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Published on: April 7, 2011
Investigation on the protein-binding properties of icotinib by spectroscopic and molecular modeling method
Hua-xin Zhang1, Hang-xing Xiong1, Li-wei Li1
1College of Chemical and Pharmaceutical Engineering, Jingchu University of Technology, Jingmen, Hubei 448000, People's Republic of China.
Abstract:
Icotinib is a highly-selective epidermal growth factor receptor tyrosine kinase inhibitor with preclinical and clinical activity in non-small cell lung cancer, which has been developed as a new targeted anti-tumor drug in China. In this work, the interaction of icotinib and human serum albumin (HSA) were studied by three-dimensional fluorescence spectra, ultraviolet spectra, circular dichroism (CD) spectra, molecular probe and molecular modeling methods. The results showed that icotinib binds to Sudlow's site I in subdomain IIA of HSA molecule, resulting in icotinib-HSA complexes formed at ground state. The number of binding sites, equilibrium constants, and thermodynamic parameters of the reaction were calculated at different temperatures. The negative enthalpy change (ΔH(θ)) and entropy change (ΔS(θ)) indicated that the structure of new complexes was stabilized by hydrogen bonds and van der Waals power. The distance between donor and acceptor was calculated according to Förster's non-radiation resonance energy transfer theory. The structural changes of HSA caused by icotinib binding were detected by synchronous spectra and circular dichroism (CD) spectra. Molecular modeling method was employed to unfold full details of the interaction at molecular level, most of which could be supported by experimental results. The study analyzed the probability that serum albumins act as carriers for this new anticarcinogen and provided fundamental information on the process of delivering icotinib to its target tissues, which might be helpful in understanding the mechanism of icotinib in cancer therapy.
Insights
Icotinib, a targeted cancer drug, binds to human serum albumin (HSA) at a specific site, forming stable complexes. This interaction suggests HSA may act as a carrier for icotinib delivery in non-small cell lung cancer therapy.
Area of Science:
- Biochemistry
- Pharmacology
- Molecular Biology
Background:
- Icotinib is a targeted anti-tumor drug developed in China for non-small cell lung cancer (NSCLC).
- Understanding drug-protein interactions is crucial for optimizing drug delivery and efficacy.
Purpose of the Study:
- To investigate the binding interaction between icotinib and human serum albumin (HSA).
- To elucidate the binding site, thermodynamic parameters, and structural changes upon icotinib-HSA complex formation.
- To explore the potential of HSA as a carrier for icotinib delivery.
Main Methods:
- Spectroscopic techniques: 3D fluorescence, UV, circular dichroism (CD), and synchronous spectra.
- Molecular probe methods.
- Molecular modeling simulations.
Main Results:
- Icotinib binds to Sudlow's site I in subdomain IIA of HSA, forming stable icotinib-HSA complexes.
- Thermodynamic analysis revealed spontaneous binding driven by hydrogen bonds and van der Waals forces (negative ΔH and ΔS).
- Experimental and modeling data confirmed structural alterations in HSA upon icotinib binding.
Conclusions:
- HSA can bind icotinib, suggesting its potential role as a drug carrier.
- The findings provide fundamental insights into icotinib's transport and delivery mechanisms.
- This study aids in understanding icotinib's therapeutic mechanism in cancer treatment.
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