Saswati Panda, Yuqi Huang, Gang-yu Liu, Roland Faller
Knowledge of AFM tip and lipid bilayer stack interactions is essential for designing and developing nano- to mesoscale lipid constructs. In this study, a model was developed to reveal the complex molecular mechanism governing tip-lipid interactions. This complexity in the interaction forces during penetration leading to a disturbance of lipid bilayers is explored using coarse-grained MARTINI molecular dynamics simulations for a multibilayer 1-palmitoyl-2-oleoylphosphatidylcholine (POPC) lipid system and an AFM tip apex. Force-distance profiles acquired during AFM tip penetration displayed a sawtooth pattern with a periodicity consistent with the bilayer thickness. This computation provides mechanistic insights into this process: a layer-by-layer penetration with distinct features in force-distance traces to specific molecular events such as climbing, adhesion, and compression. The outcomes benefit development of engineered lipid-based materials used in drug and vaccine delivery and fabrication of lipid-based nanodevices and biosensors.