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Drug-metabolizing enzymes: role in drug resistance in cancer
1Department of Biochemistry, School of Basic and Applied Sciences, Central University of Punjab, Bathinda, 151001, India.
Abstract:
Although continuous researches are going on for the discovery of new chemotherapeutic agents, resistance to these anticancer agents has made it really difficult to reach the fruitful results. There are many causes for this resistance that are being studied by the researchers across the world, but still, success is far because there are several factors that are going along unattended or have been studied less. Drug-metabolizing enzymes (DMEs) are one of these factors, on which less study has been conducted. DMEs include Phase I and Phase II enzymes. Cytochrome P450s (CYPs) are major Phase I enzymes while glutathione-S-transferases (GSTs), UDP-glucuronosyltransferases (UGTs), dihydropyrimidine dehydrogenases are the major enzymes belonging to the Phase II enzymes. These enzymes play an important role in detoxification of the xenobiotics as well as the metabolism of drugs, depending upon the tissue in which they are expressed. When present in tumorous tissues, they cause resistance by metabolizing the drugs and rendering them inactive. In this review, the role of these various enzymes in anticancer drug metabolism and the possibilities for overcoming the resistance have been discussed.
Insights
Drug resistance in cancer treatment is a major challenge. This review highlights how drug-metabolizing enzymes (DMEs), like Cytochrome P450s (CYPs) and Phase II enzymes, contribute to anticancer drug resistance by inactivating medications.
Area of Science:
- Biochemistry
- Pharmacology
- Oncology
Background:
- Anticancer drug resistance significantly hinders treatment efficacy.
- Factors contributing to resistance are complex and not fully understood.
- Drug-metabolizing enzymes (DMEs) are understudied contributors to resistance.
Purpose of the Study:
- To review the role of DMEs in anticancer drug metabolism.
- To explore strategies for overcoming drug resistance mediated by DMEs.
Main Methods:
- Literature review of studies on DMEs and anticancer drug resistance.
- Analysis of Phase I (e.g., Cytochrome P450s) and Phase II (e.g., GSTs, UGTs) enzymes.
- Discussion of enzyme expression in tumorous tissues.
Main Results:
- DMEs metabolize anticancer drugs, reducing their efficacy.
- Phase I enzymes like CYPs and Phase II enzymes (GSTs, UGTs) are key players.
- Tumor expression of DMEs is a significant mechanism of resistance.
Conclusions:
- Understanding DME activity is crucial for combating anticancer drug resistance.
- Targeting or modulating DMEs may offer new therapeutic strategies.
- Further research into DMEs can improve cancer treatment outcomes.
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