4.7 Article

DNA-PKcs deficiency leads to persistence of oxidatively induced clustered DNA lesions in human tumor cells

期刊

FREE RADICAL BIOLOGY AND MEDICINE
卷 48, 期 10, 页码 1435-1443

出版社

ELSEVIER SCIENCE INC
DOI: 10.1016/j.freeradbiomed.2010.02.033

关键词

Oxidative clustered DNA lesions; DNA-PKcs; Cancer; DNA damage; gamma-H2AX; Free radicals

资金

  1. East Carolina University
  2. National Cancer Institute, NIH

向作者/读者索取更多资源

DNA-dependent protein kinase (DNA-PM) is a key non-homologous-end-joining (NHEJ) nuclear serine/threonine protein kinase involved in various DNA metabolic and damage signaling pathways contributing to the maintenance of genomic stability and prevention of cancer. To examine the role of DNA-PM in processing of non-DSB clustered DNA damage, we have used three models of DNA-PM deficiency, i.e., chemical inactivation of its kinase activity by the novel inhibitors IC86621 and NU7026, knockdown and complete absence of the protein in human breast cancer (MCF-7) and glioblastoma cell lines (MO59-J/K). A compromised DNA-PM repair pathway led to the accumulation of clustered DNA lesions induced by gamma-rays. Tumor cells lacking protein expression or with inhibited kinase activity showed a marked decrease in their ability to process oxidatively induced non-DSB clustered DNA lesions measured using a modified version of pulsed-field gel electrophoresis or single-cell gel electrophoresis (comet assay). In all cases, DNA-PM inactivation led to a higher level of lesion persistence even after 24-72 h of repair. We suggest a model in which DNA-PM deficiency affects the processing of these clusters first by compromising base excision repair and second by the presence of catalytically inactive DNA-PM inhibiting the efficient processing of these lesions owing to the failure of DNA-PM to disassociate from the DNA ends. The information rendered will be important for understanding not only cancer etiology in the presence of an NHEJ deficiency but also cancer treatments based on the induction of oxidative stress and inhibition of cluster repair. (C) 2010 Elsevier Inc. All rights reserved.

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