Homozygous mutation of MTPAP causes cellular radiosensitivity and persistent DNA double-strand breaks

N T Martin1, K Nakamura2, U Paila3

  • 11] UCLA Department of Pathology and Laboratory Medicine, MacDonald Research Laboratories, Los Angeles, CA, USA [2] UCLA Biomedical Physics Interdepartmental Graduate Program, Los Angeles, CA, USA.

Cell Death & Disease
|March 22, 2014
PubMed

Insights

A mutation in mitochondrial poly-A-polymerase (MTPAP) causes cellular radiosensitivity by disrupting DNA repair and increasing reactive oxygen species (ROS). Antioxidants can reverse these DNA damage response defects.

Area of Science:

  • Molecular Biology
  • Genetics
  • Radiosensitivity Research

Background:

  • Rare human syndromes with radiosensitivity reveal DNA damage response pathways.
  • Mitochondrial poly-A-polymerase (MTPAP) was not previously linked to DNA damage response.

Purpose of the Study:

  • To investigate the role of MTPAP mutations in cellular radiosensitivity.
  • To elucidate the molecular mechanisms underlying MTPAP-associated radiosensitivity.

Main Methods:

  • Exome sequencing to identify MTPAP mutations.
  • Cell line analysis of radiosensitivity, DNA repair, ROS levels, and apoptosis.
  • Complementation assays using wild-type mtPAP cDNA.
  • Treatment with antioxidants (α-lipoic acid, n-acetylcysteine).

Main Results:

  • Homozygous MTPAP missense mutations caused cellular radiosensitivity.
  • MTPAP-deficient cells exhibited delayed DNA repair, increased double-strand breaks, elevated ROS, and enhanced apoptosis after irradiation.
  • Complementation with wild-type mtPAP abrogated radiosensitivity.
  • Antioxidant treatment reversed DNA repair and survival defects.

Conclusions:

  • MTPAP mutations lead to a radiosensitive phenotype characterized by increased DNA damage, impaired repair, and elevated ROS.
  • Disruption of ROS homeostasis is implicated in the pathogenesis of MTPAP-related radiosensitivity.
  • MTPAP is a novel player in the cellular response to ionizing radiation.

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