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Updated: Apr 20, 2026

Creation and Transplantation of an Adipose-derived Stem Cell ASC Sheet in a Diabetic Wound-healing Model
Published on: August 4, 2017
pH-responsive and dual-dynamically crosslinked metal-phenolic hydrogel for synergistic macrophage and Th17/Treg
Yuheng Liao1, Yanzhi Zhao1, Chenyan Yu1
1Department of Orthopedics, Union Hospital, Tongji Medical College, Huazhong University of Science and Technology, No. 1277 Jiefang Avenue, Hubei, 430022, Jianghan District, Wuhan, China.
Abstract:
In recent years, there has been a progressive increase in the cumulative number of individuals afflicted with diabetic wounds, elevating this condition to a global public health concern of significant magnitude. The disruption of the immune microenvironment is recognized as a critical factor impeding the healing process of diabetic wounds. Nevertheless, existing research has predominantly concentrated on innate immune regulation, particularly targeting macrophages, while often overlooking adaptive immunity, which plays an equally vital role within the immune microenvironment. To address both innate and adaptive immune remodeling in diabetic wounds, the CSp-OxD@Cu2+/G hydrogel system has been developed. This system features a dual-dynamically crosslinked structure formed through Schiff base and borate ester bonds, with Cu2+/G nanoparticles generated via the chelation of guaiacol with copper ions. Upon application to diabetic wounds, the hydrogel system's self-healing and adhesive properties provide an effective physical barrier. Concurrently, the borate ester bonds gradually respond to H+ in the local environment, dissociating and facilitating the slow release of Cu2+/G nanoparticles, thereby reprogramming macrophages and Th17/Treg cells to concurrently regulate both innate and adaptive immune processes. This therapeutic system, characterized by its comprehensive immune regulatory effects, offers a novel platform for the management of diabetic wounds.
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