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Study on the interaction of a cyanine dye with human serum transferrin
Author(s) -
Zhang Xiufeng,
Chen Lei,
Yang Qianfan,
Li Qian,
Sun Xiaoran,
Chen Hongbo,
Yang Guang,
Tang Yalin
Publication year - 2015
Publication title -
luminescence
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.428
H-Index - 45
eISSN - 1522-7243
pISSN - 1522-7235
DOI - 10.1002/bio.2873
Subject(s) - cyanine , chemistry , fluorescence , circular dichroism , transferrin , quenching (fluorescence) , förster resonance energy transfer , hydrogen bond , tryptophan , photochemistry , stereochemistry , molecule , biochemistry , organic chemistry , amino acid , physics , quantum mechanics
Complexation between the primary carrier of ligands in blood plasma, human serum transferrin (Tf), and a cyanine dye, 3,3′‐di(3‐sulfopropyl)‐4,5,4′,5′‐dibenzo‐9‐phenyl‐thiacarbocyanine‐triethylam monium salt (PTC) was investigated using fluorescence spectra, UV/Vis absorption spectra, synchronous fluorescence spectra, circular dichroism (CD) and molecular dynamic docking. The experimental results demonstrate that the formation of PTC–Tf complex is stabilized by van der Waal's interactions and hydrogen bonds, and the binding constants were found to be 8.55 × 10 6 , 8.19 × 10 6 and 1.75 × 10 4  M −1 . Moreover, fluorescence experiments prove that the operational mechanism for the fluorescence quenching is static quenching and non‐radiative energy transfer. Structural investigation of the PTC–Tf complexes via synchronous fluorescence spectra and CD showed that the structure of Tf became more stable with a major increase in the α ‐helix content and increased polarity around the tryptophan residues after PTC binding. In addition, molecular modeling highlights the residues located in the N‐lobe, which retain high affinity for PTC. The mode of action of the PTC–Tf complex is illustrated by these results, and may provide an effective pathway for the transport and targeted delivery of antitumor agents. Copyright © 2015 John Wiley & Sons, Ltd.

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