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Published on: May 28, 2014
Reaction of Histone H1 with trans-Platinum Complexes and the Effect on DNA Platination
Lanjun Cheng1, Chan Li1, Siming Yuan1
1CAS Key Laboratory of Soft Matter Chemistry, Department of Chemistry , University of Science and Technology of China , Hefei , Anhui 230026 , China.
Abstract:
Transplatin is an inactive platinum drug; however, a number of analogues, such as trans-EE and trans-PtTz, demonstrate promising antitumor activity in vitro and in vivo. Although the ultimate target is nuclear DNA, increasing evidence indicate that proteins also play important roles in the display of antitumor activity. The linker histone H1 is situated by the portal between the unwrapped DNA and the nucleosome core. Our recent study revealed that H1 can readily react with cisplatin, and the adducts tend to form ternary complexes with DNA. In this work, we have investigated the reaction of histone H1 with two antitumor-active trans-oriented complexes, trans-EE and trans-PtTz, and the effect of H1 upon the platination of DNA. The results show that trans-platinum drugs are much more reactive than cisplatin toward H1. Interestingly, in addition to the expected bidentate adducts (by displacement of the two labile chlorido ligands), also a tridentate adduct can be formed by displacement of one nonlabile carrier ligand of trans-EE or trans-PtTz. The trans-Pt/H1 adducts can then react with DNA and generate protein-Pt-DNA ternary complexes. Additionally, platinum can be transferred from trans-Pt/H1 adducts to DNA, generating binary trans-Pt/DNA complexes. Such a transfer of the platinum agent to DNA was not observed in the reaction of cisplatin. Furthermore, the detailed investigation carried out on a model peptide indicates that H1 promotes the DNA platination by trans- EE, while it reduces that of trans-PtTz and cisplatin. These results suggest that H1 can play a key role in the DNA platination and modulate the efficacy of different platinum agents.
Insights
Histone H1 protein interacts with trans-platinum drugs, forming adducts that can bind to DNA. This interaction influences platinum
Area of Science:
- Biochemistry
- Molecular Biology
- Cancer Therapeutics
Background:
- Transplatin is an inactive platinum drug, but its analogues show antitumor potential.
- Proteins, including linker histone H1, are increasingly recognized for their role in platinum drug activity.
- Histone H1 is located at the interface of DNA and nucleosomes, suggesting a potential role in drug interactions.
Purpose of the Study:
- To investigate the reaction of histone H1 with antitumor-active trans-platinum complexes (trans-EE and trans-PtTz).
- To determine the effect of histone H1 on the DNA platination by these trans-platinum drugs.
- To elucidate the role of histone H1 in modulating the efficacy of platinum-based anticancer agents.
Main Methods:
- Studied the reaction kinetics of histone H1 with trans-EE and trans-PtTz.
- Analyzed the formation of platinum-adducts with histone H1 and DNA.
- Investigated platinum transfer from histone H1 adducts to DNA using model peptides.
Main Results:
- Trans-platinum drugs exhibit higher reactivity with histone H1 compared to cisplatin.
- Histone H1 forms both bidentate and tridentate adducts with trans-platinum drugs.
- Histone H1 facilitates DNA platination by trans-EE but inhibits it for trans-PtTz and cisplatin.
Conclusions:
- Histone H1 plays a significant role in the DNA platination process by trans-platinum drugs.
- The interaction between histone H1 and platinum drugs can modulate their antitumor efficacy.
- Histone H1's effect on DNA platination varies depending on the specific trans-platinum agent.
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