用于急性感染伤口修复的抗菌Cu-Ce氧化纳米剂的制备

IF 7.9 2区 材料科学 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY Materials & Design Pub Date : 2025-05-01 Epub Date: 2025-03-29 DOI:10.1016/j.matdes.2025.113901
Jinhui Lin , Zhaowei Wang , Jiangshan Hu , Tingting Li , Liang Chen , Xiaoyun Hu , Xiaolong Liu , Qiang Luo , Peiyuan Wang
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引用次数: 0

摘要

耐多药细菌的感染使慢性伤口难以愈合,因此迫切需要能够根除细菌并促进伤口愈合的新治疗策略。基于活性氧(ROS)的抗菌策略为克服广谱抗生素的缺乏和超级耐药菌的出现等抗生素研究的巨大挑战开辟了新的途径。在这项研究中,我们成功地利用简单有效的水热策略制备了Cu-Ce共掺杂的纳米金属氧化物抗菌纳米剂。它有助于细菌感染引起的伤口愈合。Cu-Ce纳米颗粒的抗菌机制涉及它们与细菌细胞壁的牢固附着,导致其破裂并随后产生ROS。此外,用Cu-Ce纳米剂治疗可减少小鼠皮肤中的细菌计数,刺激胶原沉积,并加速细菌感染伤口的恢复。我们的研究提出了一种直接有效的方法来解决伤口感染和促进愈合。
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Facile and straightforward fabrication of antimicrobial Cu-Ce oxide nanoagent for repair of acutely infected wounds
The infection of multidrug-resistant bacteria makes chronic wounds difficult to heal, so there is a great need for new treatment strategies that can eradicate bacteria and promote wound healing. The antibacterial strategy based on reactive oxygen species (ROS) has opened new avenues to overcome the enormous challenges of antibiotic research, such as the lack of broad-spectrum antibiotics and the emergence of super resistant bacteria. In this study, we have successfully prepared a Cu-Ce co-doped nanometal oxide antimicrobial nanoagent using a straightforward and efficient hydrothermal strategy. It facilitates the healing of wounds induced by bacterial infections. The antibacterial mechanism of Cu-Ce nanoparticles involves their firm attachment to the bacterial cell wall, leading to its rupture and the subsequent production of ROS. Furthermore, treatment with Cu-Ce nanoagent reduces bacterial counts in mouse skin, stimulates collagen deposition, and expedites the recovery of bacterially infected wounds. Our study presents a straightforward and effective approach for addressing wound infections and promoting healing.
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来源期刊
Materials & Design
Materials & Design Engineering-Mechanical Engineering
CiteScore
14.30
自引率
7.10%
发文量
1028
审稿时长
85 days
期刊介绍: Materials and Design is a multi-disciplinary journal that publishes original research reports, review articles, and express communications. The journal focuses on studying the structure and properties of inorganic and organic materials, advancements in synthesis, processing, characterization, and testing, the design of materials and engineering systems, and their applications in technology. It aims to bring together various aspects of materials science, engineering, physics, and chemistry. The journal explores themes ranging from materials to design and aims to reveal the connections between natural and artificial materials, as well as experiment and modeling. Manuscripts submitted to Materials and Design should contain elements of discovery and surprise, as they often contribute new insights into the architecture and function of matter.
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