Antimicrobial Biomaterials Based on Physical and Physicochemical Action

IF 10 2区 医学 Q1 ENGINEERING, BIOMEDICAL Advanced Healthcare Materials Pub Date : 2024-09-20 DOI:10.1002/adhm.202402001
Adrian G. Nowotnick, Zhongqian Xi, Zhaorui Jin, Sadaf Khalatbarizamanpoor, Delia S. Brauer, Bettina Löffler, Klaus D. Jandt
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Abstract

Developing effective antimicrobial biomaterials is a relevant and fast-growing field in advanced healthcare materials. Several well-known (e.g., traditional antibiotics, silver, copper etc.) and newer (e.g., nanostructured, chemical, biomimetic etc.) approaches have been researched and developed in recent years and valuable knowledge has been gained. However, biomaterials associated infections (BAIs) remain a largely unsolved problem and breakthroughs in this area are sparse. Hence, novel high risk and potential high gain approaches are needed to address the important challenge of BAIs. Antibiotic free antimicrobial biomaterials that are largely based on physical action are promising, since they reduce the risk of antibiotic resistance and tolerance. Here, selected examples are reviewed such antimicrobial biomaterials, namely switchable, protein-based, carbon-based and bioactive glass, considering microbiological aspects of BAIs. The review shows that antimicrobial biomaterials mainly based on physical action are powerful tools to control microbial growth at biomaterials interfaces. These biomaterials have major clinical and application potential for future antimicrobial healthcare materials without promoting microbial tolerance. It also shows that the antimicrobial action of these materials is based on different complex processes and mechanisms, often on the nanoscale. The review concludes with an outlook and highlights current important research questions in antimicrobial biomaterials.
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基于物理和物理化学作用的抗菌生物材料
开发有效的抗菌生物材料是先进医疗材料中一个相关且发展迅速的领域。近年来,人们研究和开发了一些众所周知的(如传统抗生素、银、铜等)和较新的(如纳米结构、化学、仿生等)方法,并获得了宝贵的知识。然而,与生物材料相关的感染(BAIs)在很大程度上仍是一个尚未解决的问题,在这一领域也鲜有突破。因此,需要采用高风险、高收益的新方法来应对生物材料相关感染这一重要挑战。主要基于物理作用的无抗生素抗菌生物材料很有前途,因为它们能降低抗生素耐药性和耐受性的风险。本文从 BAIs 的微生物学角度出发,对此类抗菌生物材料(即可转换的、基于蛋白质的、基于碳的和生物活性玻璃)的部分实例进行了综述。综述表明,主要基于物理作用的抗菌生物材料是控制微生物在生物材料界面生长的有力工具。这些生物材料在不提高微生物耐受性的前提下,对未来的抗菌保健材料具有重大的临床和应用潜力。综述还表明,这些材料的抗菌作用基于不同的复杂过程和机制,通常是纳米级的。综述最后进行了展望,并强调了当前在抗菌生物材料方面的重要研究问题。
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来源期刊
Advanced Healthcare Materials
Advanced Healthcare Materials 工程技术-生物材料
CiteScore
14.40
自引率
3.00%
发文量
600
审稿时长
1.8 months
期刊介绍: Advanced Healthcare Materials, a distinguished member of the esteemed Advanced portfolio, has been dedicated to disseminating cutting-edge research on materials, devices, and technologies for enhancing human well-being for over ten years. As a comprehensive journal, it encompasses a wide range of disciplines such as biomaterials, biointerfaces, nanomedicine and nanotechnology, tissue engineering, and regenerative medicine.
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