Mitochondrial ROS and radiation induced transformation in mouse embryonic fibroblasts

Changbin Du1, Zhen Gao, Venkatasubbaiah A Venkatesha

  • 1Free Radical and Radiation Biology Program, Department of Radiation Oncology, University of Iowa, Iowa City, IA, USA.

Cancer Biology & Therapy
|September 10, 2009
PubMed

Insights

Manganese superoxide dismutase (SOD2) deficiency increases radiation-induced cell transformation by elevating mitochondrial reactive oxygen species (ROS). This highlights SOD2

Area of Science:

  • Cell Biology
  • Radiation Biology
  • Biochemistry

Background:

  • Manganese superoxide dismutase (SOD2) is a key mitochondrial antioxidant enzyme.
  • Reactive oxygen species (ROS) from mitochondria are implicated in cellular processes.
  • Ionizing radiation (IR) can induce cellular transformation.

Purpose of the Study:

  • To investigate the role of SOD2 and mitochondria-derived ROS in IR-induced transformation.
  • To determine if altered SOD2 activity affects cellular response to IR.

Main Methods:

  • Utilized mouse embryonic fibroblasts (MEFs) with varying SOD2 genotypes (+/+, +/-, -/-).
  • Exposed MEFs to equitoxic doses of IR.
  • Assayed transformation frequency, cellular redox state, DNA damage, and cell cycle checkpoints.

Main Results:

  • Transformation frequency was significantly higher (approx. 5-fold) in SOD2 (-/-) MEFs post-IR.
  • Elevated cellular ROS levels and GSSG were observed at 72h post-IR in SOD2 (-/-) MEFs.
  • Accelerated G2 phase exit occurred in irradiated SOD2 (+/-) and SOD2 (-/-) MEFs.

Conclusions:

  • SOD2 activity and mitochondria-generated ROS play a regulatory role in IR-induced transformation.
  • Mitochondrial ROS accumulation contributes to late-stage DNA damage (micronuclei) post-IR.
  • SOD2 genotype influences cellular response and transformation potential following ionizing radiation exposure.