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Published on: June 28, 2024
Thioredoxin reductase deficiency potentiates oxidative stress, mitochondrial dysfunction and cell death in
Pamela Lopert1, Brian J Day, Manisha Patel
1Neuroscience Program, University of Colorado Anschutz Medical Campus, Aurora, Colorado, United States of America.
Abstract:
Mitochondria are considered major generators of cellular reactive oxygen species (ROS) which are implicated in the pathogenesis of neurodegenerative diseases such as Parkinson's disease (PD). We have recently shown that isolated mitochondria consume hydrogen peroxide (H₂O₂) in a substrate- and respiration-dependent manner predominantly via the thioredoxin/peroxiredoxin (Trx/Prx) system. The goal of this study was to determine the role of Trx/Prx system in dopaminergic cell death. We asked if pharmacological and lentiviral inhibition of the Trx/Prx system sensitized dopaminergic cells to mitochondrial dysfunction, increased steady-state H₂O₂ levels and death in response to toxicants implicated in PD. Incubation of N27 dopaminergic cells or primary rat mesencephalic cultures with the Trx reductase (TrxR) inhibitor auranofin in the presence of sub-toxic concentrations of parkinsonian toxicants paraquat; PQ or 6-hydroxydopamine; 6OHDA (for N27 cells) resulted in a synergistic increase in H₂O₂ levels and subsequent cell death. shRNA targeting the mitochondrial thioredoxin reductase (TrxR2) in N27 cells confirmed the effects of pharmacological inhibition. A synergistic decrease in maximal and reserve respiratory capacity was observed in auranofin treated cells and TrxR2 deficient cells following incubation with PQ or 6OHDA. Additionally, TrxR2 deficient cells showed decreased basal mitochondrial oxygen consumption rates. These data demonstrate that inhibition of the mitochondrial Trx/Prx system sensitizes dopaminergic cells to mitochondrial dysfunction, increased steady-state H₂O₂, and cell death. Therefore, in addition to their role in the production of cellular H₂O₂ the mitochondrial Trx/Prx system serve as a major sink for cellular H₂O₂ and its disruption may contribute to dopaminergic pathology associated with PD.
Insights
Inhibition of the mitochondrial thioredoxin/peroxiredoxin (Trx/Prx) system increases hydrogen peroxide (H₂O₂) levels and sensitizes dopaminergic cells to death. This disruption may contribute to Parkinson's disease pathology.
Area of Science:
- Neuroscience
- Cell Biology
- Biochemistry
Background:
- Mitochondria generate reactive oxygen species (ROS), implicated in Parkinson's disease (PD).
- The thioredoxin/peroxiredoxin (Trx/Prx) system is a key pathway for hydrogen peroxide (H₂O₂) consumption by mitochondria.
Purpose of the Study:
- To investigate the role of the mitochondrial Trx/Prx system in dopaminergic cell death.
- To determine if inhibiting the Trx/Prx system sensitizes cells to PD-related toxicants.
Main Methods:
- Pharmacological inhibition of thioredoxin reductase (TrxR) using auranofin.
- Genetic inhibition of mitochondrial TrxR (TrxR2) using shRNA.
- Exposure of dopaminergic cells to PD toxicants (paraquat, 6-hydroxydopamine).
- Measurement of H₂O₂ levels, cell viability, and mitochondrial respiration.
Main Results:
- Auranofin and TrxR2 inhibition synergistically increased H₂O₂ levels and cell death in response to toxicants.
- Inhibition of the Trx/Prx system led to decreased mitochondrial respiratory capacity.
- TrxR2 deficiency reduced basal mitochondrial oxygen consumption.
Conclusions:
- The mitochondrial Trx/Prx system acts as a critical H₂O₂ sink, not just a producer.
- Disruption of this system enhances dopaminergic cell vulnerability to mitochondrial dysfunction and death.
- Impaired Trx/Prx function is a potential contributor to Parkinson's disease pathogenesis.
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