Warwick Manufacturing Group, The University of Warwick, Coventry, United Kingdom CV4 7AL.
Warwick Medical School, The University of Warwick, Coventry, United Kingdom CV4 7AL.
ACS Appl Mater Interfaces. 2022 Oct 26;14(42):47323-47344. doi: 10.1021/acsami.2c08582. Epub 2022 Oct 12.
Hydrogels are cross-linked networks of hydrophilic polymer chains with a three-dimensional structure. Owing to their unique features, the application of hydrogels for bacterial/antibacterial studies and bacterial infection management has grown in importance in recent years. This trend is likely to continue due to the rise in bacterial infections and antimicrobial resistance. By exploiting their physicochemical characteristics and inherent nature, hydrogels have been developed to achieve bacterial capture and detection, bacterial growth or elimination, antibiotic delivery, or bacterial sensing. Traditionally, the development of hydrogels for bacterial/antibacterial studies has focused on achieving a single function such as antibiotic delivery, antibacterial activity, bacterial growth, or bacterial detection. However, recent studies demonstrate the fabrication of multifunctional hydrogels, where a single hydrogel is capable of performing more than one bacterial/antibacterial function, or composite hydrogels consisting of a number of single functionalized hydrogels, which exhibit bacterial/antibacterial function synergistically. In this review, we first highlight the hydrogel features critical for bacterial studies and infection management. Then, we specifically address unique hydrogel properties, their surface/network functionalization, and their mode of action for bacterial capture, adhesion/growth, antibacterial activity, and bacterial sensing, respectively. Finally, we provide insights into different strategies for developing multifunctional hydrogels and how such systems can help tackle, manage, and understand bacterial infections and antimicrobial resistance. We also note that the strategies highlighted in this review can be adapted to other cell types and are therefore likely to find applications beyond the field of microbiology.
水凝胶是具有三维结构的亲水性聚合物链的交联网络。由于其独特的特性,近年来,水凝胶在细菌/抗菌研究和细菌感染管理中的应用变得越来越重要。由于细菌感染和抗菌药物耐药性的增加,这种趋势可能会继续下去。通过利用其物理化学特性和固有性质,已经开发出水凝胶来实现细菌的捕获和检测、细菌的生长或消除、抗生素的递送或细菌的感测。传统上,水凝胶的开发用于细菌/抗菌研究主要集中在实现单一功能,如抗生素递送、抗菌活性、细菌生长或细菌检测。然而,最近的研究表明,可以制造多功能水凝胶,其中单一水凝胶能够执行超过一种细菌/抗菌功能,或者由许多单功能化水凝胶组成的复合水凝胶,它们协同表现出细菌/抗菌功能。在这篇综述中,我们首先强调了对细菌研究和感染管理至关重要的水凝胶特性。然后,我们专门讨论了独特的水凝胶特性、它们的表面/网络功能化以及它们用于细菌捕获、粘附/生长、抗菌活性和细菌感测的作用模式。最后,我们提供了关于开发多功能水凝胶的不同策略的见解,以及这些系统如何帮助解决、管理和理解细菌感染和抗菌药物耐药性。我们还注意到,本文中强调的策略可以适应于其他细胞类型,因此可能会在微生物学领域之外找到应用。