Issue 16, 2024

Stable and permeable polyion complex vesicles designed as enzymatic nanoreactors

Abstract

Polymeric vesicles are perspective vehicles for fabricating enzymatic nanoreactors towards diverse biomedical and catalytic applications, yet the design of stable and permeable vesicles remains challenging. Herein, we developed polyion complex (PIC) vesicles featuring high stability and a permeable membrane for adequate enzyme loading and activation. Our design relies on co-assembly of an anionic diblock copolymer (PSS96-b-PEO113) with cationic branched poly(ethylenimine) (PEI). The polymer combination endows strong electrostatic interaction between the PSS and PEI building blocks, so their assembly can be implemented at a high salt concentration (500 mM NaCl), under which the charge interaction of the enzyme–polymer is inhibited. This control realizes the successful and safe loading of enzymes associated with the formation of stable PIC vesicles with an intrinsic permeable membrane that is favourable for enhancing enzymatic activity. The control factors for vesicle formation and enzyme loading were investigated, and the general application of loading different enzymes for cascade reaction was validated as well. Our study reveals that proper design and combination of polyelectrolytes is a facile strategy for fabricating stable and permeable polymeric PIC vesicles, which exhibit clear advantages for loading and activating enzymes, consequently boosting their diverse applications as enzymatic nanoreactors.

Graphical abstract: Stable and permeable polyion complex vesicles designed as enzymatic nanoreactors

Supplementary files

Article information

Article type
Paper
Submitted
16 Feb 2024
Accepted
27 Mar 2024
First published
28 Mar 2024

Soft Matter, 2024,20, 3499-3507

Stable and permeable polyion complex vesicles designed as enzymatic nanoreactors

Y. Wan, Y. Qiu, J. Zhou, J. Liu, M. A. C. Stuart, Y. Peng and J. Wang, Soft Matter, 2024, 20, 3499 DOI: 10.1039/D4SM00216D

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