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A Syngeneic Mouse Model of Metastatic Renal Cell Carcinoma for Quantitative and Longitudinal Assessment of Preclinical Therapies
Published on: April 12, 2017
Establishment and characterization of renal cell carcinoma cell lines with multidrug resistance
1Department of Surgery, Tri-Service General Hospital, National Defense Medical Center, Taipei, Taiwan, Republic of China. yuds@ms21.hinet.net
Abstract:
Many of the discoveries of multidrug resistance (MDR) have resulted from studies using drug-resistant cultured tumor cell lines as experimental models. To date, there has been no report on the detailed characterization of such a cell line from renal cell carcinoma (RCC). By long-term exposure of an established RCC (RCC8701) to increasing concentrations of adriamycin, we established a series of subcultures that were considerably more resistant to the cytotoxic effect of this drug. Biological morphology and cell cycles were analyzed by morphometry and flow cytometry. The chemoresistance index of cells were measured by methyl tetrazolium assay. For evaluation of the expression of MDR-related protein (MRP), mdr-1, glutathione transferase (GST-pi), and topoisomerase II mRNAs, the reverse transcription-polymerase chain reaction was used. Membranous expression of mdr-1-related p-glycoprotein was analyzed by immunofluorescence cytometry. The intracellular content of both glutathione (GSH) and glucose-6-phosphate dehydrogenase (G-6-PDH) were measured using a capillary electrophoresis method. Compared with parent cells, the resistant sublines had a slower growth rate and lower confluent density. They were smaller and mixed with giant cells in different sizes and with different numbers of nucleoli. Flow cytometric analyses showed that resistant cells had a greater percentage of cells in the G2/M phase. The resistant cells, RCC8701/ADR800, were 122 times more resistant to adriamycin and 238 times more resistant to epirubicin than the parent cells. The resistant cells also demonstrated cross-resistance to cisplatin and 5-fluorouracil. In addition to MRP, the contents of mRNA coding for mdr-1, GST-pi, and topoisomerase II in the MDR sublines were higher than in the native cell line. A higher content of cytoplasmic GSH and G-6-PDH were found in the resistant cells; however, the expression of the MDR-related membranous glycoprotein, p-glycoprotein, was not raised. The adriamycin-induced MDR sublines may be used as an experimental system for the search of a means to overcome drug resistance and elucidate possible mechanisms of acquired MDR involved in human renal cancer.
Insights
Researchers developed multidrug-resistant (MDR) renal cell carcinoma (RCC) cell lines to study cancer drug resistance. These new cell lines show cross-resistance to multiple chemotherapy drugs, aiding in the search for effective treatments.
Area of Science:
- Oncology
- Molecular Biology
- Biochemistry
Background:
- Multidrug resistance (MDR) in cancer hinders effective chemotherapy.
- Drug-resistant cell lines are crucial experimental models for studying MDR.
- Characterized MDR cell lines for renal cell carcinoma (RCC) are lacking.
Purpose of the Study:
- To establish and characterize novel multidrug-resistant (MDR) cell lines from renal cell carcinoma (RCC).
- To investigate the molecular mechanisms underlying acquired MDR in RCC.
- To provide an experimental system for developing strategies to overcome drug resistance in human renal cancer.
Main Methods:
- Long-term adriamycin exposure to generate resistant RCC sublines (RCC8701/ADR).
- Morphometry, flow cytometry, and methyl tetrazolium assay for cell characterization and chemoresistance evaluation.
- Reverse transcription-polymerase chain reaction (RT-PCR) and immunofluorescence cytometry to analyze MDR-related gene and protein expression.
- Capillary electrophoresis for intracellular glutathione (GSH) and glucose-6-phosphate dehydrogenase (G-6-PDH) quantification.
Main Results:
- Resistant RCC sublines exhibited slower growth, altered morphology, and increased G2/M phase percentage.
- RCC8701/ADR800 cells showed 122-fold resistance to adriamycin and 238-fold resistance to epirubicin.
- Cross-resistance to cisplatin and 5-fluorouracil was observed in resistant cells.
- Elevated mRNA levels of MRP, mdr-1, GST-pi, and topoisomerase II were detected.
- Increased intracellular GSH and G-6-PDH content, but no significant change in p-glycoprotein expression.
Conclusions:
- Adriamycin-induced MDR RCC sublines were successfully established and characterized.
- These cell lines display complex MDR mechanisms, including elevated drug-metabolizing enzymes and altered cell cycle regulation.
- The lack of increased p-glycoprotein suggests alternative MDR pathways in this RCC model.
- The developed MDR RCC sublines serve as a valuable platform for investigating MDR mechanisms and therapeutic strategies in renal cancer.
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