Abstract
The lubrication properties of saturated PC lipid vesicles containing high cholesterol content under high loads were examined by detailed surface force balance measurements of normal and shear forces between two surface-attached lipid layers. Forces between two opposing mica surfaces bearing distearoylphosphatidylcholine (PC) (DSPC) small unilamellar vesicles (SUVs, or liposomes), or bilayers, with varying cholesterol content were measured across water, whereas dimyristoyl PC (DMPC), dipalmitoyl PC (DPPC), and DSPC SUVs containing 40% cholesterol were measured across liposome dispersions of SUVs of the same lipid composition as in the adsorbed layers. The results clearly demonstrate decreased stability and resistance to normal load with the increase in cholesterol content of DSPC SUVs. Friction coefficients between two 10% cholesterol PC-bilayers were in the same range as for 40% cholesterol bilayers (μ ≈ 10-3), indicating that cholesterol has a more substantial effect on the mechanical properties of a bilayer than on its lubrication performance. We further find that the lubrication efficiency of DMPC and DPPC with 40% cholesterol is superior to that of DSPC 40% cholesterol, most likely because of enhanced hydration-lubrication in these systems. We previously found that when experiments are performed in the presence of a lipid reservoir, layers can self-heal and therefore their robustness is less important under such conditions. We conclude that the effect of cholesterol in decreasing the stability is more pronounced than its effect on hydration, but the stability is, in turn, less important when a lipid reservoir is present. This study complements our previous work and sheds light on the effect of cholesterol, a prominent and important physiological lipid, on the mechanical and lubrication properties of gel-phase lipid layers.
| Original language | English |
|---|---|
| Pages (from-to) | 7459-7467 |
| Number of pages | 9 |
| Journal | Langmuir |
| Volume | 33 |
| Issue number | 30 |
| DOIs | |
| Publication status | Published - 1 Aug 2017 |
Funding
We thank the European Research Council (ERC Advanced Grant HydrationLube), the Charles McCutchen Foundation, the Israel Science Foundation through the ISF-NSFC Programme, the Minerva Foundation and the American Chemical Society (ACS-PRF no. 55089-ND10) for supporting this work. This work was made possible in part through the historic generosity of the Harold Perlman Family. We thank Noa Iuster for assistance with graphics.
| Funders | Funder number |
|---|---|
| ACS-PRF | 55089-ND10 |
| Charles McCutchen Foundation | |
| American Chemical Society | |
| European Research Council | |
| Minerva Foundation | |
| Israel Science Foundation |
UN SDGs
This output contributes to the following UN Sustainable Development Goals (SDGs)
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SDG 6 Clean Water and Sanitation
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