Related Experiment Video
Updated: Sep 29, 2026

Fabricating Multi-Component Lipid Nanotube Networks Using the Gliding Kinesin Motility Assay
Published on: July 26, 2021
Lipid network crosslinked hydrogels control material dynamics across multiple length scales through lipid movement
Neil J Baugh1, Michelle S Huang2,3, Narelli de Paiva Narciso1
1Department of Materials Science and Engineering, Stanford University, Stanford, CA, USA.
Abstract:
Control over network dynamics across length scales is a feature of natural materials challenging to replicate in synthetic hydrogels. Taking inspiration from biological materials that feature lipids as structural elements, we introduce Lipid Network Crosslinked (LINC) hydrogels that exploit the mobility of individual lipids within self-assembled liposomes as covalent, network-crosslinking points. These mobile, covalent crosslinks increase hydrogel stress relaxation rates over 20-fold compared to polymer-only hydrogels with equivalent stiffness. Liposome design parameters, including degree of surface functionalization and tail saturation, provide a means to independently control the macroscale storage moduli and stress relaxation behavior. Finally, we place cell-adhesive ligands onto more mobile or less mobile network elements. Human neural progenitor cells within LINC hydrogels significantly alter their phenotype in response to nanoscale ligand dynamics. These results establish LINC hydrogels as biomimetic materials that leverage nanoscale lipid mobility within a macroscale polymeric network to control dynamics at multiple length scales.
Related Concept Videos
Membrane Fluidity
Mosaic nature of the membrane
The mosaic characteristic of the membrane helps the plasma membrane remain fluid. The integral proteins and lipids exist as separate but loosely-attached molecules in the membrane. The membrane is a relatively...
Protein Diffusion in the Membrane

