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Updated: May 12, 2026

A Protocol for Constructing a Rat Wound Model of Type 1 Diabetes
Published on: February 17, 2023
Mitophagy-activating nanozyme hydrogel for enhanced diabetic wound healing
Jia Zhang1,2, Zhenshuai Tang3, Xuanfen Zhang2
1Key Laboratory of Micro-Nano Materials for Energy Storage and Conversion of Henan Province, Institute of Surface Micro and Nano Materials, College of Chemical and Materials Engineering, Xuchang University, Xuchang, Henan, 461000, PR China.
None:
Diabetic wound healing remains a formidable clinical challenge. Mitochondrial dysfunction-driven oxidative stress is a central pathological driver of impaired diabetic wound healing, yet targeted interventions for mitochondrial repair and mitophagy modulation are lacking. Herein, we report a mitochondria-targeted selenium-doped carbon dots (Se-CDs) nanozyme hydrogel system (Se-CDs@Gelatin-TA) with potent reactive oxygen species (ROS)-scavenging capacity and PINK1/Parkin-mediated mitophagy-regulating activity for diabetic wound regeneration. The Se-CDs exhibited biocompatibility, broad-spectrum antioxidant activities, specific mitochondrial targeting ability due to selenium doping, and intrinsic blue fluorescence enabled mitochondrial co-localization tracking without external labels. Encapsulation of Se-CDs into a gelatin-tannic acid hydrogel enabled sustained release of the nanozyme. In vitro studies demonstrated that Se-CDs effectively scavenged intracellular and mitochondrial ROS, suppressed high glucose-induced fibroblast apoptosis, and restored mitophagic flux through activation of the PINK1/Parkin pathway an effect abrogated by mitophagy inhibitor 3-MA and siRNA-mediated knockdown of PINK1/Parkin. In vivo, topical application of Se-CDs@Gelatin-TA hydrogel accelerated wound closure, reduced inflammatory infiltration, enhanced collagen deposition, and restored endogenous antioxidant enzyme activity in wound tissues. This work presents a novel nanozyme-based targeted strategy for diabetic wounds, leveraging Se-CDs to modulate mitophagy and redox homeostasis, and provides mechanistic insights into the role of PINK1/Parkin-mediated mitophagy in diabetic wound repair.
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