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

机译:表面动力学介导的中孔多足动物可增强细菌粘附和抑制

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摘要

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 Fe3O4@SiO2@RF&PMOs (RF = resorcinol-formaldehyde resin, PMO = periodic mesoporous organosilica) nanocomposites have successfully been fabricated with a centering core@shell Fe3O4@SiO2@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:尽管纳米粒子的多脚拓扑在多价相互作用增强纳米生物相互作用中很重要,但是精确控制多脚表面拓扑结构仍然是一个巨大的挑战。本文中,表面动力学介导的多位点成核策略被证明可用于具有可精确调节的表面拓扑结构的中孔多脚架的制造。状四足Fe3O4 @ SiO2 @ RF&PMOs(RF =间苯二酚-甲醛树脂,PMO =周期介孔有机硅)纳米复合材料已经成功地制备了以定心核@ Fe3O4 @ SiO2 @ RF纳米粒子为中心,周围有四个PMO纳米立方体作为豆荚。通过介导表面动力学来控制成核位点的数目,形成了一系列具有精确可控制的表面拓扑结构的多荚膜介孔纳米复合材料,包括只有一个荚果的Janus,几乎平面分布的双荚和三荚,三维四面体结构四足等。多足拓扑使中孔纳米复合材料具有增强的细菌粘附能力。特别是,在加入抗生素后,状四足中孔纳米颗粒显示出约100%的细菌分离和90%以上的长期抑制。

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