sites contrast with the focused sites identified by population studies, in that they do not show a strong relationship to transcription or a particular epigenetic signature. Conclusions: We show here that single-molecule sequencing enables unbiased detection and characterization of DNA replication initiation events, including the numerous dispersed initiation events that replicate most of the human genome.
KW - DNAscent
KW - nCATS
KW - Origin mapping
KW - Replication origin
KW - Ultra-long
UR - https://www.scopus.com/pages/publications/105004659539
U2 - 10.1186/s13059-025-03591-w
DO - 10.1186/s13059-025-03591-w
M3 - Article
C2 - 40346587
AN - SCOPUS:105004659539
SN - 1474-7596
VL - 26
JO - Genome Biology
JF - Genome Biology
IS - 1
M1 - 122
ER -