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首页> 外文期刊>RSC Advances >Tuning neuron adhesion and neurite guiding using functionalized AuNPs and backfill chemistry
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Tuning neuron adhesion and neurite guiding using functionalized AuNPs and backfill chemistry

机译:使用官能化AUNP和回填化学调整神经元粘附和神经突

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摘要

The adhesion of neurons depends on the interplay between attractive as well as repellant cues in the cell membrane and adhesion ligands in their cellular environment. In this study, an easy and versatile strategy is presented to control the density of cell binding sites embedded in a cell repulsive environment attached to a solid surface. Gold nanoparticles modified by positively charged aminoalkyl thiols are used as artificial neuron adhesion ligands. The density of the nanoparticles and their environment is varied by applying either no backfill, poly(ethylene glycol)-silane, or octyltrichlorosilane backfill. By this means the chemical composition of both cell attractive adhesion ligands and surrounding repellant cues is tuned on the nanometer scale. Primary rat cortical neurons are cultured on these particle modified surfaces. The viability and neuritogenesis of neurons is investigated as a function of particle density and background composition. A strong dependence of neuron viability on both averaged particle density and backfill composition is found in particular for intermediate particle packing. At high particle densities, the kind of backfill does not affect the cell viability but influences the development of neurites. This knowledge is used to enhance the guiding efficiency of neuron adhesion to more than 90% on nanopatterned surfaces.
机译:神经元的粘附性取决于细胞环境中细胞膜和粘附配体的吸引力和拒绝配体之间的相互作用。在该研究中,提出了一种容易和多功能的策略,以控制嵌入在附着在固体表面的细胞排斥环境中的细胞结合位点的密度。通过带正电荷的氨基烷基硫醇改性的金纳米粒子用作人造神经元粘附配体。通过施加任何回物,聚(乙二醇) - 硅烷或辛氧基三氯硅烷回水来改变纳米颗粒及其环境的密度。通过这意味着在纳米尺度上调谐两种细胞吸引力粘合性配体和周围避免剂提示的化学组成。在这些颗粒改性表面上培养原代大鼠皮质神经元。作为颗粒密度和背景组合物的函数研究了神经元的活力和神经发生。神经元活力对两个平均粒子密度和回填组合物的强烈依赖性特别用于中间颗粒包装。在高粒子密度下,这些回填的种类不会影响细胞活力,但会影响神经疾病的发展。该知识用于增强神经元粘附的引导效率在纳米透明表面上的90%以上。

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