Genome-wide Nucleotide-Resolution Mapping of DNA Replication Patterns, Single-Strand Breaks, and Lesions by GLOE-Seq. 2020

Annie M Sriramachandran, and Giuseppe Petrosino, and María Méndez-Lago, and Axel J Schäfer, and Liliana S Batista-Nascimento, and Nicola Zilio, and Helle D Ulrich
Institute of Molecular Biology (IMB), Ackermannweg 4, 55128 Mainz, Germany.

DNA single-strand breaks (SSBs) are among the most common lesions in the genome, arising spontaneously and as intermediates of many DNA transactions. Nevertheless, in contrast to double-strand breaks (DSBs), their distribution in the genome has hardly been addressed in a meaningful way. We now present a technique based on genome-wide ligation of 3'-OH ends followed by sequencing (GLOE-Seq) and an associated computational pipeline designed for capturing SSBs but versatile enough to be applied to any lesion convertible into a free 3'-OH terminus. We demonstrate its applicability to mapping of Okazaki fragments without prior size selection and provide insight into the relative contributions of DNA ligase 1 and ligase 3 to Okazaki fragment maturation in human cells. In addition, our analysis reveals biases and asymmetries in the distribution of spontaneous SSBs in yeast and human chromatin, distinct from the patterns of DSBs.

UI MeSH Term Description Entries
D009711 Nucleotides The monomeric units from which DNA or RNA polymers are constructed. They consist of a purine or pyrimidine base, a pentose sugar, and a phosphate group. (From King & Stansfield, A Dictionary of Genetics, 4th ed) Nucleotide
D002843 Chromatin The material of CHROMOSOMES. It is a complex of DNA; HISTONES; and nonhistone proteins (CHROMOSOMAL PROTEINS, NON-HISTONE) found within the nucleus of a cell. Chromatins
D002874 Chromosome Mapping Any method used for determining the location of and relative distances between genes on a chromosome. Gene Mapping,Linkage Mapping,Genome Mapping,Chromosome Mappings,Gene Mappings,Genome Mappings,Linkage Mappings,Mapping, Chromosome,Mapping, Gene,Mapping, Genome,Mapping, Linkage,Mappings, Chromosome,Mappings, Gene,Mappings, Genome,Mappings, Linkage
D004247 DNA A deoxyribonucleotide polymer that is the primary genetic material of all cells. Eukaryotic and prokaryotic organisms normally contain DNA in a double-stranded state, yet several important biological processes transiently involve single-stranded regions. DNA, which consists of a polysugar-phosphate backbone possessing projections of purines (adenine and guanine) and pyrimidines (thymine and cytosine), forms a double helix that is held together by hydrogen bonds between these purines and pyrimidines (adenine to thymine and guanine to cytosine). DNA, Double-Stranded,Deoxyribonucleic Acid,ds-DNA,DNA, Double Stranded,Double-Stranded DNA,ds DNA
D004249 DNA Damage Injuries to DNA that introduce deviations from its normal, intact structure and which may, if left unrepaired, result in a MUTATION or a block of DNA REPLICATION. These deviations may be caused by physical or chemical agents and occur by natural or unnatural, introduced circumstances. They include the introduction of illegitimate bases during replication or by deamination or other modification of bases; the loss of a base from the DNA backbone leaving an abasic site; single-strand breaks; double strand breaks; and intrastrand (PYRIMIDINE DIMERS) or interstrand crosslinking. Damage can often be repaired (DNA REPAIR). If the damage is extensive, it can induce APOPTOSIS. DNA Injury,DNA Lesion,DNA Lesions,Genotoxic Stress,Stress, Genotoxic,Injury, DNA,DNA Injuries
D004260 DNA Repair The removal of DNA LESIONS and/or restoration of intact DNA strands without BASE PAIR MISMATCHES, intrastrand or interstrand crosslinks, or discontinuities in the DNA sugar-phosphate backbones. DNA Damage Response
D004261 DNA Replication The process by which a DNA molecule is duplicated. Autonomous Replication,Replication, Autonomous,Autonomous Replications,DNA Replications,Replication, DNA,Replications, Autonomous,Replications, DNA
D006801 Humans Members of the species Homo sapiens. Homo sapiens,Man (Taxonomy),Human,Man, Modern,Modern Man
D000072481 DNA Ligase ATP ATP-dependent cellular enzyme which catalyzes DNA replication, repair and recombination through formation of internucleotide ester bonds between phosphate and deoxyribose moieties. Vertebrate cells encode three well-characterized DNA ligases, DNA ligase I, III and IV, all of which are related in structure and sequence. DNA ligases either require ATP or NAD. However, archaebacterial, viral, and some eubacterial DNA ligases are ATP-dependent. ATP-Dependent DNA Ligase,DNA Ligase I,DNA Ligase II,DNA Ligase III,DNA Ligase IIIalpha,DNA Ligase IV,DNA Ligases, ATP-Dependent,LIGIIIalpha Protein,Polydeoxyribonucleotide Synthase ATP,ATP Dependent DNA Ligase,ATP, DNA Ligase,ATP, Polydeoxyribonucleotide Synthase,ATP-Dependent DNA Ligases,DNA Ligase, ATP-Dependent,DNA Ligases, ATP Dependent,IIIalpha, DNA Ligase,Ligase ATP, DNA,Ligase I, DNA,Ligase II, DNA,Ligase III, DNA,Ligase IIIalpha, DNA,Ligase IV, DNA,Ligase, ATP-Dependent DNA,Ligases, ATP-Dependent DNA,Synthase ATP, Polydeoxyribonucleotide
D012441 Saccharomyces cerevisiae A species of the genus SACCHAROMYCES, family Saccharomycetaceae, order Saccharomycetales, known as "baker's" or "brewer's" yeast. The dried form is used as a dietary supplement. Baker's Yeast,Brewer's Yeast,Candida robusta,S. cerevisiae,Saccharomyces capensis,Saccharomyces italicus,Saccharomyces oviformis,Saccharomyces uvarum var. melibiosus,Yeast, Baker's,Yeast, Brewer's,Baker Yeast,S cerevisiae,Baker's Yeasts,Yeast, Baker

