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Canas, J. C.

Publications and source records attributed to Canas, J. C..

2 recordsLinked to original sources

A recurrent pathogenic BRCA2 truncating variant reveals a role for BRCA2-PCAF complex in modulating NF-κB-driven transcription

Germline monoallelic truncating mutations in BRCA2, a critical mediator of homologous recombination (HR), predispose individuals to breast and ovarian cancer. While tumorigenesis is usually attributed to biallelic inactivation, emerging evidence suggests that haploinsufficiency may suffice in certain contexts. To investigate this, we recreated two BRCA2 pathogenic truncating variants in heterozygosis in non-tumorigenic breast epithelial cells. Cells carrying a truncating mutation that was not produced prompted sensitivity to PARP inhibitors (PARPi) and reduced the HR capacity indicating haploinsufficiency. Surprisingly, the other variant was expressed as a truncated product and prompted a transcriptional rewiring. Mechanistically, the truncated BRCA2 product formed abnormal oligomers with full-length BRCA2 and bound to the PCAF acetyltransferase, sequestering it. This led to reduced global histone H4 acetylation and decreased NF-{kappa}B transcriptional activity, ultimately impairing epithelial cell migration--a process also altered in tumors. Our findings uncover a previously unrecognized BRCA2-PCAF axis that modulates NF-{kappa}B-driven transcriptional program, a process that is co-opted by a recurrent BRCA2 pathogenic variant.

cancer biology↗

Strand asymmetry of DNA damage tolerance mechanisms

DNA damage tolerance mechanisms are crucial for timely and accurate chromosomal replication in response to DNA polymerase stalling. Ubiquitylation of the replicative sliding clamp PCNA drives major tolerance pathways, error-free homologous recombination template switching and error-prone translesion synthesis, though their dynamics at forks and pathway choice determinants are poorly understood. Using strand-specific genomics we revealed an asymmetric nature of tolerance pathways, characterized by preferential template switching-driven recombinase engagement of stalled nascent lagging strands and translesion synthesis usage in response to leading strand polymerase stalling. This asymmetry, determined by a strand-dynamic interplay between PCNA-ubiquitin writers and erasers, likely stems from necessities dictated by leading and lagging strand replication mechanisms and has implications for asymmetric mutation inheritance. One-Sentence SummaryDNA damage tolerance mechanisms respond asymmetrically to leading or lagging strand polymerase blocks.

molecular biology↗