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Biology subjects

Corless, S.

Publications and source records attributed to Corless, S..

2 recordsLinked to original sources

CpG islands act as topological sinks for transcription-induced DNA supercoiling

Strong evolutionary selection has maintained CpG-dense islands (CGIs) at the promoters of constitutively expressed genes throughout the vertebrate genome, suggesting an important role in regulating DNA topology. Here, using Twist-seq, a psoralen-based approach for quantitative genome-wide profiling of DNA supercoiling, we reveal distinct topological states across human gene promoters. We show that CGI promoters accumulate elevated levels of negative supercoiling relative to non-CGI promoters and define localised topological domains at highly transcribed genes. Integrating genome-wide analyses with reaction-diffusion modelling and coarse-grained molecular dynamics simulations, we find that this behaviour is encoded by the intrinsic physical properties of CGI DNA. The GC-rich sequence context promotes nucleosome depletion and focuses torsional stress onto embedded AT-rich pockets, driving localised DNA melting and plectoneme-tip bubble formation within promoter-proximal nucleosome-free regions. This provides an energetically favourable pathway for redistributing transcription-induced torsional stress through transient strand separation and writhe, consistent with increased ssDNA formation at CGI promoters observed by ssDNA-seq. We propose that CGIs function as sequence-encoded topological sinks that buffer supercoiling while maintaining a promoter architecture permissive for transcription initiation, thereby preserving promoter integrity and genome stability.

molecular biology↗

The bromodomain inhibitor JQ1 is a molecular glue targeting centromeres

Centromeres are the position on each chromosome that orchestrates the accurate partitioning of the genome during cell division. Centromere-dependent cell-cycle checkpoints are maintained by cancer cells to prevent catastrophic chromosome segregation defects in dividing cells1, 2, making centromeric chromatin a valuable target for anti-cancer therapeutics. However, no compounds have been identified that specifically target centromeric chromatin using standard drug discovery approaches. Here we develop a big-data approach to identify the protein composition of repetitive DNA loci, including centromeres, and screen candidate small molecules that act on centromeric chromatin composition. We discover that the BET bromodomain protein BRD4 localises to centromeres and regulates centromeric cohesion. We further show that the bromodomain inhibitor JQ1 affects centromeric BRD4 by stabilising a direct interaction between BRD4 and Centromere Protein B (CENP-B), acting as a molecular-glue that promotes centromere cohesion in a CENP-B-dependent manner. Strikingly, CENP-B transitions from a non-essential protein in JQ1-sensitive cells to the most significant determinant of cell-proliferation in JQ1-resistant cells. Our observations demonstrate a completely overlooked role for BRD4 and JQ1 in directly targeting the centromere, with important consequences for JQ1-derivatives currently entering clinical use3.

molecular biology↗