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Updated: Aug 16, 2026

Implementation of In Vitro Drug Resistance Assays: Maximizing the Potential for Uncovering Clinically Relevant Resistance Mechanisms
Published on: December 9, 2015
Human multidrug resistance associated protein 4 confers resistance to camptothecins
Quan Tian1, Jing Zhang, Theresa May Chin Tan
1Department of Pharmacy, Faculty of Science, National University of Singapore, Science Drive 4, Singapore 117543, Singapore.
Purpose:
The multidrug resistance associated protein (MRP) 4 is a member of the adenosine triphosphate (ATP)-binding cassette transporter family. Camptothecins (CPTs) have shown substantial anticancer activity against a broad spectrum of tumors by inhibiting DNA topoisomerase I, but tumor resistance is one of the major reasons for therapeutic failure. P-glycoprotein, breast cancer resistance protein, MRP1, and MRP2 have been implicated in resistance to various CPTs including CPT-11 (irinotecan), SN-38 (the active metabolite of CPT-11), and topotecan. In this study, we explored the resistance profiles and intracellular accumulation of a panel of CPTs including CPT, CPT-11, SN-38, rubitecan, and 10-hydroxy-CPT (10-OH-CPT) in HepG2 cells with stably overexpressed human MRP4. Other anticancer agents such as paclitaxel, cyclophosphamide, and carboplatin were also included.
Methods:
HepG2 cells were transfected with an empty vehicle plasmid (V/HepG2) or human MRP4 (MRP4/HepG2). The resistance profiles of test drugs in exponentially growing V/HepG2 and MRP4/HepG2 cells were examined using the 3-(4,5-dimethylthiazol-2-yl)-2,5-diphenyltetrazonium bromide (MTT) assay with 4 or 48 h exposure time of the test drug in the absence or presence of various MRP4 inhibitors. The accumulation of CPT-11, SN-38, and paclitaxel by V/HepG2 and MRP4/HepG2 cells was determined by validated high-performance liquid chromatography methods.
Results:
Based on the resistance folds from the MTT assay with 48 h exposure time of the test drug, MRP4 conferred resistance to CPTs tested in the order 10-OH-CPT (14.21) > SN-38 carboxylate (9.70) > rubitecan (9.06) > SN-38 lactone (8.91) > CPT lactone (7.33) > CPT-11 lactone (5.64) > CPT carboxylate (4.30) > CPT-11 carboxylate (2.68). Overall, overexpression of MRP4 increased the IC50 values 1.78- to 14.21-fold for various CPTs in lactone or carboxylate form. The resistance of MRP4 to various CPTs tested was significantly reversed in the presence of dl-buthionine-(S,R)-sulfoximine (BSO, a gamma-glutamylcysteine synthetase inhibitor), MK571, celecoxib, or diclofenac (all MRP4 inhibitors). In addition, the accumulation of CPT-11 and SN-38 over 120 min in MRP4/HepG2 cells was significantly reduced compared to V/HepG2 cells, whereas the addition of celecoxib, MK571, or BSO significantly increased their accumulation in MRP4/HepG2 cells. There was no significant difference in the intracellular accumulation of paclitaxel in V/HepG2 and MRP4/HepG2 cells, indicating that P-glycoprotein was not involved in the observed resistance to CPTs in this study. MRP4 also conferred resistance to cyclophosphamide and this was partially reversed by BSO. However, MRP4 did not increase resistance to paclitaxel, carboplatin, etoposide (VP-16), 5-fluorouracil, and cyclosporine.
Conclusions:
Human MRP4 rendered significant resistance to cyclophosphamide, CPT, CPT-11, SN-38, rubitecan, and 10-OH-CPT. CPT-11 and SN-38 are substrates for MRP4. Further studies are needed to explore the role of MRP4 in resistance, toxicity, and pharmacokinetics of CPTs and cyclophosphamide.
Insights
Multidrug resistance-associated protein 4 (MRP4) overexpression confers resistance to camptothecins (CPTs) and cyclophosphamide. MRP4 actively transports CPT-11 and SN-38, impacting cancer therapy efficacy.
Area of Science:
- Pharmacology
- Molecular Biology
- Cancer Research
Background:
- Multidrug resistance (MDR) is a major challenge in cancer chemotherapy.
- The multidrug resistance-associated protein 4 (MRP4) is an ATP-binding cassette transporter implicated in MDR.
- Camptothecins (CPTs) are potent anticancer agents targeting topoisomerase I, but their efficacy is limited by drug resistance.
Purpose of the Study:
- To investigate the role of human MRP4 in conferring resistance to various CPTs and other anticancer agents.
- To determine if CPT-11 and its active metabolite SN-38 are substrates of MRP4.
- To explore the impact of MRP4 overexpression on the intracellular accumulation of CPTs.
Main Methods:
- HepG2 cells were stably transfected to overexpress human MRP4 (MRP4/HepG2) or an empty vector (V/HepG2).
- Drug resistance profiles were assessed using MTT assays with various CPTs and other anticancer agents.
- Intracellular accumulation of CPT-11 and SN-38 was quantified using high-performance liquid chromatography (HPLC).
Main Results:
- MRP4 overexpression significantly increased resistance to CPTs, with 10-OH-CPT showing the highest resistance fold (14.21).
- Resistance to CPTs and cyclophosphamide was reversed by MRP4 inhibitors (BSO, MK571, celecoxib, diclofenac).
- MRP4/HepG2 cells exhibited reduced intracellular accumulation of CPT-11 and SN-38, which was restored by MRP4 inhibitors.
Conclusions:
- Human MRP4 confers significant resistance to CPTs and cyclophosphamide.
- CPT-11 and SN-38 are identified as substrates of MRP4.
- MRP4 plays a crucial role in CPT resistance, necessitating further investigation into its pharmacokinetic and toxicity implications.
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