Mechanical performance of hybrid polymer-lipid vesicles with leaflet asymmetry engineered using microfluidics

Fuente: arXiv
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Auteurs principaux: Huang, Yuting, Manafirad, Arash, Matoori, Simon, Arriaga, Laura R., Sun, Sijie, Chen, Anqi, Dinsmore, Anthony D., Mooney, David J., Weitz, David A.
Format: Preprint
Publié: 2025
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author Huang, Yuting
Manafirad, Arash
Matoori, Simon
Arriaga, Laura R.
Sun, Sijie
Chen, Anqi
Dinsmore, Anthony D.
Mooney, David J.
Weitz, David A.
author_facet Huang, Yuting
Manafirad, Arash
Matoori, Simon
Arriaga, Laura R.
Sun, Sijie
Chen, Anqi
Dinsmore, Anthony D.
Mooney, David J.
Weitz, David A.
contents Lipid vesicles consist of aqueous cores surrounded by a bilayer of phospholipids. Hybrid polymer-lipid vesicles incorporate both polymers and lipids, offering promising properties for developing pharmaceuticals, biosensors, and artificial cells. The hybrid vesicles can be symmetric, in which their two leaflets contain identical compositions, or asymmetric, in which the leaflets possess dissimilar compositions and can lead to dramatically modified properties. However, methods to produce both symmetric and asymmetric hybrid vesicles result in heterogenous compositions and sizes, making it challenging to quantify the effect of asymmetry and limiting applications. Here, we use a microfluidic approach to produce hybrid vesicles containing symmetric or asymmetric leaflets with precisely engineered compositions. We find the vesicles with asymmetric leaflets are significantly stiffer and tougher than those with symmetric leaflets; moreover, the lateral diffusivity of lipids is greatly decreased. The structure for improved toughness consists of an inner leaflet that is a stretchable lipid leaflet and an outer leaflet that is a fully continuous polymer leaflet. This technique of precisely engineering asymmetric structures may be applied to hybrid vesicles composed of block copolymers and phospholipids dissolvable in chloroform and hexane, further expanding their applications.
format Preprint
id arxiv_https___arxiv_org_abs_2509_02194
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Mechanical performance of hybrid polymer-lipid vesicles with leaflet asymmetry engineered using microfluidics
Huang, Yuting
Manafirad, Arash
Matoori, Simon
Arriaga, Laura R.
Sun, Sijie
Chen, Anqi
Dinsmore, Anthony D.
Mooney, David J.
Weitz, David A.
Soft Condensed Matter
Applied Physics
Lipid vesicles consist of aqueous cores surrounded by a bilayer of phospholipids. Hybrid polymer-lipid vesicles incorporate both polymers and lipids, offering promising properties for developing pharmaceuticals, biosensors, and artificial cells. The hybrid vesicles can be symmetric, in which their two leaflets contain identical compositions, or asymmetric, in which the leaflets possess dissimilar compositions and can lead to dramatically modified properties. However, methods to produce both symmetric and asymmetric hybrid vesicles result in heterogenous compositions and sizes, making it challenging to quantify the effect of asymmetry and limiting applications. Here, we use a microfluidic approach to produce hybrid vesicles containing symmetric or asymmetric leaflets with precisely engineered compositions. We find the vesicles with asymmetric leaflets are significantly stiffer and tougher than those with symmetric leaflets; moreover, the lateral diffusivity of lipids is greatly decreased. The structure for improved toughness consists of an inner leaflet that is a stretchable lipid leaflet and an outer leaflet that is a fully continuous polymer leaflet. This technique of precisely engineering asymmetric structures may be applied to hybrid vesicles composed of block copolymers and phospholipids dissolvable in chloroform and hexane, further expanding their applications.
title Mechanical performance of hybrid polymer-lipid vesicles with leaflet asymmetry engineered using microfluidics
topic Soft Condensed Matter
Applied Physics
url https://arxiv.org/abs/2509.02194