bioRxiv · 10.1101/2021.07.12.452073
Long chain lipids facilitate insertion of large nanoparticles into membranes of small unilamellar vesicles
Abstract
Insertion of hydrophobic nanoparticles into phospholipid bilayers is limited to small particles that can incorporate into the hydrophobic membrane core in between the two lipid leaflets. Incorporation of nanoparticles above this size limit requires development of challenging surface engineering methodologies. In principle, increasing membrane thickness should facilitate incorporation of larger nanoparticles. Here, we explore the effect of incorporating very long phospholipids (C24:1) into small unilamellar vesicles on the membrane insertion efficiency of hydrophobic nanoparticles that are 5-13 nm in diameter. To this end, we improved an existing vesicle preparation protocol and utilized cryogenic electron microscopy imaging to examine the mode of interaction and to evaluate the insertion efficiency of membrane-inserted nanoparticles. We also perform classical, coarse-grained molecular dynamics simulations to identify changes in lipid membrane structural properties that may increase insertion efficiency. Our results indicate that long-chain lipids increase the insertion efficiency by preferentially accumulating near membrane-inserted nanoparticles to reduce the thermodynamically unfavorable disruption of the membrane.
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Marzouq, A., Morgenstein, L., Yudovich, S., Atkins, A., Grupi, A., Weiss, S.. 2021-07-13. Long chain lipids facilitate insertion of large nanoparticles into membranes of small unilamellar vesicles. https://doi.org/10.1101/2021.07.12.452073
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