Nanosized Building Blocks for Customizing Novel Antibiofilm Approaches.

A J Paula, H Koo
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Abstract

Recent advances in nanotechnology provide unparalleled flexibility to control the composition, size, shape, surface chemistry, and functionality of materials. Currently available engineering approaches allow precise synthesis of nanocompounds (e.g., nanoparticles, nanostructures, nanocrystals) with both top-down and bottom-up design principles at the submicron level. In this context, these "nanoelements" (NEs) or "nanosized building blocks" can 1) generate new nanocomposites with antibiofilm properties or 2) be used to coat existing surfaces (e.g., teeth) and exogenously introduced surfaces (e.g., restorative or implant materials) for prevention of bacterial adhesion and biofilm formation. Furthermore, functionalized NEs 3) can be conceived as nanoparticles to carry and selectively release antimicrobial agents after attachment or within oral biofilms, resulting in their disruption. The latter mechanism includes "smart release" of agents when triggered by pathogenic microenvironments (e.g., acidic pH or low oxygen levels) for localized and controlled drug delivery to simultaneously kill bacteria and dismantle the biofilm matrix. Here we discuss inorganic, metallic, polymeric, and carbon-based NEs for their outstanding chemical flexibility, stability, and antibiofilm properties manifested when converted into bioactive materials, assembled on-site or delivered at biofilm-surface interfaces. Details are provided on the emerging concept of the rational design of NEs and recent technological breakthroughs for the development of a new generation of nanocoatings or functional nanoparticles for biofilm control in the oral cavity.

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定制新型抗生物膜方法的纳米级构件。
纳米技术的最新进展为控制材料的成分、尺寸、形状、表面化学和功能提供了无与伦比的灵活性。目前可用的工程方法可以在亚微米级采用自上而下和自下而上的设计原则精确合成纳米化合物(如纳米颗粒、纳米结构、纳米晶体)。在这种情况下,这些 "纳米元素"(NEs)或 "纳米级构件 "可 1) 生成具有抗生物膜特性的新型纳米复合材料,或 2) 用于涂覆现有表面(如牙齿)和外源引入表面(如修复或植入材料),以防止细菌粘附和生物膜形成。此外,可将功能化 NEs 3) 设想为纳米颗粒,在附着后或在口腔生物膜内携带并选择性释放抗菌剂,从而破坏生物膜。后一种机制包括在致病微环境(如酸性 pH 值或低氧水平)触发时 "智能释放 "药剂,以实现局部可控给药,从而同时杀死细菌和破坏生物膜基质。在此,我们将讨论无机、金属、聚合物和碳基 NEs,这些 NEs 在转化为生物活性材料、现场组装或在生物膜-表面界面输送时,具有出色的化学灵活性、稳定性和抗生物膜特性。本文详细介绍了合理设计 NEs 的新兴概念,以及近期在开发用于控制口腔生物膜的新一代纳米涂层或功能性纳米粒子方面取得的技术突破。
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