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The power and potential of doxorubicin-DNA adducts
Suzanne M Cutts1, Abraham Nudelman, Ada Rephaeli
1Department of Biochemistry, La Trobe University, Victoria, Australia.
Abstract:
Doxorubicin (trade name Adriamycin) is a widely used anticancer agent which exhibits good activity against a wide range of tumors. Although the major mode of action appears to be normally as a topoisomerase II poison, it also exhibits a number of other cellular responses, one of which is the ability to form adducts with DNA. For adduct formation doxorubicin must react with cellular formaldehyde to form an activated Schiff base which is then able to form an aminal (N-C-N) linkage to the exocyclic amino group of guanine residues. The mono-adducts form primarily at G of 5'-GCN-3' sequences where the chromophore of the drug is intercalated between the C and N base pair. The structure of the adducts has have been well defined by 2D NMR, mass spectrometry and X-ray crystallography. The formation of these anthracycline adducts in cells grown in culture has been unequivocally demonstrated. The source of formaldehyde in cells can be endogenous, provided by coadministration of prodrugs that release formaldehyde or by prior complexation of anthracyclines with formaldehyde. Since the adducts appear to be more cytotoxic than doxorubicin alone, and also less susceptible to drug-efflux forms of resistance, they offer new approaches to improving the anticancer activity of the anthracyclines.
Insights
Doxorubicin forms DNA adducts with formaldehyde, enhancing its anticancer activity and overcoming drug resistance. These novel adducts show increased cytotoxicity compared to doxorubicin alone.
Area of Science:
- Biochemistry
- Molecular Biology
- Pharmacology
Background:
- Doxorubicin (Adriamycin) is a potent anticancer drug effective against various tumors.
- Its primary mechanism involves topoisomerase II inhibition, but it also forms DNA adducts.
- DNA adduct formation requires doxorubicin reaction with formaldehyde to create a Schiff base.
Purpose of the Study:
- To investigate the formation and structure of doxorubicin-DNA adducts.
- To explore the potential of these adducts as enhanced anticancer agents.
- To understand the role of formaldehyde in doxorubicin's cellular response.
Main Methods:
- 2D NMR spectroscopy
- Mass spectrometry
- X-ray crystallography
- Cell culture studies
Main Results:
- Doxorubicin forms mono-adducts primarily at guanine in 5'-GCN-3' sequences via an aminal linkage.
- Adduct structure was confirmed using advanced spectroscopic and crystallographic techniques.
- Formation of these anthracycline adducts in cultured cells was demonstrated.
- Formaldehyde sources include endogenous production, prodrugs, or pre-complexation.
Conclusions:
- Doxorubicin-DNA adducts are more cytotoxic than doxorubicin alone.
- These adducts exhibit reduced susceptibility to drug-efflux mediated resistance.
- Anthracycline-formaldehyde adducts represent a promising strategy for improving anticancer therapy.
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