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Published on: August 2, 2024
Cellular and molecular determinants of cisplatin resistance
1Dartmouth-Hitchcock Medical Center, Lebanon, NH 03756, USA.
Abstract:
Cisplatin and carboplatin are among the most active and widely used cytotoxic anticancer drugs. However, the acquisition or presence of resistance significantly undermines the curative potential of these drugs against many malignancies. Multiple potential mechanisms of resistance have been identified at the cellular and molecular levels. Alterations in cellular pharmacology, including decreased drug accumulation, increased cellular thiol levels and increased repair of platinum-DNA damage, have been observed in numerous model systems. More recently, it has become apparent that an enhanced capacity to tolerate cisplatin-induced damage may also contribute to resistance. Alterations in proteins that recognise cisplatin-DNA damage (mismatch repair and high-mobility group (HMG) family proteins) and in pathways that determine sensitivity to apoptosis may contribute to damage tolerance. It remains to be determined whether any of these mechanisms contribute significantly to resistance in the clinical setting. Ongoing biochemical modulation and translational correlative trials should clarify which specific mechanisms are most relevant to clinical cisplatin resistance. Such investigations have the potential to improve the ability to predict likelihood of response and should identify potential targets for pharmacological or molecular intervention.
Insights
Cisplatin and carboplatin resistance in cancer is a major challenge. Understanding cellular mechanisms like drug accumulation, DNA repair, and damage tolerance is key to improving treatment effectiveness and identifying new therapeutic targets.
Area of Science:
- Oncology
- Molecular Biology
- Pharmacology
Background:
- Cisplatin and carboplatin are vital chemotherapy agents for numerous cancers.
- Drug resistance significantly limits their long-term efficacy.
- Identifying resistance mechanisms is crucial for improving patient outcomes.
Purpose of the Study:
- To review and synthesize the known mechanisms of cisplatin and carboplatin resistance.
- To explore the role of cellular pharmacology and DNA damage tolerance in resistance.
- To highlight the need for further research into clinically relevant resistance mechanisms.
Main Methods:
- Literature review of cellular and molecular resistance mechanisms.
- Analysis of biochemical and pharmacological alterations.
- Discussion of DNA damage recognition and tolerance pathways.
Main Results:
- Resistance mechanisms include decreased drug accumulation, increased cellular thiols, and enhanced DNA repair.
- Increased tolerance to cisplatin-induced DNA damage is a significant factor.
- Alterations in mismatch repair and HMG proteins, and apoptosis pathways contribute to tolerance.
Conclusions:
- Multiple cellular and molecular mechanisms contribute to platinum-based drug resistance.
- Damage tolerance pathways represent a critical, yet less understood, area of resistance.
- Further clinical and translational research is needed to identify key mechanisms and therapeutic targets.
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