Lipid Saturation and Cholesterol Drive the Mechanical Response of Lipid Bilayer to Ionic Liquid: An Atomic Force

Alyona Yedelkina1,2, Brian J Rodriguez1,2, Alessandro Podestà3

  • 1School of Physics, University College Dublin, Dublin D04 N2E5, Ireland.

Insights

Ionic liquids (ILs) impact biomembrane mechanics by altering lipid saturation and cholesterol content. This study reveals how [C6mim][Cl] modifies membrane properties, offering insights for nanobiotechnology applications.

Area of Science:

  • Biophysics
  • Materials Science
  • Nanotechnology

Background:

  • Ionic liquids (ILs) are amphiphilic electrolytes with potential for modulating biomembrane properties.
  • Understanding IL-lipid interactions is crucial for their application but remains poorly characterized.

Purpose of the Study:

  • To investigate the effect of the imidazolium IL [C6mim][Cl] on the structural and mechanical properties of phosphatidylcholine bilayers.
  • To determine how lipid acyl-chain saturation and cholesterol content influence IL-membrane interactions.

Main Methods:

  • Atomic force microscopy (AFM) was used to quantify membrane mechanics.
  • Measurements included rupture force (RF) and Young's modulus (YM).
  • Experiments were conducted below the critical micellar concentration of the IL.

Main Results:

  • [C6mim][Cl] significantly altered membrane mechanics (RF and YM) without changing topography.
  • Effects were strongly dependent on lipid saturation and cholesterol presence.
  • Specific changes included decreased RF/YM for DPPC-Chol, increased RF for POPC (reverted with cholesterol), and increased YM for DOPC (reverted with cholesterol).

Conclusions:

  • Lipid saturation and cholesterol content are key variables in IL-membrane interactions.
  • The organic cation of ILs plays a critical role in modulating bilayer mechanics.
  • Findings provide a framework for rationally tuning ILs to engineer membrane properties for applications in nanobiotechnology, drug delivery, and membrane engineering.

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