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

Y Yuting Huang (Institute of Immunology, Zhejiang University School of Medicine) A Arash Manafirad (Department of Physics, University of Massachusetts Amherst) S Simon Matoori (Department of Pharmaceutical Sciences, Faculté de Pharmacie, Université de Montréal) L Laura R. Arriaga (Department of Theoretical Condensed Matter Physics, Condensed Matter Physics Center, Instituto Nicolás Cabrera) S Sijie Sun (Harvard John A. Paulson School of Engineering and Applied Sciences, Harvard University) A Anqi Chen X Xin Yang A Anthony D. Dinsmore (Department of Physics, University of Massachusetts Amherst) D David J. Mooney (Harvard John A. Paulson School of Engineering and Applied Sciences, Harvard University, Cambridge, MA, USA.) D David A. Weitz

Abstract

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, with two leaflets of identical compositions, or asymmetric, in with leaflets of dissimilar compositions, which can lead to dramatically altered properties. However, existing methods for producing symmetric and asymmetric hybrid vesicles often 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 with either symmetric or asymmetric leaflets and precisely engineered compositions. We find that 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 a stretchable lipid inner leaflet and a fully continuous polymer outer leaflet. This approach to precisely engineer asymmetric structures can be applied to hybrid vesicles composed of block copolymers and phospholipids soluble in chloroform and hexane, further expanding their applications.

Article Details

Volume / Issue Vol. 123, Issue 10
Published March 10, 2026
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (10)

Y

Yuting Huang

Institute of Immunology, Zhejiang University School of Medicine

A

Arash Manafirad

Department of Physics, University of Massachusetts Amherst

S

Simon Matoori

Department of Pharmaceutical Sciences, Faculté de Pharmacie, Université de Montréal

L

Laura R. Arriaga

Department of Theoretical Condensed Matter Physics, Condensed Matter Physics Center, Instituto Nicolás Cabrera

S

Sijie Sun

Harvard John A. Paulson School of Engineering and Applied Sciences, Harvard University

A

Anqi Chen

X

Xin Yang

A

Anthony D. Dinsmore

Department of Physics, University of Massachusetts Amherst

D

David J. Mooney

Harvard John A. Paulson School of Engineering and Applied Sciences, Harvard University, Cambridge, MA, USA.

D

David A. Weitz