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Injectable self-healing ceria-based nanocomposite hydrogel with ROS-scavenging activity for skin wound repair
Author(s) -
Xueyun Gong,
Meng Luo,
Min Wang,
Wen Niu,
Yidan Wang,
Bo Lei
Publication year - 2021
Publication title -
regenerative biomaterials
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.166
H-Index - 25
ISSN - 2056-3426
DOI - 10.1093/rb/rbab074
Subject(s) - wound healing , self healing hydrogels , reactive oxygen species , nanocomposite , skin repair , regeneration (biology) , chemistry , biomedical engineering , cerium oxide , materials science , nanotechnology , polymer chemistry , surgery , oxide , microbiology and biotechnology , organic chemistry , biochemistry , medicine , biology
Excessive reactive oxygen species (ROS) in the injured skin may impede the wound repair and skin regeneration. Herein, we develop an injectable self-healing ceria-based nanocomposite hydrogel with ROS-scavenging activity to accelerate wound healing. The nanocomposite hydrogels were successfully prepared by coating cerium oxide nanorods with polyethylenimine and crosslinked with benzaldehyde-terminated F127 (F127-CHO) through the dynamic Schiff-base reaction (FVEC hydrogel). The results showed that the FVEC hydrogel possessed the good thermosensitivity, injectability, self-healing ability and ROS scavenging activity. The subcutaneous implantation experiments in mice confirmed that FVEC hydrogels are biocompatible and biodegradable in vivo. The full-thickness skin wound studies showed that FVEC hydrogel could significantly enhance the wound healing and epithelium regeneration with the formation of hair follicle and adipocyte tissue. This work provides a new strategy for the development of multifunctional Ce-based nanocomposite hydrogel for full-thickness skin wound healing and regeneration.

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