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Synergistic effects and competitive relationships between DOC and DOX as acting on DNA molecules: Studied with
Suli Zhou1, Xiaoqiang Feng1, Jintao Bai1
1Key Laboratory of Photoelectronic Technology of Shaanxi Province, National Center for International Research of Photoelectric Technology & Nano-Functional Materials and Application, Institute of Photonics and Photon-Technology, Northwest University, Xi'an, 710127, China.
Abstract:
Docetaxel (DOC) is one of the second-generation antineoplastic drugs of the taxanes family with excellent antitumor activity. However, the mechanism of DOC inducing tumor cell apoptosis and treating cancer diseases, especially its interaction with DNA in the nucleus, and its adjuvant or combined Doxorubicin (DOX) acting on DNA molecules are unclear. In this study, the interaction mechanism between DOC and DNA, as well as the synergistic effects and competitive relationships among DOC and DOX when they simultaneously interact with DNA molecules were studied by laser confocal Raman spectroscopy combined with UV-visible absorption spectroscopy and molecular docking technology. The spectroscopic results showed that the binding constant of DOC to DNA is 5.25 × 103 M-1, the binding modes of DOC and DNA are non-classical intercalation and electrostatic binding, and the DNA-DOC complex has good stability. When DOC or DOX interacts with DNA alone, both of them can bind with bases and phosphate backbone of DNA, and also lead to DNA conformation changes; when DOC and DOX interact with DNA at the same time, the orders of interaction not only affect their binding sites with DNA, but also cause changes in the surrounding environment of the binding sites. In addition, the molecular docking results further verified that DOC and DOX have synergy and competition when they interact with DNA molecules simultaneously. The docking energies of DNA-DOC and DNA-DOX indicate the important role of van der Waals forces and hydrogen bonds. This study has practical significance for the design and development of antitumor drugs with less toxic based on the taxanes family and the combination with other drugs for the treatment of cancer.
Insights
Docetaxel and Doxorubicin interact with DNA, influencing cancer treatment. Their combined use shows synergy and competition, impacting drug design for less toxic cancer therapies.
Area of Science:
- Pharmacology
- Molecular Biology
- Biophysics
Background:
- Docetaxel (DOC) is a potent taxane-based antineoplastic drug.
- The precise mechanisms of DOC's antitumor activity, particularly its DNA interaction and combined effects with Doxorubicin (DOX), remain unclear.
Purpose of the Study:
- To elucidate the interaction mechanism between Docetaxel and DNA.
- To investigate the synergistic and competitive relationships between Docetaxel and Doxorubicin when interacting with DNA simultaneously.
Main Methods:
- Laser confocal Raman spectroscopy
- UV-visible absorption spectroscopy
- Molecular docking technology
Main Results:
- Docetaxel binds to DNA with a binding constant of 5.25 × 10³ M⁻¹, via non-classical intercalation and electrostatic binding.
- Both DOC and DOX interact with DNA bases and phosphate backbone, inducing conformational changes.
- Simultaneous interaction of DOC and DOX with DNA reveals order-dependent binding site alterations and synergistic/competitive effects, driven by van der Waals forces and hydrogen bonds.
Conclusions:
- Docetaxel and Doxorubicin exhibit complex interactions with DNA, including synergy and competition.
- Understanding these interactions is crucial for designing more effective and less toxic combination cancer therapies.
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