A Zn-MOF-GOx-based cascade nanoreactor promotes diabetic infected wound healing by NO release and microenvironment regulation

IF 9.4 1区 医学 Q1 ENGINEERING, BIOMEDICAL Acta Biomaterialia Pub Date : 2024-05-09 DOI:10.1016/j.actbio.2024.05.015
Guangli Xiang , Bingjie Wang , Wenshang Zhang , Yu Dong , Jiaojiao Tao , Aijia Zhang , Rui Chen , Tianze Jiang , Xia Zhao
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Abstract

Diabetic wound healing is a great clinical challenge due to the microenvironment of hyperglycemia and high pH value, bacterial infection and persistent inflammation. Here, we develop a cascade nanoreactor hydrogel (Arg@Zn-MOF-GOx Gel, AZG-Gel) with arginine (Arg) loaded Zinc metal organic framework (Zn-MOF) and glucose oxidase (GOx) based on chondroitin sulfate (CS) and Pluronic (F127) to accelerate diabetic infected wound healing. GOx in AZG-Gel was triggered by hyperglycemic environment to reduce local glucose and pH, and simultaneously produced hydrogen peroxide (H2O2) to enable Arg-to release nitric oxide (NO) for inflammation regulation, providing a suitable microenvironment for wound healing. Zinc ions (Zn2+) released from acid-responsive Zn-MOF significantly inhibited the proliferation and biofilm formation of S.aureus and E.coli. AZG-Gel significantly accelerated diabetic infected wound healing by down-regulating pro-inflammatory tumor necrosis factor (TNF)-α and interleukin (IL)-6, up-regulating anti-inflammatory factor IL-4, promoting angiogenesis and collagen deposition in vivo. Collectively, our nanoreactor cascade strategy combining “endogenous improvement (reducing glucose and pH)” with “exogenous resistance (anti-bacterial and anti-inflammatory)” provides a new idea for promoting diabetic infected wound healing by addressing both symptoms and root causes.

Statement of significance

A cascade nanoreactor (AZG-Gel) is constructed to solve three key problems in diabetic wound healing, namely, hyperglycemia and high pH microenvironment, bacterial infection and persistent inflammation. Local glucose and pH levels are reduced by GOx to provide a suitable microenvironment for wound healing. The release of Zn2+ significantly inhibits bacterial proliferation and biofilm formation, and NO reduces wound inflammation and promotes angiogenesis. The pH change when AZG-Gel is applied to wounds is expected to enable the visualization of wound healing to guide the treatment of diabetic wound. Our strategy of “endogenous improvement (reducing glucose and pH)” combined with “exogenous resistance (anti-bacterial and anti-inflammatory)” provides a new way for promoting diabetic wound healing.

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基于 Zn-MOF-GOx 的级联纳米反应器通过氮氧化物释放和微环境调节促进糖尿病感染伤口愈合
由于高血糖、高 pH 值、细菌感染和持续炎症等微环境因素,糖尿病伤口愈合是一项巨大的临床挑战。在这里,我们开发了一种级联纳米反应器水凝胶(Arg@Zn-MOF-GOx Gel,AZG-Gel),其中含有精氨酸(Arg)负载的金属锌有机框架(Zn-MOF)和葡萄糖氧化酶(GOx),基于硫酸软骨素(CS)和Pluronic(F127),以加速糖尿病感染伤口的愈合。AZG-Gel 中的 GOx 可在高血糖环境下触发,降低局部葡萄糖和 pH 值,同时产生过氧化氢(H2O2),使 Arg 释放一氧化氮(NO)以调节炎症,为伤口愈合提供合适的微环境。酸响应 Zn-MOF 释放的锌离子(Zn2+)能显著抑制金黄色葡萄球菌和大肠杆菌的增殖和生物膜的形成。通过下调促炎性肿瘤坏死因子(TNF)-α 和白细胞介素(IL)-6,上调抗炎因子 IL-4,促进血管生成和胶原沉积,AZG-凝胶明显加速了糖尿病感染伤口的愈合。总之,我们的纳米因子级联策略将 "内源性改善(降低葡萄糖和 pH 值)"与 "外源性抵抗(抗菌和抗炎)"相结合,为标本兼治促进糖尿病感染伤口愈合提供了新思路。意义说明:构建级联纳米反应器(AZG-凝胶)是为了解决糖尿病伤口愈合的三个关键问题,即高血糖和高 pH 微环境、细菌感染和持续炎症。GOx 降低了局部葡萄糖和 pH 值,为伤口愈合提供了适宜的微环境。Zn2+ 的释放可明显抑制细菌增殖和生物膜的形成,NO 可减少伤口发炎并促进血管生成。在伤口上涂抹 AZG 凝胶时,pH 值的变化有望使伤口愈合可视化,从而指导糖尿病伤口的治疗。我们的 "内源性改善(降低葡萄糖和 pH 值)"与 "外源性抵抗(抗菌消炎)"相结合的策略为促进糖尿病伤口愈合提供了一条新途径。
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文献相关原料
公司名称产品信息其他信息采购帮参考价格
上海源叶 Glucose oxidase (GOx)
¥85.00~¥119974.00
上海源叶 Streptozotocin (STZ)
¥42.00~¥18434.37
阿拉丁 Dimethylimidazole
¥20.00~¥5898.00
阿拉丁 Glucose
¥80.00~¥1950.00
索莱宝 3-(4,5)-Dimethylthiahiazo(-z-y1)-3,5-di-phenytetrazoliumromide (MTT)
¥273.00~¥932.00
索莱宝 Polyethylene-poly(propylene glycol) 127 (F127)
来源期刊
Acta Biomaterialia
Acta Biomaterialia 工程技术-材料科学:生物材料
CiteScore
16.80
自引率
3.10%
发文量
776
审稿时长
30 days
期刊介绍: Acta Biomaterialia is a monthly peer-reviewed scientific journal published by Elsevier. The journal was established in January 2005. The editor-in-chief is W.R. Wagner (University of Pittsburgh). The journal covers research in biomaterials science, including the interrelationship of biomaterial structure and function from macroscale to nanoscale. Topical coverage includes biomedical and biocompatible materials.
期刊最新文献
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