Rolling vesicles: From confined rotational flows to surface-enabled motion
Abstract
Friction forces are essential for cell movement, yet they also trigger numerous active cellular responses, complicating their measurement in vivo. Here, we introduce a synthetic model designed to measure friction forces between biomimetic membranes and substrates. The model consists of a vesicle with precisely controlled properties, fabricated via microfluidics, encapsulating a single ferromagnetic particle that is magnetically driven to rotate. The rotation of the particle generates a confined rotational flow, setting the vesicle membrane into motion. By adjusting the magnetic field frequency and vesicle size, the rotation frequency of the vesicle can be finely controlled, resulting in a rolling vesicle that functions as an effective tribological tool across a wide frequency range. At low frequencies, molecular contact between the membrane and substrate dominates frictional interactions, which enables determination of the contact friction coefficient. At higher frequencies, lubrication becomes predominant, causing the vesicles to slip rather than roll. Adjusting membrane fluidity and incorporating specific ligand–receptor interactions within this model will enable detailed studies of frictional forces in more complex biomimetic systems, providing key insights into the mechanisms of cell movement and mechanotransduction.
Article Details
Journal Info
Proceedings of the National Academy of Sciences
National Academy of Sciences
Authors (7)
Paula Magrinya
Department of Theoretical Condensed Matter Physics, Condensed Matter Physics Center, Instituto Nicolás Cabrera
Pablo Palacios-Alonso
Department of Theoretical Condensed Matter Physics, Condensed Matter Physics Center, Instituto Nicolás Cabrera
Pablo Llombart
Department of Theoretical Condensed Matter Physics, Condensed Matter Physics Center, Instituto Nicolás Cabrera
Rafael Delgado-Buscalioni
Department of Theoretical Condensed Matter Physics, Condensed Matter Physics Center, Instituto Nicolás Cabrera
Alfredo Alexander-Katz
Laura R. Arriaga
Department of Theoretical Condensed Matter Physics, Condensed Matter Physics Center, Instituto Nicolás Cabrera
Juan L. Aragones
Department of Theoretical Condensed Matter Physics, Condensed Matter Physics Center, Instituto Nicolás Cabrera