生物膜研究中的微流体。

Lu Yuan, Hervé Straub, Liubov Shishaeva, Qun Ren
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引用次数: 1

摘要

生物膜是由自我产生的细胞外基质结合在一起的多细胞群落,并表现出一系列与自由生活的细菌不同的特性。生物膜暴露于流体运动和质量运输引起的各种机械和化学信号。微流体技术为研究生物膜提供了精确的流体动力学和物理化学微环境控制。本文综述了近年来基于微流控技术的生物膜研究进展,包括对细菌粘附和生物膜形成机制的理解、抗污和抗菌性能的评估、先进的体外感染模型的建立以及生物膜表征方法的进展。最后,对微流体辅助生物膜研究的未来发展方向进行了展望。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Microfluidics for Biofilm Studies.

Biofilms are multicellular communities held together by a self-produced extracellular matrix and exhibit a set of properties that distinguish them from free-living bacteria. Biofilms are exposed to a variety of mechanical and chemical cues resulting from fluid motion and mass transport. Microfluidics provides the precise control of hydrodynamic and physicochemical microenvironments to study biofilms in general. In this review, we summarize the recent progress made in microfluidics-based biofilm research, including understanding the mechanism of bacterial adhesion and biofilm development, assessment of antifouling and antimicrobial properties, development of advanced in vitro infection models, and advancement in methods to characterize biofilms. Finally, we provide a perspective on the future direction of microfluidics-assisted biofilm research.

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