UCD School of Chemical and Bioprocess Engineering, University College Dublin, Dublin 4, Ireland.
Dipartimento di Chimica "Giacomo Ciamician", Università degli Studi di Bologna, Via Selmi 2, Bologna 40126, Italy.
ACS Appl Mater Interfaces. 2022 Aug 3;14(30):34502-34512. doi: 10.1021/acsami.2c10347. Epub 2022 Jul 13.
Nanoparticles (NPs) are considered a promising tool in the context of biofilm control. Many studies have shown that different types of NPs can interfere with the bacterial metabolism and cellular membranes, thus making them potential antibacterial agents; however, fundamental understanding is still lacking on the exact mechanisms involved in these actions. The development of NP-based approaches for effective biofilm control also requires a thorough understanding of how the chosen nanoparticles will interact with the biofilm itself, and in particular with the biofilm self-produced extracellular polymeric matrix (EPS). This work aims to provide advances in the understanding of the interaction between engineered fluorescent pluronic silica (PluS) nanoparticles and bacterial biofilms, with a main focus on the role of the EPS matrix in the accumulation and diffusion of the particles in the biofilm. It is demonstrated that particle surface chemistry has a key role in the different lateral distribution and specific affinity to the biofilm matrix components. The results presented in this study contribute to our understanding of biofilm-NP interactions and promote the principle of the rational design of smart nanoparticles as an important tool for antibiofilm technology.
纳米颗粒(NPs)被认为是生物膜控制方面有前途的工具。许多研究表明,不同类型的 NPs 可以干扰细菌代谢和细胞膜,从而使它们成为潜在的抗菌剂;然而,对于这些作用的确切机制,我们仍然缺乏基本的了解。基于 NP 的方法来有效控制生物膜的发展也需要深入了解所选纳米颗粒将如何与生物膜本身相互作用,特别是与生物膜自身产生的胞外聚合物基质(EPS)相互作用。这项工作旨在深入了解工程荧光聚轮烷硅(PluS)纳米颗粒与细菌生物膜之间的相互作用,主要关注 EPS 基质在颗粒在生物膜中积累和扩散中的作用。结果表明,颗粒表面化学在不同的横向分布和对生物膜基质成分的特定亲和力方面起着关键作用。本研究的结果有助于我们理解生物膜-NP 相互作用,并促进将智能纳米颗粒的合理设计原理作为抗生物膜技术的重要工具的原理。