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基于 Fe 驱动的碳纳米酶的多功能级联纳米反应器用于协同光热/化学动力学抗菌治疗。

A multifunctional cascade nanoreactor based on Fe-driven carbon nanozymes for synergistic photothermal/chemodynamic antibacterial therapy.

机构信息

School of Food & Biological Engineering, Engineering Research Center of Bio-Process, Ministry of Education, Key Laboratory for Agricultural Products Processing of Anhui Province, Hefei University of Technology, Hefei 230009, China.

School of Biomedical Engineering, Research and Engineering Center of Anhui Medical University, Hefei 230032, China.

出版信息

Acta Biomater. 2023 Sep 15;168:580-592. doi: 10.1016/j.actbio.2023.07.006. Epub 2023 Jul 13.

Abstract

Healing bacterial chronic wounds caused by hyperglycemia is of great significance to protect the physical and mental health of diabetic patients. In this context, emerging chemodynamic therapy (CDT) and photothermal therapy (PTT) with broad antibacterial spectra and high spatiotemporal controllability have flourished. However, CDT was challenged by the near-neutral pH and inadequate HO surrounding the chronic wound site, while PTT showed overheating-triggered side effects (e.g., damaging the normal tissue) and poor effects on thermotolerant bacterial biofilms. Therefore, we engineered an all-in-one glucose-responsive photothermal nanozyme, GOX/MPDA/Fe@CDs, consisting of glucose oxidase (GOX), Fe-doped carbon dots (Fe@CDs), and mesoporous polydopamine (MPDA), to efficiently treat chronic diabetic wound bacterial infections and eradicate biofilms without impacting the surrounding normal tissues. Specifically, GOX/MPDA/Fe@CDs produced a local temperature (∼ 45.0°C) to enhance the permeability of the pathogenic bacterium and its biofilm upon near-infrared (NIR) 808 nm laser irradiation, which was seized to initiate endogenous high blood glucose to activate the catalytic activity of GOX on the GOX/MPDA/Fe@CD surface to achieve the simultaneous self-supplying of HO and H, cascade catalyzing •OH production via a subsequent peroxidase-mimetic activity-induced Fenton/Fenton-like reaction. As such, the in vivo diabetic wound infected with methicillin-resistant Staphylococcus aureus was effectively healed after 12.0 days of treatment. This work was expected to provide an innovative approach to the clinical treatment of bacterially infected diabetic chronic wounds. STATEMENT OF SIGNIFICANCE: An all-in-one glucose-responsive photothermal nanozyme GOX/MPDA/Fe@CDs was constructed. Cascade nanozyme GOX/MPDA/Fe@CDs self-supply H2O2 and H+ to break H2O2 and pH limits to fight bacterial infections. Synergistic chemotherapy and photothermal therapy with nanozyme GOX/MPDA/Fe@CDs accelerates healing of biofilm-infected diabetic wounds.

摘要

治疗高血糖引起的慢性细菌性创面对于保护糖尿病患者的身心健康具有重要意义。在此背景下,具有广谱抗菌谱和高时空可控性的新兴化学动力学疗法(CDT)和光热疗法(PTT)蓬勃发展。然而,CDT 受到慢性创面部位近中性 pH 值和 HO 不足的挑战,而 PTT 则表现出过热触发的副作用(例如,损伤正常组织)和对耐热细菌生物膜的效果不佳。因此,我们设计了一种一体式葡萄糖响应光热纳米酶 GOX/MPDA/Fe@CDs,由葡萄糖氧化酶(GOX)、掺铁碳点(Fe@CDs)和介孔聚多巴胺(MPDA)组成,可有效治疗慢性糖尿病创面细菌感染并消除生物膜,而不会影响周围正常组织。具体来说,GOX/MPDA/Fe@CDs 在近红外(NIR)808nm 激光照射下产生局部温度(约 45.0°C),以增强病原菌及其生物膜的通透性,从而利用内源性高血糖激活 GOX/MPDA/Fe@CD 表面上 GOX 的催化活性,实现 HO 和 H 的自供应,并通过随后的过氧化物酶模拟活性诱导的芬顿/类芬顿反应级联催化•OH 的产生。因此,经过 12.0 天的治疗,感染耐甲氧西林金黄色葡萄球菌的糖尿病创面得到有效治愈。这项工作有望为临床治疗细菌性感染的糖尿病慢性创面提供一种创新方法。

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