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Hybrid Conjugates Formed between Gold Nanoparticles and an Amyloidogenic Diphenylalanine-Cysteine Peptide

机译:在金纳米颗粒和淀粉样蛋白生成二苯胺 - 半胱氨酸肽之间形成的杂化结合物

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We investigated the effect of gold nanoparticles (AuNPs) on the aggregation of a CFF (C = cysteine; F = phenylalanine) tripep-tide (derived from N3 peptide) in aqueous medium. Special attention was dedicated to the role of AuNPs as inducers and inhibitors during nucleation kinetics and the structure of the resulting scaffolds was carefully investigated. At millimolar concentrations, the tripeptide was found to form β-sheet structures organized into long filaments. Spectral signatures and topography of the filaments were studied by Raman spectroscopy and atomic force microscopy (AFM), revealing that conjugation to AuNPs not only stabilizes the system, but also inhibit or enhance amyloid-like features depending on the synthesis route used in the preparation of AuNPs. Sodium borohydride (NaBH4) mediated synthesis of AuNPs gave rise to a strong absorption peak close to 520 nm, indicating that AuNPs were dispersed, independently of the peptide concentration added in the reaction. However, when the peptide/gold salt mixture was heated at 60℃, AuNPs and AuNP-decorated filaments were both formed in solution and the fractions of which population were found to be dependent on the [HAuCI4]/[CFF] ratio, as illustrated by TEM images. In addition, the insertion of AuNPs at the surface of CFF nanostructures can promote electron transfer from the metallic nanoparticles to the CFF surface, creating an n-type semiconductor, and causing a peak shift of the phenylalanine absorption band.
机译:我们研究了金纳米颗粒(AuNP)对CFF(C =半胱氨酸; F =苯丙氨酸)Tripep-Tide(源自N3肽)在水性培养基中的聚集的影响。特别注意AuNP作为诱导剂和抑制剂在成核动力学过程中的作用,并仔细研究了所得支架的结构。在毫摩尔浓度下,发现三肽形成长丝中的β-片结构。通过拉曼光谱和原子力显微镜(AFM)研究了细丝的光谱特征和地形,揭示了与AUNPS的结合不仅可以稳定系统,还可以抑制或增强淀粉样淀粉样蛋白样特征,这取决于在制备合成途径中使用的淀粉样蛋白样特征aunps。硼氢化钠(NABH4)介导的AUNPS合成导致了接近520 nm的强吸收峰,表明AuNPS被分散,与反应中添加的肽浓度无关。但是,当将肽/金盐混合物在60℃加热时,AuNP和AuNP装饰的细丝都在溶液中形成,并且发现其种群的馏分依赖于[HauCi4]/[CFF]比率,如说明,如所示,由TEM图像。此外,在CFF纳米结构表面插入AuNP可以促进电子从金属纳米颗粒转移到CFF表面,从而产生N型半导体,并导致苯丙氨酸吸收带的峰值移位。

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