4.8 Article

Assessing kinetics and recruitment of DNA repair factors using high content screens

期刊

CELL REPORTS
卷 37, 期 13, 页码 -

出版社

CELL PRESS
DOI: 10.1016/j.celrep.2021.110176

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资金

  1. Bioinformatics Core, Mol. Bio. Department at MGH [NIDDK P30 DK040561]
  2. Bos-ton Area Diabetes Endocrinology Research Center [P30DK057521]
  3. Massachusetts General Hospital (MGH) Center for the Study of Inflammatory Bowel Disease [P30DK043351]
  4. NIH [P30 CAO13696, GM117064]
  5. M + Vision Advanced Fellowship Marie Curie COFUND FP7
  6. MGH Cancer Center Excellence Award
  7. Nova Scotia Graduate Scholarship
  8. Charles King Trust Post-doctoral Fellowship, Simeon J. Fortin Charitable Foundation, Bank of America, N.A., Trustee
  9. CPRIT PAAC grant [RP180804]
  10. NIEHS [R21ES027931]
  11. Natural Science and Engineering Research Council of Canada (NSERC) Discovery Grant [RGPIN-2020-04034]
  12. EU [ERC-2014-STG-638891]

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Researchers have developed two high-throughput systems for studying DNA repair kinetics and the recruitment of chromatin factors to double-strand breaks. By using a customized ChromORFeome library, they identified the role of PHF20 factor in affecting DNA repair process. These resources can facilitate our understanding and manipulation of DNA repair through genetic perturbations, small-molecule screens, and large-scale analysis.
Repair of genetic damage is coordinated in the context of chromatin, so cells dynamically modulate accessibility at DNA breaks for the recruitment of DNA damage response (DDR) factors. The identification of chromatin factors with roles in DDR has mostly relied on loss-of-function screens while lacking robust high-throughput systems to study DNA repair. In this study, we have developed two high-throughput systems that allow the study of DNA repair kinetics and the recruitment of factors to double-strand breaks in a 384-well plate format. Using a customized gain-of-function open-reading frame library (ChromORFeomelibrary), we identify chromatin factors with putative roles in the DDR. Among these, we find the PHF20 factor is excluded from DNA breaks, affecting DNA repair by competing with 53BP1 recruitment. Adaptable for genetic perturbations, small-molecule screens, and large-scale analysis of DNA repair, these resources can aid our understanding and manipulation of DNA repair.

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