bioRxiv Science⌕ Search

Biology subjects

von Klitzing, R.

Publications and source records attributed to von Klitzing, R..

2 recordsLinked to original sources

Pressure-distance curves of identical and dissimilar lipid membrane surfaces in water

Investigations of the hydration repulsion between hydrophilic soft interfaces in water, in particular between lipid membranes, rely on accurate experimental measurements of the associated pressure-distance curves. Conventional experimental approaches face challenges especially when it comes to the pressure-distance curves between dissimilar surfaces, a scenario with particular value for the study of the mechanisms responsible for the hydration repulsion. Here, we present an alternative approach based on solid-supported inverse lipid bilayers (ILBs) in which two hydrophilic monolayer surfaces face each other across a thin water layer, as evidenced through x-ray reflectometry. The water uptake as a function of the dehydrating osmotic pressure is precisely measured with the help of ellipsometry under controlled humidity conditions. The measurements reproduce the known hydration decay lengths of interacting phospholipid membrane surfaces and of interacting glycolipid membrane surfaces. In addition, we present pressure-distance curves of the interaction between two dissimilar membrane surfaces, with phospholipids on one side and glycolipids on the other side. These unique measurements of asymmetrical interaction scenarios result in a curve that is very similar to that of two interacting glycolipid membrane surfaces, which can be rationalized on the basis of our current knowledge of the repulsion mechanisms.

biophysics↗

Small-angle and quasi-elastic neutron scattering from polydisperse oligolamellar vesicles containing glycolipids

Glycolipids are known to stabilize biomembrane multilayers through preferential sugar-sugar interactions that act as weak transient membrane cross-links. Here, we use small-angle and quasi-elastic neutron scattering on oligolamellar phospholipid vesicles containing defined glycolipid fractions in order to elucidate the influence of glycolipids on membrane mechanics and dynamics. Small-angle neutron scattering (SANS) reveals that the oligolamellar vesicles (OLVs) obtained by extrusion are polydisperse with regard to the number of lamellae, n, which renders the interpretation of the quasi-elastic neutron spin echo (NSE) data non-trivial. To overcome this problem, we propose a method to model the NSE data in a rigorous fashion based on the obtained histograms of n and on their q-dependent intensity-weighted contribution. This procedure yields meaningful values for the bending rigidity of individual lipid membranes and insights into the mechanical coupling between adjacent membrane lamellae, including the effect of the glycolipids.

biophysics↗