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Updated: Jun 20, 2026

Intestinal Epithelial Regeneration in Response to Ionizing Irradiation
Published on: July 27, 2022
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.
Abstract:
Manganese superoxide dismutase (SOD2) is a nuclear encoded and mitochondria localized antioxidant enzyme that converts mitochondria derived superoxide to hydrogen peroxide. This study investigates the hypothesis that mitochondria derived reactive oxygen species (ROS) regulate ionizing radiation (IR) induced transformation in normal cells. Mouse embryonic fibroblasts (MEFs) with wild type SOD2 (+/+), heterozygous SOD2 (+/-), and homozygous SOD2 (-/-) genotypes were irradiated with equitoxic doses of IR, and assayed for transformation frequency, cellular redox environment, DNA damage, and cell cycle checkpoint activation. Transformation frequency increased ( approximately 5-fold) in SOD2 (-/-) compared to SOD2 (+/+) MEFs. Cellular redox environment (GSH, GSSG, DHE and DCFH-oxidation) did not show any significant change within 24 h post-IR. However, a significant increase in cellular ROS levels was observed at 72 h post-IR in SOD2 (-/-) compared to SOD2 (+/+) MEFs, which was consistent with an increase in GSSG in SOD2 (-/-) MEFs. Late ROS accumulation was associated with an increase in micronuclei frequency in SOD2 (-/-) MEFs. Exit from G(2) was accelerated in irradiated SOD2 (+/-) and SOD2 (-/-) compared to SOD2 (+/+) MEFs. These results support the hypothesis that SOD2 activity and mitochondria generated ROS regulate IR induced transformation in mouse embryonic fibroblasts.
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.

