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Increased gene amplification in immortal rodent cells deficient for the DNA-dependent protein kinase catalytic

C Mondello1, P Rebuzzini, M Dolzan

  • 1Istitituto di Genetica Biochimica ed Evoluzionistica, Consiglio Nazionale delle Ricerche, Via Abbiategrasso 207, 27100 Pavia, Italy. mondello@igbe.pv.cnr.it

Cancer Research
|June 5, 2001
PubMed

Insights

Defects in DNA repair, specifically the DNA-dependent protein kinase catalytic subunit (DNA-PKcs), significantly increase gene amplification frequency in immortalized cells. This suggests DNA-PKcs is crucial for preventing gene amplification in normal cells.

Area of Science:

  • Genetics
  • Molecular Biology
  • Cancer Research

Background:

  • Gene amplification is a common anomaly in tumor cells but not normal cells.
  • DNA double-strand breaks (DSBs) are key initiators of gene amplification.
  • Nonhomologous end-joining (NHEJ) pathway, requiring DNA-PKcs, repairs DSBs in mammals.

Purpose of the Study:

  • To investigate the role of DNA-PKcs in gene amplification.
  • To determine if impaired DSB repair affects gene amplification frequency.
  • To compare gene amplification in normal and immortalized cells with and without functional DNA-PKcs.

Main Methods:

  • Utilized radiosensitive hamster cell line V3 with a DNA-PKcs mutation.
  • Assessed N-(phosphonacetyl)-L-aspartate (PALA) resistance as a measure of CAD gene amplification.
  • Analyzed gene amplification in mouse embryo fibroblasts (MEFs) with ablated DNA-PKcs genes.

Main Results:

  • The V3 cell line showed over a tenfold increase in CAD gene amplification frequency compared to controls.
  • DNA-PKcs-deficient MEFs exhibited higher amplification rates only after immortalization.
  • Primary DNA-PKcs(-/-) MEFs showed cell cycle arrest and no PALA-resistant clones upon PALA treatment.

Conclusions:

  • Lack of DNA-PKcs enhances gene amplification probability in permissive (immortalized) cells.
  • DNA-PKcs is essential for preventing gene amplification in normal, non-immortalized cells.
  • Impaired DNA repair mechanisms contribute to genomic instability and potential oncogenesis.

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