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Prdx5 in the Regulation of Tuberous Sclerosis Complex Mutation-Induced Signaling Mechanisms
Judit Bovari-Biri1, ElHusseiny Mohamed Mahmoud Abdelwahab1, Kitti Garai1
1Department of Pharmaceutical Biotechnology, Faculty of Pharmacy, University of Pecs, 2. Rokus Str, H-7624 Pecs, Hungary.
Abstract:
(1) Background: Tuberous sclerosis complex (TSC) mutations directly affect mTORC activity and, as a result, protein synthesis. In several cancer types, TSC mutation is part of the driver mutation panel. TSC mutations have been associated with mitochondrial dysfunction, tolerance to reactive oxygen species due to increased thioredoxin reductase (TrxR) enzyme activity, tolerance to endoplasmic reticulum (ER) stress, and apoptosis. The FDA-approved drug rapamycin is frequently used in clinical applications to inhibit protein synthesis in cancers. Recently, TrxR inhibitor auranofin has also been involved in clinical trials to investigate the anticancer efficacy of the combination treatment with rapamycin. We aimed to investigate the molecular background of the efficacy of such drug combinations in treating neoplasia modulated by TSC mutations. (2) Methods: TSC2 mutant and TSC2 wild-type (WT) cell lines were exposed to rapamycin and auranofin in either mono- or combination treatment. Mitochondrial membrane potential, TrxR enzyme activity, stress protein array, mRNA and protein levels were investigated via cell proliferation assay, electron microscopy, etc. (3) Results: Auranofin and rapamycin normalized mitochondrial membrane potential and reduced proliferation capacity of TSC2 mutant cells. Database analysis identified peroxiredoxin 5 (Prdx5) as the joint target of auranofin and rapamycin. The auranofin and the combination of the two drugs reduced Prdx5 levels. The combination treatment increased the expression of heat shock protein 70, a cellular ER stress marker. (4) Conclusions: After extensive analyses, Prdx5 was identified as a shared target of the two drugs. The decreased Prdx5 protein level and the inhibition of both TrxR and mTOR by rapamycin and auranofin in the combination treatment made ER stress-induced cell death possible in TSC2 mutant cells.
Insights
Tuberous sclerosis complex (TSC) mutations drive cancer by affecting protein synthesis. Combining rapamycin and auranofin targets peroxiredoxin 5 (Prdx5), inducing cell death in TSC mutant cells.
Area of Science:
- Oncology
- Molecular Biology
- Biochemistry
Background:
- Tuberous sclerosis complex (TSC) mutations impact mTORC activity, protein synthesis, and cellular stress responses.
- TSC mutations are linked to mitochondrial dysfunction, increased reactive oxygen species tolerance, and endoplasmic reticulum (ER) stress resistance.
- Rapamycin (mTOR inhibitor) and auranofin (thioredoxin reductase inhibitor) are investigated for combined anticancer efficacy in TSC-mutated cancers.
Purpose of the Study:
- To investigate the molecular mechanisms underlying the efficacy of combined rapamycin and auranofin treatment in neoplasms associated with TSC mutations.
- To identify shared molecular targets of rapamycin and auranofin in TSC2-mutant cells.
Main Methods:
- Utilized TSC2 mutant and wild-type cell lines exposed to rapamycin and auranofin (mono- and combination therapy).
- Assessed mitochondrial membrane potential, thioredoxin reductase (TrxR) enzyme activity, and stress protein expression.
- Employed cell proliferation assays, electron microscopy, and analysis of mRNA and protein levels.
Main Results:
- Combined rapamycin and auranofin normalized mitochondrial membrane potential and reduced proliferation in TSC2 mutant cells.
- Peroxiredoxin 5 (Prdx5) was identified as a joint target, with its levels decreased by auranofin and combination treatment.
- Combination therapy upregulated heat shock protein 70, an ER stress marker.
Conclusions:
- Peroxiredoxin 5 (Prdx5) is a shared molecular target of rapamycin and auranofin.
- Combined inhibition of TrxR and mTOR, alongside decreased Prdx5, facilitates ER stress-induced cell death in TSC2 mutant cells.
- This combination therapy presents a potential strategy for treating TSC-associated cancers.
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