Construction of multifunctional hydrogel based on the tannic acid-metal coating decorated MoS2 dual nanozyme for bacteria-infected wound healing

IF 18 1区 医学 Q1 ENGINEERING, BIOMEDICAL
Yang Li , Rongzhan Fu , Zhiguang Duan , Chenhui Zhu , Daidi Fan
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引用次数: 110

Abstract

Bacterial infection, tissue hypoxia and inflammatory response can hinder the infected wound repair process. To mitigate the above issues, tannic acid-chelated Fe-decorated molybdenum disulfide nanosheets (MoS2@TA/Fe NSs) with dual enzyme activities were developed and anchored to a multifunctional hydrogel. The hydrogel exhibited excellent antibacterial ability owing to the combined effects of photothermal therapy (PTT), glutathione (GSH) loss, and the peroxidase (POD)-like activity (catalyse H2O2 into ·OH under acid condition) of MoS2@TA/Fe NSs. Benefitting from the catalase (CAT)-like activity, the hydrogel could decompose H2O2 into O2 at neutral pH to relieve hypoxia and supply adequate O2. POD-like activity was mainly attributed to MoS2 NSs, while CAT-like activity was primarily due to TA/Fe complex. Moreover, MoS2@TA/Fe NSs endowed the hydrogel with outstanding anti-oxidant ability to scavenge redundant reactive oxygen species (ROS) and reactive nitrogen species (RNS) under neutral environment to maintain the balance of antioxidant systems and prevent inflammation. In addition, the hydrogel could inhibit the release of inflammatory factors for the anti-inflammatory property of TA. TA retained partial phenolic hydroxyl groups, which cross-linked the nanosheets to the network structure of the hydrogel and promoted the adhesion of hydrogels. Due to the dynamic boron ester bonds between polyvinyl alcohol (PVA), dextran (Dex), MoS2@TA/Fe, and borax, the hydrogel demonstrated fast self-healing and rapid shape adaptability. This shape-adaptable adhesive hydrogel could fill the whole wound and closely contact the wound, ensuring that it achieved its functions with maximum efficiency. The MoS2@TA/Fe nanozyme-anchored multifunctional hydrogel showed high potential for bacteria-infected wound healing.

Abstract Image

单宁酸-金属包被修饰二硫化钼双纳米酶多功能水凝胶的构建及其在细菌感染伤口愈合中的应用
细菌感染、组织缺氧和炎症反应会阻碍感染伤口的修复过程。为了缓解上述问题,研究人员开发了具有双酶活性的单宁酸螯合铁修饰二硫化钼纳米片(MoS2@TA/Fe NSs),并将其固定在多功能水凝胶上。由于MoS2@TA/Fe NSs具有光热治疗(PTT)、谷胱甘肽(GSH)损失和过氧化物酶(POD)样活性(在酸性条件下将H2O2催化成·OH)的综合作用,该水凝胶表现出优异的抗菌能力。利用过氧化氢酶(CAT)样活性,水凝胶可以在中性pH下将H2O2分解成O2,缓解缺氧,供应充足的氧气。pod样活性主要归因于MoS2 NSs,而cat样活性主要归因于TA/Fe络合物。此外,MoS2@TA/Fe NSs赋予水凝胶出色的抗氧化能力,在中性环境下清除多余的活性氧(ROS)和活性氮(RNS),维持抗氧化系统的平衡,预防炎症。此外,水凝胶还能抑制炎症因子的释放,从而发挥TA的抗炎作用。TA保留了部分酚羟基,使纳米片与水凝胶的网络结构交联,促进了水凝胶的粘附。由于聚乙烯醇(PVA)、葡聚糖(Dex)、MoS2@TA/Fe和硼砂之间的动态硼酯键,水凝胶表现出快速的自愈和快速的形状适应性。这种可自适应形状的胶粘剂水凝胶可以填充整个伤口并与伤口紧密接触,确保其以最大的效率实现其功能。MoS2@TA/Fe纳米酶锚定的多功能水凝胶在细菌感染伤口愈合方面显示出很高的潜力。
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来源期刊
Bioactive Materials
Bioactive Materials Biochemistry, Genetics and Molecular Biology-Biotechnology
CiteScore
28.00
自引率
6.30%
发文量
436
审稿时长
20 days
期刊介绍: Bioactive Materials is a peer-reviewed research publication that focuses on advancements in bioactive materials. The journal accepts research papers, reviews, and rapid communications in the field of next-generation biomaterials that interact with cells, tissues, and organs in various living organisms. The primary goal of Bioactive Materials is to promote the science and engineering of biomaterials that exhibit adaptiveness to the biological environment. These materials are specifically designed to stimulate or direct appropriate cell and tissue responses or regulate interactions with microorganisms. The journal covers a wide range of bioactive materials, including those that are engineered or designed in terms of their physical form (e.g. particulate, fiber), topology (e.g. porosity, surface roughness), or dimensions (ranging from macro to nano-scales). Contributions are sought from the following categories of bioactive materials: Bioactive metals and alloys Bioactive inorganics: ceramics, glasses, and carbon-based materials Bioactive polymers and gels Bioactive materials derived from natural sources Bioactive composites These materials find applications in human and veterinary medicine, such as implants, tissue engineering scaffolds, cell/drug/gene carriers, as well as imaging and sensing devices.
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