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Genome-wide Mapping of Drug-DNA Interactions in Cells with COSMIC Crosslinking of Small Molecules to Isolate Chromatin
Published on: January 20, 2016
Platinum-Based Drugs and DNA Interactions Studied by Single-Molecule and Bulk Measurements
Domenico Salerno1, Giovanni L Beretta2, Giuliano Zanchetta3
1School of Medicine, Università di Milano-Bicocca, Monza, Italy.
Abstract:
Platinum-containing molecules are widely used as anticancer drugs. These molecules exert cytotoxic effects by binding to DNA through various mechanisms. The binding between DNA and platinum-based drugs hinders the opening of DNA, and therefore, DNA duplication and transcription are severely hampered. Overall, impeding the above-mentioned important DNA mechanisms results in irreversible DNA damage and the induction of apoptosis. Several molecules, including multinuclear platinum compounds, belong to the family of platinum drugs, and there is a body of research devoted to developing more efficient and less toxic versions of these compounds. In this study, we combined different biophysical methods, including single-molecule assays (magnetic tweezers) and bulk experiments (ultraviolet absorption for thermal denaturation) to analyze the differential stability of double-stranded DNA in complex with either cisplatin or multinuclear platinum agents. Specifically, we analyzed how the binding of BBR3005 and BBR3464, two representative multinuclear platinum-based compounds, to DNA affects its stability as compared with cisplatin binding. Our results suggest that single-molecule approaches can provide insights into the drug-DNA interactions that underlie drug potency and provide information that is complementary to that generated from bulk analysis; thus, single-molecule approaches have the potential to facilitate the selection and design of optimized drug compounds. In particular, relevant differences in DNA stability at the single-molecule level are demonstrated by analyzing nanomechanically induced DNA denaturation. On the basis of the comparison between the single-molecule and bulk analyses, we suggest that transplatinated drugs are able to locally destabilize small portions of the DNA chain, whereas other regions are stabilized.
Insights
Platinum anticancer drugs like cisplatin and multinuclear platinum agents impact DNA stability. Single-molecule assays reveal how these drugs affect DNA denaturation, aiding in the development of more effective cancer therapies.
Area of Science:
- Biophysics
- Molecular Biology
- Medicinal Chemistry
Background:
- Platinum-containing molecules are crucial anticancer drugs that induce cytotoxicity by binding to DNA.
- This binding interferes with DNA replication and transcription, leading to DNA damage and apoptosis.
- Research focuses on developing more effective and less toxic platinum-based drugs, including multinuclear compounds.
Purpose of the Study:
- To analyze the differential stability of double-stranded DNA when complexed with cisplatin versus multinuclear platinum agents (BBR3005 and BBR3464).
- To compare insights gained from single-molecule assays and bulk experiments in understanding drug-DNA interactions.
- To explore the potential of single-molecule approaches in optimizing platinum drug design.
Main Methods:
- Utilized a combination of single-molecule assays (magnetic tweezers) and bulk experiments (ultraviolet absorption for thermal denaturation).
- Analyzed DNA denaturation induced by nanomechanical forces in the presence of platinum compounds.
- Compared the effects of cisplatin, BBR3005, and BBR3464 on DNA stability.
Main Results:
- Single-molecule approaches provide complementary insights into drug-DNA interactions compared to bulk analyses.
- Demonstrated significant differences in DNA stability at the single-molecule level when bound by different platinum agents.
- Observed that transplatinated drugs can locally destabilize DNA while stabilizing other regions.
Conclusions:
- Single-molecule assays are valuable tools for understanding the mechanisms of platinum drug action and potency.
- These methods can facilitate the selection and design of optimized platinum-based anticancer drugs.
- Differential DNA destabilization by platinum drugs highlights the complexity of their interaction with the genome.

