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Updated: Nov 19, 2025

Simultaneous Measurement of Superoxide/Hydrogen Peroxide and NADH Production by Flavin-containing Mitochondrial Dehydrogenases
Published on: February 24, 2018
Unique Cellular and Biochemical Features of Human Mitochondrial Peroxiredoxin 3 Establish the Molecular Basis for Its
Kimberly J Nelson1, Terri Messier2, Stephanie Milczarek2
1Center for Structural Biology, Department of Biochemistry, Wake Forest School of Medicine, Medical Center Blvd., Winston-Salem, NC 27157, USA.
Abstract:
A central hallmark of tumorigenesis is metabolic alterations that increase mitochondrial reactive oxygen species (mROS). In response, cancer cells upregulate their antioxidant capacity and redox-responsive signaling pathways. A promising chemotherapeutic approach is to increase ROS to levels incompatible with tumor cell survival. Mitochondrial peroxiredoxin 3 (PRX3) plays a significant role in detoxifying hydrogen peroxide (H2O2). PRX3 is a molecular target of thiostrepton (TS), a natural product and FDA-approved antibiotic. TS inactivates PRX3 by covalently adducting its two catalytic cysteine residues and crosslinking the homodimer. Using cellular models of malignant mesothelioma, we show here that PRX3 expression and mROS levels in cells correlate with sensitivity to TS and that TS reacts selectively with PRX3 relative to other PRX isoforms. Using recombinant PRXs 1-5, we demonstrate that TS preferentially reacts with a reduced thiolate in the PRX3 dimer at mitochondrial pH. We also show that partially oxidized PRX3 fully dissociates to dimers, while partially oxidized PRX1 and PRX2 remain largely decameric. The ability of TS to react with engineered dimers of PRX1 and PRX2 at mitochondrial pH, but inefficiently with wild-type decameric protein at cytoplasmic pH, supports a novel mechanism of action and explains the specificity of TS for PRX3. Thus, the unique structure and propensity of PRX3 to form dimers contribute to its increased sensitivity to TS-mediated inactivation, making PRX3 a promising target for prooxidant cancer therapy.
Insights
Thiostrepton (TS) targets mitochondrial peroxiredoxin 3 (PRX3), a key antioxidant in cancer. Its unique structure allows selective inactivation of PRX3, making it a promising prooxidant cancer therapy targeting reactive oxygen species.
Area of Science:
- Biochemistry
- Cell Biology
- Oncology
Background:
- Tumorigenesis involves metabolic shifts increasing mitochondrial reactive oxygen species (mROS).
- Cancer cells enhance antioxidant defenses and redox signaling to survive elevated ROS.
- Increasing ROS is a potential chemotherapeutic strategy against cancer.
Purpose of the Study:
- To investigate the mechanism of thiostrepton (TS) inactivation of mitochondrial peroxiredoxin 3 (PRX3).
- To determine if PRX3 is a selective target for TS in cancer therapy.
- To explore the role of PRX3 structure and redox state in TS sensitivity.
Main Methods:
- Utilized cellular models of malignant mesothelioma.
- Assessed PRX3 expression, mROS levels, and sensitivity to TS.
- Employed recombinant peroxiredoxins (PRXs) 1-5 and engineered PRX dimers.
- Investigated TS reactivity at different pH conditions mimicking cellular compartments.
Main Results:
- PRX3 expression and mROS levels correlated with TS sensitivity in mesothelioma cells.
- TS selectively reacted with PRX3 over other PRX isoforms.
- TS preferentially bound to reduced PRX3 dimers at mitochondrial pH.
- Oxidized PRX3 dissociated into dimers, unlike PRX1 and PRX2 which remained decameric.
Conclusions:
- PRX3's unique dimeric structure and propensity for dissociation contribute to its selective inactivation by TS.
- TS's mechanism of action relies on its reactivity with PRX3 dimers at mitochondrial pH.
- PRX3 is a promising therapeutic target for prooxidant cancer therapy by increasing ROS levels.
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