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Published on: October 15, 2015
Quantifying Ionic Liquid Affinity and Its Effect on Phospholipid Membrane Structure and Dynamics
Veerendra K Sharma1,2, Jyoti Gupta1,2, Harish Srinivasan1,2
1Solid State Physics Division, Bhabha Atomic Research Centre, Mumbai 400085, India.
Insights
Ionic liquids (ILs) disrupt lipid membranes, increasing fluidity and toxicity. Longer alkyl chains on ILs cause more significant membrane disorder and enhanced lipid diffusion.
Area of Science:
- Biomembrane science
- Physical chemistry
- Toxicology
Background:
- Understanding ionic liquid (IL) interactions with biomembranes is crucial for pharmaceutical applications and explaining IL-induced biological effects.
- Imidazolium-based ILs are widely studied for their potential in various applications, necessitating a clear understanding of their membrane interactions.
Purpose of the Study:
- To investigate how imidazolium-based ILs with varying alkyl chain lengths affect the viscoelasticity, dynamics, and phase behavior of dipalmitoylphosphatidylcholine (DPPC) model membranes.
- To elucidate the role of IL alkyl chain length in modulating membrane properties and lipid diffusion.
Main Methods:
- Utilized model membrane systems: lipid monolayers and unilamellar vesicles composed of DPPC.
- Employed Fourier transform infrared spectroscopy (FTIR) and quasielastic neutron scattering (QENS) to analyze membrane structure and dynamics.
- Performed molecular dynamics (MD) simulations to complement experimental findings and provide molecular-level insights.
Main Results:
- Both 1-decyl-3-methylimidazolium bromide (DMIM[Br]) and 1-hexyl-3-methylimidazolium bromide (HMIM[Br]) induced membrane disorder, altering area per lipid and viscoelastic properties.
- Longer alkyl chains on ILs led to stronger membrane interactions, increased disorder, lower phase transition temperatures, and more gauche defects.
- ILs significantly enhanced lipid lateral diffusion, with the effect being more pronounced in ordered membrane phases, at higher IL concentrations, and with longer IL alkyl chains.
Conclusions:
- Ionic liquids, particularly those with longer alkyl chains, disrupt lipid membrane organization, increasing fluidity and permeability.
- The enhanced membrane fluidity and permeability correlate with increased IL toxicity, providing a mechanistic link.
- These findings offer critical insights into IL-biomembrane interactions, informing their toxicological profiles and pharmaceutical development.
Abstract:
Understanding the interactions between ionic liquids (ILs) and biomembranes is pivotal for uncovering the origins of IL-induced biological activities and their potential applications in pharmaceuticals. In this study, we investigate the influence of imidazolium-based ILs on the viscoelasticity, dynamics, and phase behavior of two model membrane systems: (i) lipid monolayers and (ii) unilamellar vesicles, both composed of dipalmitoylphosphatidylcholine (DPPC). Two different ILs with varying alkyl chain lengths, namely, 1-decyl-3-methylimidazolium bromide (DMIM[Br]) and 1-hexyl-3-methylimidazolium bromide (HMIM[Br]) are used to investigate the role of alkyl chain lengths. Our findings demonstrate that both ILs induce significant disorder in lipid membranes by altering the area per lipid molecule, thereby modulating their viscoelastic properties. ILs with a longer alkyl chain show stronger interactions with membranes, causing a more pronounced disorder. Fourier transform infrared spectroscopy indicates that IL incorporation shifts the membrane's main phase transition to lower temperatures and introduces gauche defects, signifying increased structural disorder. This effect is amplified by longer alkyl chains and higher IL concentrations. Quasielastic neutron scattering studies highlight that ILs markedly enhance the lateral diffusion of lipids within the membrane leaflet, with the extent of enhancement determined by the membrane's physical state, IL concentration, and alkyl chain length. The most pronounced acceleration in lateral diffusion occurs in the ordered membrane phase with higher concentrations of the longer-chain IL. Molecular dynamics simulations corroborate these experimental findings, showing that longer-chain ILs extensively disrupt lipid organization, introduce more gauche defects, increase the area per lipid, and consequently enhance lateral diffusion. This increase in the lipid fluidity and permeability provides a mechanistic basis for the observed higher toxicity associated with longer-chain ILs. These results offer critical insights into the molecular-level interactions of ILs with lipid membranes, advancing our understanding of their toxicological and pharmaceutical implications.
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