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A self-healing injectable hydrogel integrated with enzymatic and nonenzymatic antioxidants as artificial antioxidant defense system for diabetic wound healing

Chronic diabetic wounds seriously threaten human health due to their intractable nature in a complex pathological microenvironment that contains oxidative stress, persistent inflammatory status, hypoxia and bacterial infections, of which oxidative damage contributing the most. Applied materials that...

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Published in:Materials & design 2024-01, Vol.237, p.112620, Article 112620
Main Authors: Wang, Ye, Chen, Chong, He, Changyuan, Dong, Wentao, Yang, Xuekun, Wu, Ye, Liu, Jialin, Kong, Qingquan, He, Jin, Yan, Bin
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cited_by cdi_FETCH-LOGICAL-c363t-d12c488ea8fbf51dfdab6f017b24227d8615df04e2f379c6f271d7e31f72fac63
cites cdi_FETCH-LOGICAL-c363t-d12c488ea8fbf51dfdab6f017b24227d8615df04e2f379c6f271d7e31f72fac63
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container_issue
container_start_page 112620
container_title Materials & design
container_volume 237
creator Wang, Ye
Chen, Chong
He, Changyuan
Dong, Wentao
Yang, Xuekun
Wu, Ye
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Kong, Qingquan
He, Jin
Yan, Bin
description Chronic diabetic wounds seriously threaten human health due to their intractable nature in a complex pathological microenvironment that contains oxidative stress, persistent inflammatory status, hypoxia and bacterial infections, of which oxidative damage contributing the most. Applied materials that can mimic the natural intracellular antioxidant defense system are perceived to have huge therapeutic potential. Herein, we present a novel strategy to prepare a versatile nanocomposite hydrogel by incorporating the nanoenzyme (manganese dioxide (MnO2)) and nonenzymatic antioxidant components (polydopamine (PDA)) in a dynamic hydrogel network composed of thioctic acid and tannic acid (TA). The prepared hydrogel exhibited outstanding adhesive and injectable properties, making it adapt perfectly to wounds with different shapes and depths. More importantly, encapsulation of PDA@MnO2 nanoparticles (NPs) conferred the hydrogel with superior antioxidant performance to effectively scavenge multiple types of reactive nitrogen and oxygen species (RNOS) and reduce the inflammatory response by regulating macrophage polarization. Meanwhile, the hydrogel showed high-performance catalyzing ability to transfer hydrogen peroxide (H2O2) into oxygen (O2), which could further alleviate hypoxic wound environment. Moreover, the nanocomposite hydrogel exhibited excellent near-infrared (NIR) photothermal antibacterial effect. Collectively, our findings indicate that the synthesized nanocomposite hydrogel shows potential for use in a clinical setting to treat diabetic wounds.
doi_str_mv 10.1016/j.matdes.2023.112620
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subjects Diabetic wound dressing
Injectability
Nanocomposite hydrogel
Photothermal antibacterial agent
Reactive oxygen species
Self-healing
title A self-healing injectable hydrogel integrated with enzymatic and nonenzymatic antioxidants as artificial antioxidant defense system for diabetic wound healing
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