Search bioRxiv⌕ Search

Biology subjects

Kaya, V. O.

Publications and source records attributed to Kaya, V. O..

2 recordsLinked to original sources

RNAPII and NER stall loop extrusion at UV lesions, shaping the 3D genome during repair

The three-dimensional (3D) genome architecture is highly elastic, adapting to nuclear processes such as transcription and the DNA damage response (Dekker & Mirny 2016; Carre-Simon & Fabre 2021). Nucleotide excision repair (NER) acts within this chromatin context to detect and repair mutagenic lesions induced by ultraviolet (UV) irradiation (Sancar 2016). UV irradiation has been shown to induce restructuring of the 3D genome across multiple scales, including chromatin compartments, domains, and loops. However, the extent to which NER activity contributes to this remodelling is unresolved, as the only prior study tracking such UV-induced changes was limited to repair-proficient cells (Kaya & Adebali 2025). Here, by combining genome-wide chromatin profiling of repair-deficient human cells with loop extrusion simulations, we show that the transcription-coupled NER initiator RNA polymerase II (RNAPII) and the global-genome NER initiator Xeroderma pigmentosum group C (XPC) each constrain loop extrusion upon UV irradiation. These events counter the loop-lengthening effects of UV-induced transcriptional shutdown, leading to shorter chromatin loops and reinforced chromatin domains that facilitate efficient lesion recognition and repair. The contribution by RNAPII extends its role beyond activating transcription-coupled repair to promoting a genome-wide repair-permissive state. The contribution by XPC establishes 3D genome reorganisation as an active mechanism both initiated and harnessed by DNA repair, rather than a passive consequence of DNA damage. Together, these findings advance our understanding of how nuclear processes coordinate on and alter a shared chromatin substrate to preserve genome integrity.

genomics↗

UV-induced reorganization of 3D genome mediates DNA damage response

While it is well-established that UV radiation threatens genomic integrity, the precise mechanisms by which cells orchestrate DNA damage response and repair within the context of 3D genome architecture remain unclear. Here, we address this gap by investigating the UV-induced reorganization of the 3D genome and its critical role in mediating damage response. Employing temporal maps of contact matrices and transcriptional profiles, we illustrate the immediate and holistic changes in genome architecture post-irradiation, emphasizing the significance of this reconfiguration for effective DNA repair processes. We demonstrate that UV radiation triggers a comprehensive restructuring of the 3D genome structure at all levels, including loops, topologically associating domains and compartments. Through the analysis of DNA damage and excision repair maps, we uncover a correlation between genome folding, gene regulation, damage formation probability, and repair efficacy. We show that adaptive reorganization of the 3D genome is a key mediator of the damage response, providing new insights into the complex interplay of genomic structure and cellular defense mechanisms against UV-induced damage, thereby advancing our understanding of cellular resilience.

genomics↗