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Published on: March 20, 2018
Role of phase 2 enzyme induction in chemoprotection by dithiolethiones
M K Kwak1, P A Egner, P M Dolan
1Department of Environmental Health Sciences, Johns Hopkins University Bloomberg School of Public Health, 615 North Wolfe Street, Baltimore, MD 21205, USA.
Abstract:
One of the major mechanisms of protection against carcinogenesis, mutagenesis, and other forms of toxicity mediated by carcinogens is the induction of enzymes involved in their metabolism, particularly phase 2 enzymes such as glutathione S-transferases (GSTs), UDP-glucuronosyl transferases, and quinone reductases. Animal studies indicate that induction of phase 2 enzymes is a sufficient condition for obtaining chemoprevention and can be achieved by administering any of a diverse array of naturally-occurring and synthetic chemopreventive agents. Indeed, monitoring of enzyme induction has led to the recognition or isolation of novel, potent chemopreventive agents such as 1,2-dithiole-3-thiones, terpenoids and the isothiocyanate sulforaphane. For example, oltipraz, a substituted 1,2-dithiole-3-thione originally developed as an antischistosomal agent, possesses chemopreventive activity against different classes of carcinogens targeting multiple organs. Mechanistic studies in rodent models for chemoprevention of aflatoxin B(1) (AFB(1))-induced hepatocarcinogenesis by oltipraz indicates that increased expression of phase 2 genes is of central importance, although inhibition of phase 1 activation of AFB(1) can also contribute to protection. Exposure of rodents to 1,2-dithiole-3-thiones triggers nuclear accumulation of the transcription factor Nrf2 and its enhanced binding to the "antioxidant response element" (ARE), leading to transcriptional activation of a score of genes involved in carcinogen detoxication and attenuation of oxidative stress. Nrf2-deficient mice fail to induce many of these genes in response to dithiolethiones; moreover, basal expression of these genes is typically repressed. To test the hypothesis that enzyme induction is a useful strategy for chemoprevention in humans, three key elements are necessary: a candidate agent, an at-risk population and modulatable intermediate endpoints. Towards this end, a placebo-controlled, double blind clinical trial of oltipraz was conducted in residents of Qidong, PR China who are exposed to dietary aflatoxins and who are at high risk for the development of liver cancer. Oltipraz significantly enhanced excretion of a phase 2 product, aflatoxin-mercapturic acid, a derivative of the aflatoxin-glutathione conjugate, in the urine of study participants administered 125 mg oltipraz by mouth daily. Administration of 500 mg oltipraz once a week led to a significant reduction in the excretion of the primary oxidative metabolite of AFB(1), AFM(1), when measured shortly after drug administration. While this study highlighted the general feasibility of inducing phase 2 enzymes in humans, a longer term intervention is addressing whether protective alterations in aflatoxin metabolism can be sustained for extended periods of time in this high-risk population.
Insights
Chemoprevention can be achieved by inducing phase 2 detoxifying enzymes. Oltipraz, a potent inducer, enhanced aflatoxin metabolism in a human trial, showing promise for cancer prevention.
Area of Science:
- Biochemistry
- Toxicology
- Chemoprevention
Background:
- Carcinogen toxicity is mitigated by inducing detoxifying enzymes, particularly phase 2 enzymes like glutathione S-transferases (GSTs).
- Animal studies demonstrate that phase 2 enzyme induction is sufficient for chemoprevention and can be achieved using various agents.
- Oltipraz, a 1,2-dithiole-3-thione, shows chemopreventive activity and mechanistic studies in rodents link its efficacy to Nrf2-mediated induction of phase 2 genes.
Purpose of the Study:
- To evaluate the hypothesis that enzyme induction is a viable chemoprevention strategy in humans.
- To assess the efficacy of oltipraz in modulating carcinogen metabolism in an at-risk human population.
- To determine if oltipraz can induce phase 2 enzymes and alter aflatoxin metabolism in humans.
Main Methods:
- A placebo-controlled, double-blind clinical trial was conducted in Qidong, PR China, a population exposed to dietary aflatoxins and at high risk for liver cancer.
- Participants received either oltipraz or a placebo.
- Measurements included the urinary excretion of aflatoxin-mercapturic acid (a phase 2 metabolite) and aflatoxin M1 (AFM1, an oxidative metabolite).
Main Results:
- Oltipraz administration (125 mg daily) significantly increased the urinary excretion of aflatoxin-mercapturic acid.
- Weekly administration of oltipraz (500 mg) significantly reduced the excretion of AFM1 shortly after dosing.
- These findings indicate successful induction of phase 2 enzymes and modulation of aflatoxin metabolism in humans.
Conclusions:
- The study demonstrates the feasibility of inducing phase 2 enzymes in humans using oltipraz.
- Modulating carcinogen metabolism through enzyme induction is a promising strategy for chemoprevention in high-risk populations.
- Further long-term studies are needed to confirm sustained protective effects against aflatoxin-induced liver cancer.
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