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Interaction of the antitumor antibiotic mitomycin C with Z-DNA
1Department of Chemistry, Hunter College, City University of New York, NY 10021.
Abstract:
Mitomycin C (MC), an antitumor antibiotic, alkylated Z-DNAs such as poly(dG-dC)/Co(NH3)3+(6), poly(dG-m5dC)/Mg2+ and brominated poly(dG-dC) upon reductive activation. Computer-generated energy-minimized molecular models indicated that monofunctional alkylation of Z-DNA at the N2-position of guanine by MC did not distort Z-DNA geometry, but bifunctional alkylation, leading to interstrand crosslinks between two N2-positions of guanine was sterically unfavorable. The above three Z-DNA's were exposed both to monofunctionally and bifunctionally activated MC in separate experiments and the resulting covalent MC-polynucleotide complexes were examined for conformation and for covalent MC-adducts, by circular dichroism (CD) spectroscopy and HPLC analysis of nuclease digests, respectively. Monofunctionally activated MC alkylated all three polynucleotides in their Z-forms, resulting in the same monofunctional N2-guanine adduct as that known to be formed with B-DNA. Upon bifunctional activation of MC, poly(dG-dC/Co(NH3)3+(6) reverted to the B-form and bifunctional (cross-link) adducts were detected, identical again with those formed with B-DNA. Poly(dG-m5dC), however, remained in the Z-form after the alkylation and only a monofunctional adduct could be detected. It was concluded that Z-DNA is subject to monofunctional alkylation by MC but cannot be cross-linked. The latter process occurs only when the Z-DNA is labile enough [as is in the case of poly(dG-dC)] to have some B-form in equilibrium at the site of the first formed monolinked adduct; the cross-linking then occurs at such local B-sites, pulling the overall B in equilibrium Z equilibrium irreversibly to the left. These results are in accord with the predictions from the above modeling. The irreversible "lock" by the MC cross-link on B-DNA may be exploited for probing Z-DNA intermediacy in various DNA functions.
Insights
Mitomycin C (MC) alkylates Z-DNA monofunctionally but cannot cross-link it. Bifunctional cross-linking occurs only when Z-DNA converts to B-DNA, suggesting MC can probe Z-DNA roles in DNA functions.
Area of Science:
- Molecular Biology
- Medicinal Chemistry
- Biochemistry
Background:
- Mitomycin C (MC) is an antitumor antibiotic known to alkylate DNA.
- Z-DNA is a left-handed helical conformer of DNA with distinct structural properties.
- Understanding DNA-drug interactions is crucial for developing targeted therapies.
Purpose of the Study:
- To investigate the alkylation of Z-DNA by Mitomycin C.
- To determine if Z-DNA can be cross-linked by Mitomycin C.
- To explore the potential of Mitomycin C as a probe for Z-DNA involvement in biological processes.
Main Methods:
- Computer-generated molecular modeling to predict MC-DNA interactions.
- Reductive activation of Mitomycin C.
- Incubation of Z-DNA forms (poly(dG-dC)/Co(NH3)3+(6), poly(dG-m5dC)/Mg2+, brominated poly(dG-dC)) with MC.
- Circular dichroism (CD) spectroscopy to assess DNA conformation.
- High-performance liquid chromatography (HPLC) analysis of nuclease digests to identify MC-DNA adducts.
Main Results:
- Monofunctional alkylation of Z-DNA by MC occurs at the N2-position of guanine, forming the same adduct as with B-DNA, without distorting Z-DNA geometry.
- Bifunctional alkylation leading to interstrand crosslinks is sterically unfavorable in Z-DNA.
- Poly(dG-dC)/Co(NH3)3+(6) reverted to B-DNA upon bifunctional MC activation, forming cross-links identical to those in B-DNA.
- Poly(dG-m5dC) remained in the Z-form after MC treatment, yielding only monofunctional adducts.
- Cross-linking of Z-DNA by MC requires a labile Z-DNA form that can transition to B-DNA.
Conclusions:
- Z-DNA is susceptible to monofunctional alkylation by Mitomycin C.
- Z-DNA cannot be directly cross-linked by Mitomycin C; cross-linking occurs only upon conversion to the B-DNA form.
- The MC cross-linking mechanism can serve as an indicator for Z-DNA intermediacy in DNA functions.