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Biology subjects

Kolesnikova, S.

Publications and source records attributed to Kolesnikova, S..

3 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↗

Diverse Ligands for Mycobacterial CYP124 Identified from Plant and Marine Compounds

Tuberculosis persists as a major global health threat, significantly exacerbated by the rise of drug-resistant strains. Cytochrome P450 of 124 family CYP124 from Mycobacterium tuberculosis (CYP124), implicated in host sterol metabolism and bacterial virulence, represents an emerging and promising therapeutic target. While its precise physiological role was previously debated, CYP124s confirmed ability to metabolize immunomodulatory host sterols underscores its pharmacological relevance. Utilizing surface plasmon resonance binding assays and UV-Vis spectral titration screening, we identified nine novel non-azole ligands for CYP124 from a library of 32 plant-derived and marine natural compounds. Among these hits, (25S)-5-cholestane-3{beta},4{beta},6,7,8,15{beta},16{beta},26-octaol (termed 15{beta}-octaol) and henricioside H2 (HD-4) induced characteristic difference spectra and formed long-lived inhibitory complexes with CYP124, exhibiting dissociation half-lives of 181 min and 65 min, respectively. However, their inhibitory potency was moderate, with IC50 values of approximately 86 M for 15{beta}-octaol and exceeding 100 M for HD-4. Complementary in silico molecular docking and analysis identified key conserved hydrophobic residues within the CYP124 active site crucial for ligand binding, suggesting a shared pharmacophore. Furthermore, structural similarity analysis revealed that 37 human endogenous metabolites, including known immunoregulatory sterols, bear resemblance to the identified CYP124 ligands. This finding points towards a potential sterol-mediated interplay at the host-pathogen interface. Collectively, these results provide a foundation for the future development of mechanism-based CYP124 inhibitors as therapeutics against multidrug-resistant tuberculosis.

biochemistry↗

Conformational asymmetry of replicated human chromosomes

DNA replication creates two sister chromatids that must acquire specific three-dimensional conformations to support genome function and stability. This organization is largely mediated by cohesin complexes, which extrude intra-chromosomal loops and link two chromatids, thus forming "chromatid cohesion". Although sister chromatids are genetically identical, the replication process is intrinsically asymmetric: each chromatid inherits a different parental DNA strand, while the new strands are synthesized using distinct "leading" and "lagging" mechanisms of the replication fork. Whether and how this molecular asymmetry impacts higher-order chromatin organization remains unknown. Using sister-chromatid-sensitive Hi-C, strand-specific FISH, and polymer modeling, we reveal a consistent, genome-wide shift in sister chromatid alignment, biased along the 5'-3' direction of the inherited strands. This shift persists without loop extrusion but is lost upon disruption of cohesion, implicating cohesive cohesins in maintaining the displacement. Polymer simulations indicate that a modest ([~]100 kb) misalignment of "cohesive" cohesins is responsible for the observed asymmetry. We propose two mechanistic models that explain how this displacement arises from replication fork asymmetry: either through the dislocation of cohesin during replication or through the asymmetric anchoring and subsequent random sliding of cohesin pairs. These findings reveal a previously unrecognized chromosome-scale asymmetry in sister chromatid organization, which has implications for homology search during DNA repair.

molecular biology↗