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Updated: Aug 20, 2025

Spectrophotometric Screening for Potential Inhibitors of Cytosolic Glutathione S-Transferases
Published on: October 10, 2020
Glutathione Transferase P1: Potential Therapeutic Target in Ovarian Cancer
Petar Simic1, Igor Pljesa2, Lazar Nejkovic1,3
1Obstetrics and Gynaecology Clinic Narodni Front, 11000 Belgrade, Serbia.
Abstract:
Chemotherapy resistance of ovarian cancer, regarded as the most lethal malignant gynecological disease, can be explained by several mechanisms, including increased activity of efflux transporters leading to decreased intracellular drug accumulation, increased efflux of the therapeutic agents from the cell by multidrug-resistance-associated protein (MRP1), enhanced DNA repair, altered apoptotic pathways, silencing of a number of genes, as well as drug inactivation, especially by glutathione transferase P1 (GSTP1). Indeed, GSTP1 has been recognized as the major enzyme responsible for the conversion of drugs most commonly used to treat metastatic ovarian cancer into less effective forms. Furthermore, GSTP1 may even be responsible for chemoresistance of non-GST substrate drugs by mechanisms such as interaction with efflux transporters or different signaling molecules involved in regulation of apoptosis. Recently, microRNAs (miRNAs) have been identified as important gene regulators in ovarian cancer, which are able to target GST-mediated drug metabolism in order to regulate drug resistance. So far, miR-186 and miR-133b have been associated with reduced ovarian cancer drug resistance by silencing the expression of the drug-resistance-related proteins, GSTP1 and MDR1. Unfortunately, sometimes miRNAs might even enhance the drug resistance in ovarian cancer, as shown for miR-130b. Therefore, chemoresistance in ovarian cancer treatment represents a very complex process, but strategies that influence GSTP1 expression in ovarian cancer as a therapeutic target, as well as miRNAs affecting GSTP1 expression, seem to represent promising predictors of chemotherapeutic response in ovarian cancer, while at the same time represent potential targets to overcome chemoresistance in the future.
Insights
Ovarian cancer chemoresistance involves drug inactivation by glutathione transferase P1 (GSTP1) and altered microRNA (miRNA) activity. Targeting GSTP1 and specific miRNAs offers potential strategies to overcome treatment resistance.
Area of Science:
- Gynecologic Oncology
- Cancer Pharmacology
- Molecular Biology
Background:
- Ovarian cancer is a lethal gynecological disease with significant chemotherapy resistance.
- Mechanisms of resistance include drug efflux, DNA repair, apoptosis alteration, gene silencing, and drug inactivation.
- Glutathione transferase P1 (GSTP1) is a key enzyme in inactivating common ovarian cancer drugs.
Purpose of the Study:
- To explore the role of GSTP1 and microRNAs (miRNAs) in ovarian cancer chemoresistance.
- To identify potential therapeutic targets and predictors of chemotherapeutic response.
Main Methods:
- Review of mechanisms of chemotherapy resistance in ovarian cancer.
- Analysis of the role of GSTP1 in drug inactivation and chemoresistance.
- Investigation of miRNA regulation of GSTP1 and drug resistance.
Main Results:
- GSTP1 significantly contributes to chemoresistance by inactivating therapeutic agents.
- Specific miRNAs (miR-186, miR-133b) can reduce chemoresistance by targeting GSTP1 and MDR1.
- Other miRNAs (e.g., miR-130b) may enhance chemoresistance.
Conclusions:
- Ovarian cancer chemoresistance is a complex multifactorial process.
- Targeting GSTP1 expression and understanding miRNA interactions are promising strategies for overcoming chemoresistance.
- GSTP1 and associated miRNAs may serve as predictive biomarkers for treatment response.
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