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Updated: Jun 14, 2026

Evaluating the Effectiveness of Cancer Drug Sensitization In Vitro and In Vivo
Published on: February 6, 2015
Identification and functional analysis of genes which confer resistance to cisplatin in tumor cells
Zchong-Zcho Wu1, Hsing-Pang Lu, Chuck C-K Chao
1Department of Biochemistry and Molecular Biology, Chang Gung University, Taiwan, ROC.
Abstract:
The efficacy of cisplatin during cancer chemotherapy is often impaired by the emergence of cancer cells which become resistant to chemotherapeutic agents. While various mechanisms have been proposed to explain resistance to cisplatin, the genes involved in this process still remain unclear. By using DNA microarrays, we performed a genome-wide analysis of cisplatin-resistant HeLa cells in order to identify genes involved in resistance. We identified nine genes (NAPA, CITED2, CABIN1, ADM, HIST1H1A, EHD1, MARK2, PTPN21, and MVD), which were consistently upregulated in two cisplatin-resistant HeLa cell lines. The upregulated genes, here referred to as cisplatin resistance genes (CPR), were further analyzed for their ability to modify the response of HEK293 cells to cisplatin. Short-hairpin RNA (shRNA) knockdown of CPR genes, individually or in combination, was shown to sensitize HEK293 cells to cisplatin, but not to vincristine or taxol, suggesting that CPR genes may be involved specifically in cisplatin resistance. Among the treatments performed, shRNA knockdown of NAPA was the most efficient treatment able to sensitize cells to cisplatin. Furthermore, shRNA knockdown of a single CPR gene was sufficient to partially reverse acquired cisplatin resistance in HeLa cells. Sensitization to cisplatin following knockdown of CPR genes was also observed in the tumorigenic cell lines Sk-ov-3, H1155, and CG-1. Based on these results, we propose that the CPR genes identified here may represent potential candidates for novel target therapies aimed at preventing resistance to cisplatin during chemotherapy.
Insights
Researchers identified nine cisplatin resistance genes (CPR) that, when reduced, can re-sensitize cancer cells to cisplatin chemotherapy. This discovery offers potential new targets for overcoming drug resistance in cancer treatment.
Area of Science:
- Molecular Biology
- Genetics
- Cancer Research
Background:
- Cisplatin chemotherapy efficacy is limited by acquired cancer cell resistance.
- Mechanisms of cisplatin resistance are not fully understood, and involved genes remain unclear.
Purpose of the Study:
- To identify genes contributing to cisplatin resistance using genome-wide analysis.
- To investigate the potential of these genes as therapeutic targets for overcoming cisplatin resistance.
Main Methods:
- Genome-wide analysis using DNA microarrays on cisplatin-resistant HeLa cells.
- Short-hairpin RNA (shRNA) knockdown of identified genes in HEK293 and cancer cell lines.
- Assessment of cell sensitization to cisplatin, vincristine, and taxol.
Main Results:
- Nine genes (NAPA, CITED2, CABIN1, ADM, HIST1H1A, EHD1, MARK2, PTPN21, MVD) were consistently upregulated in cisplatin-resistant HeLa cells.
- shRNA knockdown of these cisplatin resistance genes (CPR) sensitized HEK293 cells to cisplatin, but not other chemotherapeutics.
- Knockdown of CPR genes, particularly NAPA, partially reversed acquired cisplatin resistance in HeLa and other cancer cell lines.
Conclusions:
- The identified CPR genes are specifically involved in cisplatin resistance.
- CPR genes represent potential novel therapeutic targets to enhance cisplatin chemotherapy efficacy.
- Targeting CPR genes could help overcome acquired cisplatin resistance in various cancers.
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