Genomic instability induced by mutant succinate dehydrogenase subunit D (SDHD) is mediated by O2(-•) and H2O2
Kjerstin M Owens1, Nūkhet Aykin-Burns, Disha Dayal
1Department of Radiation Oncology, Holden Comprehensive Cancer Center, The University of Iowa, Iowa City, IA 52242, USA.
Abstract:
SDHD mutations are associated with human cancers but the mechanisms that may contribute to transformation are unknown. The hypothesis that mutations in SDHD increase levels of superoxide leading to genomic instability was tested using site-directed mutagenesis to generate a truncated SDHD cDNA that was expressed in Chinese hamster fibroblasts. Stable expression of mutant SDHD resulted in 2-fold increases in steady-state levels of superoxide that were accompanied by a significantly increased mutation rate as well as a 70-fold increase in mutation frequency at the hprt locus. Overexpression of MnSOD or treatment with polyethylene glycol conjugated (PEG)-catalase suppressed mutation frequency in SDHD mutant cells by 50% (P<0.05). Simultaneous treatment with PEG-catalase and PEG-SOD suppressed mutation frequency in SDHD mutant cells by 90% (P<0.0005). Finally, 95% depletion of glutathione using l-buthionine-[S,R]-sulfoximine (BSO) in SDHD mutant cells caused a 4-fold increase in mutation frequency (P<0.05). These results demonstrate that mutations in SDHD cause increased steady-state levels of superoxide which significantly contributed to increases in mutation rates and frequency mediated by superoxide and hydrogen peroxide. These results support the hypothesis that mutations in SDHD may contribute to carcinogenesis by increasing genomic instability mediated by increased steady-state levels of reactive oxygen species.
Insights
Mutations in SDHD increase superoxide levels, leading to genomic instability and higher mutation rates. This suggests a mechanism for cancer development linked to reactive oxygen species.
Area of Science:
- Biochemistry
- Genetics
- Cancer Biology
Background:
- Succinate dehydrogenase D (SDHD) mutations are linked to human cancers.
- The precise mechanisms by which SDHD mutations contribute to cellular transformation remain unclear.
Purpose of the Study:
- To investigate the hypothesis that SDHD mutations elevate superoxide levels, causing genomic instability.
- To elucidate the role of reactive oxygen species (ROS) in SDHD-associated carcinogenesis.
Main Methods:
- Site-directed mutagenesis to create a truncated SDHD cDNA.
- Expression of mutant SDHD in Chinese hamster fibroblasts.
- Assessment of superoxide levels, mutation rates, and mutation frequencies.
- Intervention with antioxidants (MnSOD, PEG-catalase, PEG-SOD) and glutathione depletion (BSO).
Main Results:
- Stable expression of mutant SDHD increased superoxide levels twofold.
- Mutation rate and hprt locus mutation frequency increased significantly (70-fold).
- Antioxidant treatments (PEG-catalase, PEG-SOD) suppressed mutation frequency by 50-90%.
- Glutathione depletion (95%) increased mutation frequency fourfold.
Conclusions:
- SDHD mutations elevate steady-state superoxide levels, contributing to increased mutation rates and frequencies.
- Superoxide and hydrogen peroxide mediate the observed increases in genomic instability.
- These findings support the role of SDHD mutations in carcinogenesis via increased ROS-mediated genomic instability.
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