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Evaluating the Effectiveness of Cancer Drug Sensitization In Vitro and In Vivo
Published on: February 6, 2015
Base excision repair-mediated resistance to cisplatin in KRAS(G12C) mutant NSCLC cells
Elisa Caiola1, Daniela Salles2, Roberta Frapolli3
1Laboratory of Molecular Pharmacology, Department of Oncology, IRCCS - Istituto di Ricerche Farmacologiche "Mario Negri", Milan, Italy.
Abstract:
KRAS mutations in NSCLC are supposed to indicate a poor prognosis and poor response to anticancer treatments but this feature lacks a mechanistic basis so far. In tumors, KRAS was found to be mutated mostly at codons 12 and 13 and a pool of mutations differing in the base alteration and the amino acid substitution have been described. The different KRAS mutations may differently impact on cancerogenesis and drug sensitivity. On this basis, we hypothesized that a different KRAS mutational status in NSCLC patients determines a different profile in the tumor response to treatments. In this paper, isogenic NSCLC cell clones expressing mutated forms of KRAS were used to determine the response to cisplatin, the main drug used in the clinic against NSCLC. Cells expressing the KRAS(G12C) mutation were found to be less sensitive to treatment both in vitro and in vivo. Systematic analysis of drug uptake, DNA adduct formation and DNA damage responses implicated in cisplatin adducts removal revealed that the KRAS(G12C) mutation might be particular because it stimulates Base Excision Repair to rapidly remove platinum from DNA even before the formation of cross-links. The presented results suggest a different pattern of sensitivity/resistance to cisplatin depending on the KRAS mutational status and these data might provide proof of principle for further investigations on the role of the KRAS status as a predictor of NSCLC response.
Insights
KRAS mutations in non-small cell lung cancer (NSCLC) impact treatment response. The KRAS(G12C) mutation confers resistance to cisplatin by enhancing DNA repair mechanisms.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Genetics
Background:
- KRAS mutations are common in non-small cell lung cancer (NSCLC) but their mechanistic link to treatment resistance is unclear.
- Specific KRAS mutations may differentially affect cancer development and drug sensitivity.
- Cisplatin is a primary chemotherapeutic agent for NSCLC.
Purpose of the Study:
- To investigate if different KRAS mutational statuses in NSCLC influence tumor response to treatments.
- To determine the specific response of KRAS(G12C) mutated NSCLC cells to cisplatin.
Main Methods:
- Utilized isogenic NSCLC cell clones expressing various mutated KRAS forms.
- Assessed cellular sensitivity to cisplatin both in vitro and in vivo.
- Analyzed drug uptake, DNA adduct formation, and DNA damage response pathways.
Main Results:
- NSCLC cells with the KRAS(G12C) mutation exhibited reduced sensitivity to cisplatin.
- The KRAS(G12C) mutation was found to accelerate the removal of platinum from DNA via Base Excision Repair.
- This rapid repair occurs before the formation of critical DNA cross-links, hindering cisplatin's efficacy.
Conclusions:
- KRAS mutational status significantly influences cisplatin sensitivity and resistance in NSCLC.
- The KRAS(G12C) mutation's role in enhancing DNA repair provides a mechanistic explanation for cisplatin resistance.
- KRAS status may serve as a predictive biomarker for NSCLC response to cisplatin-based therapies.
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