Association of RAD51C germline mutations with breast cancer among Bahamians
BREAST CANCER RESEARCH AND TREATMENT
Authors: Bagherzadeh, Maryam; Szymiczek, Agata; Donenberg, Talia; Butler, Raleigh; Hurley, Judith; Narod, Steven A.; Akbari, Mohammad R.
Abstract
Purpose RAD51C is known as an ovarian cancer gene; however, its role in breast cancer susceptibility is less clear. As part of a larger study, we assessed the role of germline RAD51C mutations in breast cancer development. Methods We studied 387 unselected, BRCA1- and BRCA2-negative, Bahamian breast cancer cases and 653 controls to search for novel genetic associations with breast cancer development. During the first phase of the study, whole exome sequencing was utilized in 96 cases to identify an association between novel genes and breast cancer susceptibility. In the second phase of the study, targeted gene sequencing was utilized in the entirety of the cases and controls to identify an association between novel genetic mutations and breast cancer development. Results A RAD51C mutation was found in five breast cancer cases and in no control (5/387 versus 0/653;p = 0.007). None of the mutation-positive cases reported a family history of ovarian cancer. Conclusions These data support increasing evidence that RAD51C mutations contribute to breast cancer susceptibility, although the impact may vary substantially from country to country.
CDC7 kinase promotes MRE11 fork processing, modulating fork speed and chromosomal breakage
EMBO REPORTS
Authors: Rainey, Michael D.; Quinlan, Aisling; Cazzaniga, Chiara; Mijic, Sofija; Martella, Oliviano; Krietsch, Jana; Goder, Anja; Lopes, Massimo; Santocanale, Corrado
Abstract
The CDC7 kinase is essential for the activation of DNA replication origins and has been implicated in the replication stress response. Using a highly specific chemical inhibitor and a chemical genetic approach, we now show that CDC7 activity is required to coordinate multiple MRE11-dependent processes occurring at replication forks, independently from its role in origin firing. CDC7 localizes at replication forks and, similarly to MRE11, mediates active slowing of fork progression upon mild topoisomerase inhibition. Both proteins are also retained on stalled forks, where they promote fork processing and restart. Moreover, MRE11 phosphorylation and localization at replication factories are progressively lost upon CDC7 inhibition. Finally, CDC7 activity at reversed forks is required for their pathological MRE11-dependent degradation in BRCA2-deficient cells. Thus, upon replication interference CDC7 is a key regulator of fork progression, processing and integrity. These results highlight a dual role for CDC7 in replication, modulating both initiation and elongation steps of DNA synthesis, and identify a key intervention point for anticancer therapies exploiting replication interference.