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Published on: August 5, 2022
DNA intercalating drugs: Mechanisms of action in cancer treatment
Marvellous Oyeyode1, Mathew Tempel2, Ted M Lakowski3
1Department of Biochemistry and Medical Genetics, Max Rady College of Medicine, Rady Faculty of Health Sciences, University of Manitoba, Winnipeg, MB, R3E 0J9, Canada.
Abstract:
DNA-intercalating drugs (e.g., doxorubicin) have been used in cancer treatment since the 1960s. Multiple mechanisms have been observed with these drugs. These drugs intercalate into nucleosome-free regions of chromatin, which play a crucial role in regulating gene expression and genome organization. DNA intercalation by these drugs results in a plethora of events, including DNA damage, chromatin damage (histone eviction), erosion of chromatin organization, nucleolar condensation, RNA polymerase I and/or RNA polymerase II degradation, transcription arrest, deubiquitination of histone H2B ubiquitinated at lysine 120, topoisomerase I and/or II inhibition and/or trapping, and disruption of proteins associated with the elongating RNA polymerase II. These events may occur within hours following the addition of these drugs. At later times, changes to the DNA structure (e.g., the formation of Z DNA) occur, and eventually, the cells will die via apoptosis. This review will examine the mechanisms of action of DNA-intercalating drugs, specifically two anthracyclines (doxorubicin and aclarubicin) and a heteroaromatic compound (BMH-21). Doxorubicin and aclarubicin are used clinically to treat cancer, while BMH-21 remains in preclinical development. Reports on plasma pharmacokinetics of these anthracyclines will be tabulated, and the clinical relevance of the observed mechanisms of action for doxorubicin and aclarubicin will be assessed based on this information.
Insights
DNA-intercalating drugs disrupt gene regulation and genome organization by damaging chromatin. This review details their mechanisms, including DNA damage and transcription arrest, leading to cancer cell death via apoptosis.
Area of Science:
- Molecular Biology
- Cancer Therapeutics
- Pharmacology
Background:
- DNA-intercalating drugs, like doxorubicin, have been used in cancer treatment since the 1960s.
- These drugs target nucleosome-free chromatin regions, crucial for gene expression and genome organization.
Purpose of the Study:
- To review the mechanisms of action of DNA-intercalating drugs, focusing on doxorubicin, aclarubicin, and BMH-21.
- To examine the clinical relevance of these mechanisms for anthracyclines used in cancer therapy.
Main Methods:
- Review of existing literature on DNA-intercalating drugs.
- Analysis of mechanisms including DNA damage, chromatin alterations, and transcription inhibition.
- Tabulation of plasma pharmacokinetics for anthracyclines.
Main Results:
- DNA intercalation triggers rapid events: DNA/chromatin damage, histone eviction, transcription arrest, and enzyme inhibition.
- Later effects include DNA structural changes (e.g., Z DNA) and apoptosis.
- Doxorubicin and aclarubicin are clinically used; BMH-21 is in preclinical development.
Conclusions:
- DNA-intercalating drugs induce a cascade of molecular events leading to cancer cell death.
- Understanding these mechanisms is vital for optimizing cancer treatment strategies.
- Further research into compounds like BMH-21 may offer new therapeutic avenues.
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