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微生物耐药时代的支架:制备、材料、性能及组织工程应用

Scaffolds in the microbial resistant era: Fabrication, materials, properties and tissue engineering applications.

作者信息

Serrano-Aroca Ángel, Cano-Vicent Alba, Sabater I Serra Roser, El-Tanani Mohamed, Aljabali AlaaAA, Tambuwala Murtaza M, Mishra Yogendra Kumar

机构信息

Biomaterials and Bioengineering Lab, Centro de Investigación Traslacional San Alberto Magno, Universidad Católica de Valencia San Vicente Mártir, C/Guillem de Castro 94, 46001, Valencia, Spain.

Centre for Biomaterials and Tissue Engineering, Universitat Politècnica de València, 46022, València, Spain.

出版信息

Mater Today Bio. 2022 Aug 30;16:100412. doi: 10.1016/j.mtbio.2022.100412. eCollection 2022 Dec.

Abstract

Due to microbial infections dramatically affect cell survival and increase the risk of implant failure, scaffolds produced with antimicrobial materials are now much more likely to be successful. Multidrug-resistant infections without suitable prevention strategies are increasing at an alarming rate. The ability of cells to organize, develop, differentiate, produce a functioning extracellular matrix (ECM) and create new functional tissue can all be controlled by careful control of the extracellular microenvironment. This review covers the present state of advanced strategies to develop scaffolds with antimicrobial properties for bone, oral tissue, skin, muscle, nerve, trachea, cardiac and other tissue engineering applications. The review focuses on the development of antimicrobial scaffolds against bacteria and fungi using a wide range of materials, including polymers, biopolymers, glass, ceramics and antimicrobials agents such as antibiotics, antiseptics, antimicrobial polymers, peptides, metals, carbon nanomaterials, combinatorial strategies, and includes discussions on the antimicrobial mechanisms involved in these antimicrobial approaches. The toxicological aspects of these advanced scaffolds are also analyzed to ensure future technological transfer to clinics. The main antimicrobial methods of characterizing scaffolds' antimicrobial and antibiofilm properties are described. The production methods of these porous supports, such as electrospinning, phase separation, gas foaming, the porogen method, polymerization in solution, fiber mesh coating, self-assembly, membrane lamination, freeze drying, 3D printing and bioprinting, among others, are also included in this article. These important advances in antimicrobial materials-based scaffolds for regenerative medicine offer many new promising avenues to the material design and tissue-engineering communities.

摘要

由于微生物感染会显著影响细胞存活并增加植入失败的风险,因此用抗菌材料生产的支架现在更有可能取得成功。没有合适预防策略的多重耐药感染正以惊人的速度增加。细胞的组织、发育、分化、产生功能性细胞外基质(ECM)以及创建新的功能组织的能力,都可以通过对细胞外微环境的仔细控制来实现。本综述涵盖了开发具有抗菌特性的支架用于骨、口腔组织、皮肤、肌肉、神经、气管、心脏和其他组织工程应用的先进策略的现状。该综述重点介绍了使用多种材料开发针对细菌和真菌的抗菌支架,这些材料包括聚合物、生物聚合物、玻璃、陶瓷以及抗菌剂,如抗生素、防腐剂、抗菌聚合物、肽、金属、碳纳米材料、组合策略等,并讨论了这些抗菌方法所涉及的抗菌机制。还分析了这些先进支架的毒理学方面,以确保未来技术能够转化应用于临床。描述了表征支架抗菌和抗生物膜特性的主要抗菌方法。本文还包括这些多孔载体的生产方法,如静电纺丝、相分离、气体发泡、致孔剂法、溶液聚合、纤维网涂层、自组装、膜层压、冷冻干燥、3D打印和生物打印等。基于抗菌材料的支架在再生医学方面的这些重要进展为材料设计和组织工程领域提供了许多新的有前景的途径。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/df91/9463390/071793e3295d/ga1.jpg

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