Topology and kinetic pathways of colloidosome assembly and disassembly
Abstract
Closed capsules, such as lipid vesicles, soap bubbles, and emulsion droplets, are ubiquitous throughout biology, engineered matter, and everyday life. Their creation and disintegration are defined by a singularity that separates a topologically distinct extended liquid film from a boundary-free closed shell. Such topology-changing processes are of fundamental interest. They are also essential for intercellular transport, transcellular communication, and drug delivery. However, studies of vesicle formation are challenging because of the rapid dynamics and small length scale involved. We develop fluid colloidosomes, micrometer-sized analogues of lipid vesicles. The mechanics of colloidosomes and lipid vesicles are described by the same theoretical model. We study colloidosomes close to their disk-to-sphere topological transition. Intrinsic colloidal length and time scales slow down the dynamics to reveal colloidosome conformations in real time during their assembly and disassembly. Remarkably, the lowest-energy pathway by which a closed vesicle transforms into a flat disk involves a topologically distinct cylinder-like intermediate. These results reveal aspects of topological changes that are relevant to all liquid capsules. They also provide a robust platform for the encapsulation, transport, and delivery of nanosized cargoes.
Article Details
Journal Info
Proceedings of the National Academy of Sciences
National Academy of Sciences
Authors (10)
Raymond Adkins
Department of Physics
Joanna Robaszewski
Department of Physics
Seungwoo Shin
Department of Physics
Fridtjof Brauns
Kavli Institute for Theoretical Physics
Leroy Jia
Applied and Computational Mathematics Division
Ayantika Khanra
Department of Physics
Prerna Sharma
Department of Physics
Robert A. Pelcovits
Department of Physics
Thomas R. Powers
Department of Physics
Zvonimir Dogic
Department of Physics