4.5 Article

Dissection of DNA double-strand-break repair using novel single-molecule forceps

期刊

NATURE STRUCTURAL & MOLECULAR BIOLOGY
卷 25, 期 6, 页码 482-+

出版社

NATURE PUBLISHING GROUP
DOI: 10.1038/s41594-018-0065-1

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资金

  1. China Scholarship Council
  2. University of Paris V
  3. Frontieres du Vivant doctoral program
  4. Ligue Nationale Contre le Cancer Equipes Labellisees program
  5. PSL University (NanoRep grant)
  6. University of Paris VII
  7. CNRS
  8. Ecole normale superieure
  9. National Institute of Health [P01CA92584, R01GM110387]
  10. Wellcome Trust [093167MA, 200814/Z/16/Z]
  11. Robert A. Welch Chemistry Chair
  12. Cancer Prevention and Research Institute of Texas
  13. University of Texas System Science and Technology Acquisition and Retention

向作者/读者索取更多资源

Repairing DNA double-strand breaks (DSBs) by nonhomologous end joining (NKEJ) requires multiple proteins to recognize and bind DNA ends, process them for compatibility, and ligate them together. We constructed novel DNA substrates for single-molecule nanomanipulation, allowing us to mechanically detect, probe, and rupture in real-time DSB synapsis by specific human NHEJ components. DNA-PKcs and Ku allow DNA end synapsis on the 100 ms timescale, and the addition of PAXX extends this lifetime to -2 s. Further addition of XRCC4, XLF and ligase IV results in minute-scale synapsis and leads to robust repair of both strands of the nanomanipulated DNA. The energetic contribution of the different components to synaptic stability is typically on the scale of a few kilocalories per mole. Our results define assembly rules for NHEJ machinery and unveil the importance of weak interactions, rapidly ruptured even at sub-picoNewton forces, in regulating this multicomponent chemomechanical system for genome integrity.

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