Elucidation of binding mechanisms of bovine serum albumin and 1-alkylsulfonates with different hydrophobic chain lengths

Ola Grabowska (First Author), Sergey A. Samsonov (Co-Author), Małgorzata M. Kogut-Günthel (Co-Author), Krzysztof Żamojć (Co-Author), Dariusz Wyrzykowski* (Last Author)

*Corresponding author for this work

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12 Scopus citations

Abstract

In this article, the binding interactions between bovine serum albumin (BSA) and three 1-alkylsulfonates, namely sodium 1-dodecanesulfonate, sodium 1-decanesulfonate, and sodium 1-octanesulfonate, have been thoroughly investigated. The study employed various experimental techniques such as isothermal titration calorimetry (ITC), steady-state fluorescence spectroscopy (SF), circular dichroism spectroscopy (CD), and molecular dynamics-based simulations. The objective was to understand the influence of the alkyl chain length of the investigated ligands on several aspects, including the strength of the interaction, the stoichiometry of the resulting complexes, the number of BSA binding sites, and the underlying mechanisms of binding. Notably, the study also demonstrated that sodium dodecyl sulfate (S12S) can serve as an effective site marker for BSA when studying ligands with similar structural and topological features. These findings may have significant implications for enhancing our understanding of the interactions between small amphiphilic molecules and proteins.

Translated title of the contributionAufklärung der Bindungsmechanismen von Rinderserumalbumin und 1-Alkylsulfonaten mit unterschiedlichen hydrophoben Kettenlängen
Original languageEnglish
Article number131134
JournalInternational Journal of Biological Macromolecules
Volume266
DOIs
StatePublished - May 2024

Keywords

  • 1-Alkylsulfonates
  • Bovine serum albumin
  • Site marker

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