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Biosensor-based High Throughput Biopanning and Bioinformatics Analysis Strategy for the Global Validation of Drug-protein Interactions
Published on: December 1, 2020
Pt-based drugs: the spotlight will be on proteins
1Department of Pharmaceutical and Pharmacological Science, v. Marzolo 5, 35131 Padova, Italy. claudia.sissi@unipd.it.
Abstract:
Platinum-complexes represent some of the most successful groups of clinically used anticancer drugs. Their mechanism of action relies on the formation of stable DNA adducts occurring at the nitrogen in position 7 of guanine (N7) and involving one or two spatially close residues. The formation of stable DNA adducts is recognized as a DNA damaging event and, ultimately, drives cells to death. Nevertheless, nucleobases are not the only reliable targets of these drugs and other biomolecules can be involved. Among them large interest has been devoted to proteins since they contain several potential reactive sites for platinum (His, Met, and Cys) and, in particular, because the reaction of the metal with sulfur containing groups is a kinetically favored process. As a result, the occurrence of protein adducts and DNA-protein cross-links must be further taken into account in order to fully define cisplatin mechanism of action. Herein, we will summarize the most recent experimental evidence collected so far on protein-cisplatin adduct formation to better dissect its correlation with the drug pharmacological profile. Indeed, in addition to modulation of drug bioavailability and toxicity, the potential role of proteins as reaction intermediates or reservoir systems in platinum drugs can be envisaged. Additionally, the effects of Pt-coordinating groups on the chemical reactivity of the metal complexes will be reviewed. From all these outcomes a general model for Pt-based drugs mechanism of action can be drawn which is more articulate than the one currently supported. It claims proteins as reactive intermediates for DNA platination and it defines them as relevant to fully describe the clinical potential of this class of anticancer drugs.
Insights
Platinum anticancer drugs form DNA adducts, but also bind to proteins. This study reviews protein-platinum adducts, suggesting proteins are key to platinum drug action and clinical potential.
Area of Science:
- Medicinal Chemistry
- Molecular Biology
- Pharmacology
Background:
- Platinum-based drugs are vital anticancer agents, primarily acting by forming DNA adducts.
- While DNA platination is established, interactions with other biomolecules, particularly proteins, are increasingly recognized.
Purpose of the Study:
- To review experimental evidence on protein-cisplatin adduct formation.
- To explore the correlation between protein adducts and the pharmacological profile of platinum drugs.
- To propose an updated model for platinum-based drug mechanisms of action.
Main Methods:
- Literature review of experimental evidence on protein-cisplatin adducts.
- Analysis of the role of Pt-coordinating groups on metal complex reactivity.
- Synthesis of findings to develop a comprehensive mechanistic model.
Main Results:
- Platinum complexes bind to proteins at reactive sites like His, Met, and Cys residues.
- Protein adducts and DNA-protein cross-links are significant factors in cisplatin's mechanism.
- Proteins may act as reaction intermediates or reservoirs for platinum drugs, influencing drug bioavailability and toxicity.
Conclusions:
- The mechanism of platinum-based drugs is more complex than DNA adduct formation alone.
- Proteins are implicated as reactive intermediates in DNA platination.
- Understanding protein interactions is crucial for fully defining the clinical potential of platinum anticancer drugs.
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