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Published on: February 8, 2017
Targeted delivery of doxorubicin to mitochondria
Graham R Chamberlain1, David V Tulumello, Shana O Kelley
1Department of Pharmaceutical Sciences, Leslie Dan Faculty of Pharmacy, ‡Department of Biochemistry, Faculty of Medicine, University of Toronto , Ontario, Canada.
Abstract:
Several families of highly effective anticancer drugs are selectively toxic to cancer cells because they disrupt nucleic acid synthesis in the nucleus. Much less is known, however, about whether interfering with nucleic acid synthesis in the mitochondria would have significant cellular effects. In this study, we explore this with a mitochondrially targeted form of the anticancer drug doxorubicin, which inhibits DNA topoisomerase II, an enzyme that is both in mitochondria and nuclei of human cells. When doxorubicin is attached to a peptide that targets mitochondria, it exhibits significant toxicity. However, when challenged with a cell line that overexpresses a common efflux pump, it does not exhibit the reduced activity of the nuclear-localized parent drug and resists being removed from the cell. These results indicate that targeting drugs to the mitochondria provides a means to limit drug efflux and provide evidence that a mitochondrially targeted DNA topoisomerase poison is active within the organelle.
Insights
Targeting anticancer drugs like doxorubicin to mitochondria enhances toxicity and overcomes drug efflux pumps. This approach demonstrates the effectiveness of mitochondrial DNA topoisomerase II inhibition in cancer therapy.
Area of Science:
- Biochemistry
- Molecular Biology
- Pharmacology
Background:
- Anticancer drugs often target nuclear nucleic acid synthesis.
- Mitochondrial nucleic acid synthesis disruption effects are less understood.
- Doxorubicin targets DNA topoisomerase II in both nucleus and mitochondria.
Discussion:
- Mitochondrially targeted doxorubicin shows significant toxicity.
- Targeted drug resists efflux pumps that affect nuclear-localized drugs.
- This suggests mitochondria can be a target to overcome drug resistance.
Key Insights:
- Mitochondrial drug targeting can bypass cellular efflux mechanisms.
- Mitochondrially localized DNA topoisomerase II can be effectively poisoned.
- This strategy offers a new approach to enhance anticancer drug efficacy.
Outlook:
- Further research into mitochondrial drug delivery systems.
- Exploring other mitochondrially targeted anticancer agents.
- Investigating the role of mitochondrial DNA synthesis in cancer treatment resistance.
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