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Biology subjects

Reveil, M.

Publications and source records attributed to Reveil, M..

2 recordsLinked to original sources

CAD-C reveals centromere pairing and near-perfect alignment of sister chromatids

Three-dimensional (3D) genome organization plays a central role in gene regulation, chromatin folding, and genome stability. Although chromosome-conformation capture (3C)-derived methods have revolutionized our understanding of genome architecture, most remain limited in resolution, in their capacity to detect multiway interactions and in their ability to distinguish sister chromatids. Here, we present CAD-C, a new chromatin-conformation capture strategy that uses Caspase-Activated DNase (CAD) to fragment chromatin. Fragmentation of chromatin to the nucleosome level by CAD digestion substantially enhances proximity ligation, enabling formation of multi-nucleosome ligation products. Nanopore sequencing of these long DNA molecules allows reconstruction of chromatin fiber connectivity and 3D contact maps with single nucleosome resolution. Importantly, CAD-C is able to identify sister-chromatid interactions at high resolution which reveals that centromeres are closely paired and that cohesin maintains sister chromatids in near perfect alignment where the same nucleosomes are associated across sisters. Such precise alignment has significant implications for chromosome structure and the mechanisms by which cohesion is established.

genomics↗

Genome-wide ribonucleotide detection in Archaea

Genome integrity is constantly challenged by the incorporation of ribonucleotides (rNMPs) during DNA synthesis. Covalently linked single and several consecutive rNMPs occur in the genome of a number of organisms. They are mainly introduced by DNA polymerases during DNA replication and repair. In general, cells evolved ribonucleases H (RNases H) specialized in the removal of rNMPs from DNA to avoid any detrimental consequences on genome stability. Here, we describe the involvement of types 1 and/or 2 RNases H in processing embedded rNMPs in the genome of two archaeal species Haloferax volcanii and Thermococcus barophilus. Using combined approaches that include alkaline DNA fragmentation, high-throughput ribose-seq DNA sequencing and nucleotide pool quantification, the distribution, identity, level and sequence context of genomic rNMPs are reported and discussed regards to the intracellular balances of dNTPs and rNTPs. Our results confirm the predominant role of type 2 RNase H in the removal of genomic rNMPs. They also reveal rNMP-base compositions, densities, locations, and variations of surrounding bases at rNMP-embedment for each mutant. The cellular roles of the different RNases H in processing rNMPs in the genome of Archaea are discussed.

genomics↗