Related Publications

Annie M Sriramachandran, and Giuseppe Petrosino, and María Méndez-Lago, and Axel J Schäfer, and Liliana S Batista-Nascimento, and Nicola Zilio, and Helle D Ulrich
March 2021, PLoS biology,
Annie M Sriramachandran, and Giuseppe Petrosino, and María Méndez-Lago, and Axel J Schäfer, and Liliana S Batista-Nascimento, and Nicola Zilio, and Helle D Ulrich
February 2011, PloS one,
Annie M Sriramachandran, and Giuseppe Petrosino, and María Méndez-Lago, and Axel J Schäfer, and Liliana S Batista-Nascimento, and Nicola Zilio, and Helle D Ulrich
January 2021, Genome research,
Annie M Sriramachandran, and Giuseppe Petrosino, and María Méndez-Lago, and Axel J Schäfer, and Liliana S Batista-Nascimento, and Nicola Zilio, and Helle D Ulrich
August 2018, Journal of the American Chemical Society,
Annie M Sriramachandran, and Giuseppe Petrosino, and María Méndez-Lago, and Axel J Schäfer, and Liliana S Batista-Nascimento, and Nicola Zilio, and Helle D Ulrich
June 2021, STAR protocols,
Annie M Sriramachandran, and Giuseppe Petrosino, and María Méndez-Lago, and Axel J Schäfer, and Liliana S Batista-Nascimento, and Nicola Zilio, and Helle D Ulrich
December 2016, DNA repair,
Annie M Sriramachandran, and Giuseppe Petrosino, and María Méndez-Lago, and Axel J Schäfer, and Liliana S Batista-Nascimento, and Nicola Zilio, and Helle D Ulrich
July 2021, The FEBS journal,
Annie M Sriramachandran, and Giuseppe Petrosino, and María Méndez-Lago, and Axel J Schäfer, and Liliana S Batista-Nascimento, and Nicola Zilio, and Helle D Ulrich
June 2020, Nature methods,
Annie M Sriramachandran, and Giuseppe Petrosino, and María Méndez-Lago, and Axel J Schäfer, and Liliana S Batista-Nascimento, and Nicola Zilio, and Helle D Ulrich
January 2009, Methods in molecular biology (Clifton, N.J.),
Annie M Sriramachandran, and Giuseppe Petrosino, and María Méndez-Lago, and Axel J Schäfer, and Liliana S Batista-Nascimento, and Nicola Zilio, and Helle D Ulrich
March 2017, Genomics data,
Copied contents to your clipboard!