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Biology subjects

Mylarshchikov, D.

Publications and source records attributed to Mylarshchikov, D..

2 recordsLinked to original sources

Nested TAD hierarchy defines cohesion zones on replicated chromosomes

During each cell cycle, cells must not only duplicate DNA sequence but also preserve the three-dimensional genome architecture required for gene regulation and DNA repair. After replication, this requires coordination between cohesin-mediated loop extrusion and sister-chromatid cohesion for homology-directed DNA repair. Because extrusion promotes sister resolution whereas cohesion can impede extrusion, how both activities coexist on replicated chromosomes is unclear. Here we show that cohesin function is partitioned within the nested TAD hierarchy: cohesive cohesin accumulates at high-level boundaries to form "cohesion zones," while loop-extruding cohesin occupies boundaries across all hierarchical levels. Our data support a model in which this segregation emerges from dynamic interplay between cohesin pools and semi-permeable CTCF barriers, which act in cis and in trans to constrain sister-sister misalignment. Thus, a CTCF-defined boundary framework enables sister tethering while preserving dynamic loop folding, allowing replicated genomes to simultaneously support gene regulation and faithful DNA repair.

genomics↗

Cohesin guides homology search during DNA repairvia loops and sister chromatid linkages

Accurate repair of DNA double-strand breaks (DSBs) is essential for genome stability, and defective repair underlies diseases such as cancer. Homologous recombination uses an intact homologous sequence to faithfully restore damaged DNA, yet how broken DNA ends find homologous sites in a genome containing billions of non-homologous bases remains unclear. Here, we introduce sister-pore-C, a high-resolution method for mapping intra- and trans-molecular interactions in replicated chromosomes. We show that DSBs reshape chromosome architecture by recruiting two functionally distinct pools of cohesin. Loop-forming cohesin accumulates across a megabase-scale domain to control homology sampling within topologically associating domains (TADs) surrounding the break site, while cohesive cohesin concentrates at the break site to tether broken ends to the sister chromatid. This dual mechanism restricts the homology search space, highlighting how chromosome conformation helps preserve genomic integrity.

cell biology↗