Bioinspired zwitterionic microgel-based coating : Controllable microstructure, high stability, and anticoagulant properties

Copyright © 2022. Published by Elsevier Ltd..

Zwitterionic polymers have shown promising results in non-fouling and preventing thrombosis. However, the lack of controlled surface coverage hinders their application for biomedical devices. Inspired by the natural biological surfaces, a facile zwitterionic microgel-based coating strategy is developed by the co-deposition of poly (sulfobetaine methacrylate-co-2-aminoethyl methacrylate) microgel (SAM), polydopamine (PDA), and sulfobetaine-modified polyethyleneimine (PES). The SAMs were used to construct controllable morphology by using the PDA combined with PES (PDAS) as the intermediate layer, which can be easily modulated via adjusting the crosslinking degree and contents of SAMs. The obtained SAM/PDAS coatings exhibit high anti-protein adhesive properties and can effectively inhibit the adhesion of cells, bacteria, and platelet through the synergy of high deposition density and controllable morphology. In addition, the stability of SAM/PDAS coating is improved owing to the anchoring effects of PDAS to substrate and SAMs. Importantly, the ex vivo blood circulation test in rabbits suggests that the SAM/PDAS coating can effectively decrease thrombosis without anticoagulants. This study provides a versatile coating method to address the integration of zwitterionic microgel-based coatings with high deposition density and controllable morphology onto various substrates for wide biomedical device applications. STATEMENT OF SIGNIFICANCE: Thrombosis is a major cause of medical device implantation failure, which results in significant morbidity and mortality. In this study, inspired by natural biological surfaces (fish skin and vascular endothelial layer) and the anchoring ability of mussels, we report a convenient and efficient method to firmly anchor zwitterionic microgels using an oxidative co-deposition strategy. The prepared coating has excellent antifouling and antithrombotic properties through the synergistic effect of physical morphology and chemical composition. This biomimetic surface engineering strategy is expected to provide new insights into the clinical problems of blood-contacting devices related to thrombosis.

Medienart:

E-Artikel

Erscheinungsjahr:

2022

Erschienen:

2022

Enthalten in:

Zur Gesamtaufnahme - volume:151

Enthalten in:

Acta biomaterialia - 151(2022) vom: 01. Okt., Seite 290-303

Sprache:

Englisch

Beteiligte Personen:

Yao, Mengmeng [VerfasserIn]
Sun, Xia [VerfasserIn]
Guo, Zhicheng [VerfasserIn]
Zhao, Zhongming [VerfasserIn]
Yan, Zhuojun [VerfasserIn]
Yao, Fanglian [VerfasserIn]
Zhang, Hong [VerfasserIn]
Li, Junjie [VerfasserIn]

Links:

Volltext

Themen:

3SCV180C9W
8CVU22OCJW
9002-98-6
Anticoagulants
Antithrombotic
Betaine
Bionic microstructure
Fibrinolytic Agents
Journal Article
Methacrylates
Microgels
Non-fouling
Polyethyleneimine
Polymers
Research Support, Non-U.S. Gov't
Sulfobetaine
Zwitterions

Anmerkungen:

Date Completed 29.09.2022

Date Revised 16.11.2022

published: Print-Electronic

Citation Status MEDLINE

doi:

10.1016/j.actbio.2022.08.022

funding:

Förderinstitution / Projekttitel:

PPN (Katalog-ID):

NLM345139208