4.7 Article

Molecular collisions or resonance energy transfer in lipid vesicles? A methodology to tackle this question

Journal

JOURNAL OF MOLECULAR LIQUIDS
Volume 341, Issue -, Pages -

Publisher

ELSEVIER
DOI: 10.1016/j.molliq.2021.117405

Keywords

FRET; Stern-Volmer; Fluorescence; Laurdan; Thiosemicarbazone; DMPC vesicles

Funding

  1. CNPq research fellowship
  2. FAPESP [2017/25930-1, 2021/01593-1, 2014/50983-3, 2018/20162-9]
  3. National Institute of Science and Technology Complex Fluids (INCT-FCx) - CNPq [141260/2017-3]

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This study discusses molecular interactions in a lipid membrane using fluorescence spectroscopy data, and focuses on the fluorescence quenching mechanisms between Laurdan and 2-TSC. Results show that FRET is responsible for the non-radiative deexcitation of Laurdan in the presence of 2-TSC, providing insights into the localization of molecules in lipid membranes.
In this work, molecular interactions in a lipid membrane are discussed through fluorescence spectroscopy data, both experimentally and theoretically. In particular, the fluorescence quenching mechanisms between the fluorescent probe 6-dodecanoyl-2-dimethylaminonaphthalene (Laurdan) and the potential drug 2-nitrobenzaldehyde-thiosemicarbazone (2-TSC) were studied, both inserted in a 1,2-dipalmitoyl-snglycero-3-phosphocholine (DMPC) model membrane. The fluorescence intensity and the lifetime of Laurdan decrease dramatically in the presence of 2-TSC, in both gel and fluid phases of the DMPC bilayer. It is shown here how to identify the correct quenching mechanism, by conducting a careful analysis of the fluorescence data. The analysis of the bimolecular constant values obtained through the Stern-Volmer equation, considering the collisional mechanism, made clear the incompatibility of the obtained values with estimated diffusion coefficients for Laurdan and 2-TSC inserted into lipid bilayers. On the other hand, using the Forster's theory of resonance energy transfer (FRET) we obtained results in good agreement with the already known dynamic characteristics of a DMPC bilayer, at its both gel and fluid phases. Through spectroscopy data and computational calculation, Forster distance, energy transfer efficiency and distance distribution were obtained for the donor/acceptor pair Laurdan/2-TSC, at both gel and fluid phases of the bilayer. The distance distribution reflects the occurrence of FRET involving donor/acceptor pairs in the same leaflet of the lipid bilayer and pairs in opposite leaflet, and these results are in good agreement with our previous proposal about the lateral organization and position of Laurdan and 2-TSC molecules in a DMPC bilayer. All these results lead us to conclude that FRET between the donor Laurdan and the acceptor 2-TSC is the mechanism responsible for non-radiative deexcitation of Laurdan. The methodology used here could be extended to other pairs of donor/acceptor molecules, to contribute to the knowledge about their localizations in lipid membranes. (C) 2021 Elsevier B.V. All rights reserved.

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