Related Experiment Video
Updated: Feb 10, 2026

Profiling Thiol Redox Proteome Using Isotope Tagging Mass Spectrometry
Published on: March 24, 2012
Imbalance in Protein Thiol Redox Regulation and Cancer-Preventive Efficacy of Selenium
Rayudu Gopalakrishna1, Usha Gundimeda1, Sarah Zhou1
1Department of Cell and Neurobiology, Keck School of Medicine, University of Southern California, Los Angeles, CA 90089, USA.
Abstract:
Although several experimental studies showed cancer-preventive efficacy of supplemental dietary selenium, human clinical trials questioned this efficacy. Identifying its molecular targets and mechanism is important in understanding this discrepancy. Methylselenol, the active metabolite of selenium, reacts with lipid hydroperoxides bound to protein kinase C (PKC) and is oxidized to methylseleninic acid (MSA). This locally generated MSA selectively inactivates PKC by oxidizing its critical cysteine sulfhydryls. The peroxidatic redox cycle occurring in this process may explain how extremely low concentrations of selenium catalytically modify specific membrane-bound proteins compartmentally separated from glutathione and selectively induce cytotoxicity in promoting cells. Mammalian thioredoxin reductase (TR) is itself a selenoenzyme with a catalytic selenocysteine residue. Together with thioredoxin (Trx), it catalyzes reduction of selenite and selenocystine by NADPH generating selenide which in the presence of oxygen redox cycles producing reactive oxygen species. Trx binds with high affinity to PKC and reverses PKC inactivation. Therefore, established tumor cells overexpressing TR and Trx may escape the cancer-preventive actions of selenium. This suggests that in some cases, certain selenoproteins may counteract selenometabolite actions. Lower concentrations of selenium readily inactivate antiapoptotic PKC isoenzymes e and a which have a cluster of vicinal thiols, thereby inducing apoptosis. Higher concentrations of selenium also inactivate proapoptotic enzymes such as proteolytically activated PKCd fragment, holo-PKCz, caspase-3, and c-Jun N-terminal kinase, which all have a limited number of critical cysteine residues and make tumor cells resistant to selenium-induced apoptosis. This may explain the intriguing U-shaped curve that is seen with dietary selenium intake and the extent of cancer prevention.
Insights
Dietary selenium
Area of Science:
- Biochemistry
- Molecular Biology
- Cancer Research
Background:
- Conflicting evidence exists regarding dietary selenium's cancer-preventive efficacy.
- Understanding selenium's molecular targets and mechanisms is crucial to resolve discrepancies.
- Methylselenol, a key selenium metabolite, interacts with protein kinase C (PKC).
Purpose of the Study:
- To elucidate the molecular mechanisms underlying selenium's cancer-preventive effects.
- To identify how selenium metabolites interact with cellular targets like PKC.
- To explain the observed U-shaped curve in selenium intake and cancer prevention.
Main Methods:
- Investigated the reaction between methylselenol and lipid hydroperoxides on PKC.
- Examined the role of methylseleninic acid (MSA) in selectively inactivating PKC.
- Analyzed the redox cycling involving mammalian thioredoxin reductase (TR) and thioredoxin (Trx).
Main Results:
- Methylselenol oxidizes to MSA, which inactivates PKC by oxidizing cysteine residues.
- Extremely low selenium concentrations can catalytically modify membrane-bound proteins.
- Overexpression of TR and Trx in tumor cells may confer resistance to selenium's effects.
- Selenium affects both antiapoptotic and proapoptotic enzymes, influencing cell death pathways.
Conclusions:
- Selenium's cancer-preventive action involves the selective inactivation of PKC by its metabolite MSA.
- The interplay between selenoproteins (TR, Trx) and selenium metabolites influences cellular response.
- Differential inactivation of PKC isoenzymes and other enzymes by varying selenium concentrations explains the U-shaped dose-response curve.
More Related Videos
11:25Targeting Cysteine Thiols for in Vitro Site-specific Glycosylation of Recombinant Proteins
Published on: October 4, 2017
06:12Evaluation of the Efficacy of the H. pylori Protein HP-NAP as a Therapeutic Tool for Treatment of Bladder Cancer in an Orthotopic Murine Model
Published on: May 29, 2015
Related Concept Videos
Cancer Prevention
Some...
Regulated Protein Degradation
Protein degradation plays two important roles in the cells. It helps to protect cells from misfolded or damaged proteins before they lead to a...
Regulated Protein Degradation
Covalently Linked Protein Regulators
These groups modify specific amino acids in a protein....
Balancing Redox Equations
Redox Reactions