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Surface-kinetics mediated mesoporous multipods for enhanced bacterial adhesion and inhibition

机译:表面动力学介导的介孔多孔,用于增强细菌粘附和抑制作用

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Despite the importance of nanoparticle's multipods topology in multivalent-interactions enhanced nano-bio interactions, the precise manipulation of multipods surface topological structures is still a great challenge. Herein, the surface-kinetics mediated multi-site nucleation strategy is demonstrated for the fabrication of mesoporous multipods with precisely tunable surface topological structures. Tribulus-like tetra-pods Fesub3/subOsub4/sub@SiOsub2/sub@RF&PMOs (RF?=?resorcinol-formaldehyde resin, PMO?=?periodic mesoporous organosilica) nanocomposites have successfully been fabricated with a centering core@shell Fesub3/subOsub4/sub@SiOsub2/sub@RF nanoparticle, and four surrounding PMO nanocubes as pods. By manipulating the number of nucleation sites through mediating surface kinetics, a series of multipods mesoporous nanocomposites with precisely controllable surface topological structures are formed, including Janus with only one pod, nearly plane distributed dual-pods and tri-pods, three-dimensional tetrahedral structured tetra-pods, etc. The multipods topology endows the mesoporous nanocomposites enhanced bacteria adhesion ability. Particularly, the tribulus-like tetra-pods mesoporous nanoparticles show ~100% bacteria segregation and long-term inhibition over 90% after antibiotic loading.
机译:尽管纳米粒子的多端子拓扑在多价相互作用中的重要性增强了纳米生物相互作用,但多孔表面拓扑结构的精确操纵仍然是一个巨大的挑战。这里,用精确可调表面拓扑结构对介孔多端子制造进行的表面动力学介导的多站点成核策略。 Trigus样Tetra-pods Fe 3 O 4 @sio 2 @ rf&pmos(rf?=Δromin甲醛树脂,pmo?=?定期的中孔有机胺)成功地用定心核心@ shell Fe 3 O 4 @sio 2 @ @ rf纳米粒子,以及四个周围的纳米复合材料PMO纳米孔作为豆荚。通过介导表面动力学操纵成核位置,形成具有精确可控表面拓扑结构的一系列多端口介孔纳米复合材料,包括只有一个豆荚,几乎平面分布式双荚和三荚,三维四面体结构的Janus。 TETRA-POD等。多端子拓扑赋予中孔纳米复合材料增强的细菌粘附能力。特别是,抗果白纳米粒子的枝枝状豆荚〜100%细菌偏析和抗生素负载后超过90%的长期抑制。

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