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Proton Transfer and Protein Conformation Dynamics in Photosensitive Proteins by Time-resolved Step-scan Fourier-transform Infrared Spectroscopy
Published on: June 27, 2014
Switching from ultrafast electron transfer to proton transfer in excited drug-protein complexes upon
Lorena Tamarit1,2, Meryem El Ouardi1,2, Emilio Lence3
1Departamento de Química/Instituto de Tecnología Química UPV-CSIC, Universitat Politècnica de València Camino de Vera s/n 46022 València Spain mmiranda@qim.upv.es igvapre@qim.upv.es.
Abstract:
Photosensitization by drugs is directly related with the excited species and the photoinduced processes arising from interaction with UVA light. In this context, the ability of gefitinib (GFT), a tyrosine kinase inhibitor (TKI) used for the treatment of a variety of cancers, to induce phototoxicity and photooxidation of proteins has recently been demonstrated. In principle, photodamage can be generated not only by a given drug but also by its photoactive metabolites that maintain the relevant chromophore. In the present work, a complete study of O-desmorpholinopropyl gefitinib (GFT-MB) has been performed by means of fluorescence and ultrafast transient absorption spectroscopies, in addition to molecular dynamics (MD) simulations. The photobehavior of the GFT-MB metabolite in solution is similar to that of GFT. However, when the drug or its metabolite are in a constrained environment, i.e. within a protein, their behavior and the photoinduced processes that arise from their interaction with UVA light are completely different. For GFT in complex with human serum albumin (HSA), locally excited (LE) singlet states are mainly formed; these species undergo photoinduced electron transfer with Tyr and Trp. By contrast, since GFT-MB is a phenol, excited state proton transfer (ESPT) to form phenolate-like excited species might become an alternative deactivation pathway. As a matter of fact, the protein-bound metabolite exhibits higher fluorescence yields and longer emission wavelengths and lifetimes than GFT@HSA. Ultrafast transient absorption measurements support direct ESPT deprotonation of LE states (rather than ICT), to form phenolate-like species. This is explained by MD simulations, which reveal a close interaction between the phenolic OH group of GFT-MB and Val116 within site 3 (subdomain IB) of HSA. The reported findings are relevant to understand the photosensitizing properties of TKIs and the role of biotransformation in this type of adverse side effects.
Insights
The gefitinib metabolite (GFT-MB) exhibits distinct photobehavior within proteins compared to the parent drug. This metabolite undergoes excited state proton transfer, leading to unique photosensitization properties relevant to adverse drug reactions.
Area of Science:
- Photochemistry
- Biophysical Chemistry
- Pharmacology
Background:
- Drug photosensitization involves excited species and UVA light interactions.
- Gefitinib (GFT), a tyrosine kinase inhibitor (TKI), can induce phototoxicity and protein photooxidation.
- Photoactive drug metabolites may also contribute to photodamage.
Purpose of the Study:
- To investigate the photobehavior of the gefitinib metabolite, O-desmorpholinopropyl gefitinib (GFT-MB).
- To compare the photoinduced processes of GFT-MB with GFT, particularly when bound to proteins.
- To elucidate the mechanisms underlying TKI photosensitization and the role of drug metabolism.
Main Methods:
- Fluorescence spectroscopy
- Ultrafast transient absorption spectroscopy
- Molecular dynamics (MD) simulations
Main Results:
- GFT-MB in solution shows similar photobehavior to GFT.
- Protein-bound GFT exhibits locally excited (LE) singlet states and photoinduced electron transfer.
- Protein-bound GFT-MB undergoes excited state proton transfer (ESPT) due to its phenolic nature, forming phenolate-like species.
- GFT-MB@HSA shows higher fluorescence yields and longer lifetimes than GFT@HSA.
- MD simulations reveal close interaction between GFT-MB and Val116 in HSA, facilitating ESPT.
Conclusions:
- The photobehavior of GFT and its metabolite GFT-MB significantly differs when confined within a protein environment.
- ESPT is a key deactivation pathway for protein-bound GFT-MB, distinct from GFT's photoinduced electron transfer.
- Understanding these photoinduced processes is crucial for predicting and managing TKI-induced photosensitivity and adverse effects.
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