Regulation of homologous recombinational repair by lamin B1 in radiation-induced DNA damage.

FASEB J

*Department of Cellular Biology, Research Institute for Radiation Biology and Medicine, and Research Center for the Mathematics on Chromatin Live Dynamics (RcMcD), Hiroshima University, Hiroshima, Japan; Department of Mutagenesis, Laboratory of Chromatin Dynamics, Radiation Biology Center, Kyoto University, Kyoto, Japan; Laboratory Center, Medical College of Soochow University, Suzhou, China; and Advanced ICT Research Institute Kobe, National Institute of Information and Communications Technology, Kobe, Japan

Published: June 2015

AI Article Synopsis

  • DNA double-strand breaks (DSBs), caused by ionizing radiation (IR), are critical DNA damage that threaten cell survival, and RAD51 plays a key role in repairing these breaks through homologous recombination (HR).
  • Researchers identified lamin B1 as an important interacting partner of RAD51, which helps stabilize RAD51 levels during DNA damage response, preventing its degradation.
  • Depletion of lamin B1 negatively affects RAD51 activation and focus formation, leading to decreased cell survival after ionizing radiation exposure, highlighting its role in enhancing DSB repair through RAD51 maintenance.

Article Abstract

DNA double-strand breaks (DSBs) are the major lethal lesion induced by ionizing radiation (IR). RAD51-dependent homologous recombination (HR) is one of the most important pathways in DSB repair and genome integrity maintenance. However, the mechanism of HR regulation by RAD51 remains unclear. To understand the mechanism of RAD51-dependent HR, we searched for interacting partners of RAD51 by a proteomics analysis and identified lamin B1 in human cells. Lamins are nuclear lamina proteins that play important roles in the structural organization of the nucleus and the regulation of chromosome functions. Immunoblotting analyses revealed that siRNA-mediated lamin B1 depletion repressed the DNA damage-dependent increase of RAD51 after IR. The repression was abolished by the proteasome inhibitor MG132, suggesting that lamin B1 stabilizes RAD51 by preventing proteasome-mediated degradation in cells with IR-induced DNA damage. We also showed that lamin B1 depletion repressed RAD51 focus formation and decreased the survival rates after IR. On the basis of these results, we propose that lamin B1 promotes DSB repair and cell survival by maintaining the RAD51 protein levels for HR upon DSB induction after IR.

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Source
http://dx.doi.org/10.1096/fj.14-265546DOI Listing

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