Oxygen vacancy-rich nickel oxide nanoplatforms for enhanced photothermal and chemodynamic therapy combat methicillin-resistant Staphylococcus aureus

IF 9.4 1区 医学 Q1 ENGINEERING, BIOMEDICAL Acta Biomaterialia Pub Date : 2024-05-16 DOI:10.1016/j.actbio.2024.05.029
Qinquan Wang , Jing Zhao , Tian Huang , Chen Sun , Wei Chen , Haoran Zou , Xiaojun He , Jianliang Shen , Yunbei Xiao
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Abstract

Bacterial infections pose a global concern due to high fatality rates, particularly with the rise of drug-resistant bacteria and biofilm formation. There is an urgent need for innovative strategies to combat this issue. A study on chemodynamic therapy (CDT) using nanozymes in conjunction with photothermal therapy (PTT) has displayed potential in addressing drug-resistant bacterial infections. However, the effectiveness of this combined approach is limited by inadequate light absorption. This work suggests the NiOx nanoparticles enriched with oxygen vacancies enhance CDT and PTT to overcome this challenge. The presence of oxygen vacancies in NiOx can reduce the energy gap between its valence band and conduction band, facilitating oxygen adsorption. NiOx has exhibited notable antibacterial properties and complete eradication of biofilms in both laboratory and animal trials. In animal abscess models, NiOx demonstrated antibacterial and anti-inflammatory effects in the initial stages, while also promoting wound healing and tissue regeneration by influencing immune factors and encouraging collagen deposition and neovascularization. With positive biosafety and biocompatibility profiles, the oxygen vacancy-enhanced CDT and PTT therapy proposed in this article hold promise for effective sterilization, deep biofilm removal, and treatment of infections caused by drug-resistant bacteria.

Statement of significance

This study constructs oxygen vacancies NiOx nanoparticles (NiOx NPs) to improve the efficacy of photothermal therapy and chemodynamic therapy. The presence of oxygen vacancies in NiOx NPs helps bridge the energy gap between its valence band and conduction band, facilitating oxygen adsorption and improving catalytic efficiency. In both in vivo and in vitro antibacterial experiments, NiOx NPs demonstrate effective antibacterial and anti-inflammatory properties. Furthermore, it aids in wound healing and tissue regeneration by modulating immune factors, collagen deposition, and angiogenesis. This approach presents a promising collaborative strategy for utilizing nickel-based defective nanomaterials in combating deep drug-resistant bacterial infections.

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富氧空位氧化镍纳米平台用于增强光热疗法和化学动力疗法,以对抗耐甲氧西林金黄色葡萄球菌。
由于致死率高,尤其是随着耐药细菌的增多和生物膜的形成,细菌感染已成为全球关注的问题。目前迫切需要创新的策略来解决这一问题。一项关于使用纳米酶和光热疗法(PTT)的化学动力疗法(CDT)的研究显示了解决耐药细菌感染的潜力。然而,由于光吸收不足,这种组合方法的有效性受到了限制。这项研究表明,富含氧空位的镍氧化物纳米粒子能增强 CDT 和 PTT,从而克服这一难题。镍氧化物中氧空位的存在可降低其价带和导带之间的能隙,从而促进氧的吸附。在实验室和动物试验中,NiOx 都表现出显著的抗菌特性,并能完全清除生物膜。在动物脓肿模型中,NiOx 在初期阶段具有抗菌和消炎作用,同时还能通过影响免疫因子、促进胶原沉积和血管新生来促进伤口愈合和组织再生。本文提出的氧空位增强 CDT 和 PTT疗法具有良好的生物安全性和生物相容性,有望有效杀菌、清除深层生物膜和治疗耐药菌引起的感染。意义声明:本研究构建了氧空位NiOx纳米粒子(NiOx NPs),以提高光热疗法和化学动力疗法的疗效。NiOx NPs 中氧空位的存在有助于弥合其价带与导带之间的能隙,从而促进氧气吸附并提高催化效率。在体内和体外抗菌实验中,NiOx NPs 都表现出有效的抗菌和消炎特性。此外,它还能通过调节免疫因子、胶原沉积和血管生成,帮助伤口愈合和组织再生。这种方法为利用镍基缺陷纳米材料对抗深度耐药细菌感染提供了一种前景广阔的合作策略。
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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
Editorial Board Editorial Board Erratum to “Anti-fibrotic and anti-stricture effects of biodegradable biliary stents braided with dexamethasone-impregnated sheath/core structured monofilaments” [Acta Biomaterialia. Volume 178, 1 April 2024, Pages 137-146] Corrigendum to “Optimizing the cell compatibility and mechanical properties in TiZrNbTa medium-entropy alloy/β-Ti composites through phase transformation” [Acta Biomaterialia. Volume 181, June 2024, Pages 469-482] Association between neural stem/progenitor cells and biomaterials in spinal cord injury therapies: A systematic review and network meta-analysis
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