NIR light-driven nanomotor with cascade photodynamic therapy for MRSA biofilm eradication and diabetic wound healing.

IF 12.4 1区 医学 Q1 MEDICINE, RESEARCH & EXPERIMENTAL
Theranostics Pub Date : 2025-02-24 eCollection Date: 2025-01-01 DOI:10.7150/thno.109356
Yuanyuan Deng, Jia Zheng, Jianghua Li, Bo Liu, Ke Chen, Yiling Xu, Liu Deng, Huixia Liu, You-Nian Liu
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引用次数: 0

Abstract

Background: Diabetic wounds infected with methicillin-resistant Staphylococcus aureus (MRSA) are challenging to heal due to biofilm formation, which impairs conventional antibiotics with limited penetration and severe side effects. Near-infrared (NIR)-driven nanomotors with autonomous motion and photothermal effects show promise for antibacterial therapy but often lack targeted specificity. Lysostaphin (Ly), an enzyme targeting bacterial cell walls, offers excellent potential against drug-resistant MRSA. Methods: A novel NIR-driven CSIL nanomotor has fabricated by co-loading indocyanine green (ICG) and lysostaphin onto spinous yolk-shell structured C/SiO2@C nanoparticles. The autonomous motion, biofilm penetration, and antibacterial efficacy of CSIL nanomotors are evaluated in vitro, while their biofilm eradication and wound healing performance are assessed in an MRSA-infected diabetic mouse model using a cascade photodynamic therapy (CPDT) strategy. Results: CSIL nanomotors exhibit photothermal and photodynamic properties with MRSA-targeting specificity. They can effectively eradicate MRSA biofilms both in vitro and in vivo, suppress virulence and biofilm-related genes, thus promoting diabetic wound healing by shaping a microenvironment dominated by M2 macrophages. The CPDT strategy is able to avoid excessive ROS production and thermal damage, enabling safe and effective therapy. Conclusion: CSIL nanomotors, with integrated photothermal, photodynamic, and MRSA-targeting properties, represent a novel, efficient and targeted approach to antibacterial therapy in diabetic wounds, offering significant advantages over conventional antibiotics.

具有级联光动力的近红外光驱动纳米马达用于MRSA生物膜根除和糖尿病伤口愈合。
背景:耐甲氧西林金黄色葡萄球菌(MRSA)感染的糖尿病伤口由于生物膜的形成而难以愈合,这削弱了传统抗生素的作用,渗透有限且副作用严重。近红外(NIR)驱动的具有自主运动和光热效应的纳米马达有望用于抗菌治疗,但往往缺乏靶向特异性。溶葡萄球菌蛋白(Ly)是一种靶向细菌细胞壁的酶,具有抵抗耐药MRSA的良好潜力。方法:将吲哚菁绿(ICG)和溶葡萄球菌素(lysostaphin)共负载于棘状蛋黄壳结构的C/SiO2@C纳米颗粒上,制备了一种新型nir驱动的CSIL纳米马达。在体外评估CSIL纳米马达的自主运动、生物膜渗透和抗菌功效,同时在mrsa感染的糖尿病小鼠模型中使用级联光动力治疗(CPDT)策略评估其生物膜根除和伤口愈合性能。结果:CSIL纳米马达具有光热和光动力学特性,具有mrsa靶向特异性。它们能在体外和体内有效根除MRSA生物膜,抑制毒力和生物膜相关基因,从而通过塑造以M2巨噬细胞为主的微环境,促进糖尿病创面愈合。CPDT策略能够避免过量的ROS产生和热损伤,从而实现安全有效的治疗。结论:CSIL纳米马达具有光热、光动力学和mrsa靶向特性,是一种新型、高效和靶向的糖尿病伤口抗菌治疗方法,具有传统抗生素的显著优势。
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来源期刊
Theranostics
Theranostics MEDICINE, RESEARCH & EXPERIMENTAL-
CiteScore
25.40
自引率
1.60%
发文量
433
审稿时长
1 months
期刊介绍: Theranostics serves as a pivotal platform for the exchange of clinical and scientific insights within the diagnostic and therapeutic molecular and nanomedicine community, along with allied professions engaged in integrating molecular imaging and therapy. As a multidisciplinary journal, Theranostics showcases innovative research articles spanning fields such as in vitro diagnostics and prognostics, in vivo molecular imaging, molecular therapeutics, image-guided therapy, biosensor technology, nanobiosensors, bioelectronics, system biology, translational medicine, point-of-care applications, and personalized medicine. Encouraging a broad spectrum of biomedical research with potential theranostic applications, the journal rigorously peer-reviews primary research, alongside publishing reviews, news, and commentary that aim to bridge the gap between the laboratory, clinic, and biotechnology industries.
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