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Preparation of Fluorescent-magnetic Nanocomposites and Surface Modification with Bovine Serum Albumin

机译:荧光磁性纳米复合材料的制备及牛血清白蛋白的表面修饰

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Introduction: Fluorescent and magnetic core/shell nanoparticles have been widely researched in nanobioscience field. Fluorescent-magnetic nanocomposites can be obtained by reverse microemulsion method and the Stober approaches. Fluorescent-magnetic nanocomposites with surface modification have many potential applications. In this study, biology molecule (BSA) was conjugated on the surface of fluorescent-magnetic nanocomposites. The surface functional and biocompatible nanocomposites were successfully synthesized, they could be used for bioanalytical assays and biomedical applications. Materials & Methods:FeCl_3-6H_2O, FeSO_4-7H_2O, tetraethylorthosilicate (TEOS), 3-aminopropyltriethoxysilane (APTES), 1-(3-Dimethylaminopropyl)-3-ethylcarbodiimide hydrochloride (EDC), fluorescein isothiocyanate (FITC), CdTe quantum dots (CdTe QDs), bovine serum albumin (BSA). All reagents were analytical grade. Fe_3O_4 were firstly obtained by chemical co-precipitation, and then two kinds of bifunctional nanocomposites (Fe_3O_4@SiO_2@FITC, Fe_3O_4@SiO_2@CdTe) were prepared by the Stober method. BSA was conjugated on the surface of Fe_3O_4@SiO_2@FITC nanoparticles activated by EDC. Results & Discussion: The FTIR and FL show that both Fe_3O_4@SiO_2@CdTe and Fe_3O_4@SiO_2@CdTe retained fluorescence characteristics and magnetic responsibility. The fluorescence of Fe_3O_4@SiO_2@CdTe is different from CdTe, while the fluorescence of Fe_3O_4@SiO_2@FITC did no change significantly compared to FITC, the distinction is due to the different fluorescent mechanisms of QDs and dye. The XPS shows that BSA has successfully grafted on Fe_3O_4@SiO_2@FITC nanoparticles. The nanocomposites conjugated BSA was obtained in this study, the products were detected by FTIR, FL and XPS. The results demonstrate that surface functional and biocompatible nanocomposites were obtained; the nanoparticles with biofunction are expected to have potential application in the bioscience such as luminescence detection, magnetic separation, drug delivery etc.
机译:简介:荧光和磁性核/壳纳米粒子已在纳米生物科学领域进行了广泛的研究。荧光磁性纳米复合材料可通过反向微乳液法和Stober方法获得。具有表面改性的荧光磁性纳米复合材料具有许多潜在的应用。在这项研究中,生物分子(BSA)被缀合在荧光磁性纳米复合材料的表面上。表面功能和生物相容性纳米复合材料已成功合成,可用于生物分析测定和生物医学应用。材料与方法:FeCl_3-6H_2O,FeSO_4-7H_2O,原硅酸四乙酯(TEOS),3-氨基丙基三乙氧基硅烷(APTES),1-(3-二甲基氨基丙基)-3-乙基碳二亚胺盐酸盐(EDC),异硫氰酸荧光素(FITC),CdTe量子点( CdTe QDs),牛血清白蛋白(BSA)。所有试剂均为分析纯。首先通过化学共沉淀法获得Fe_3O_4,然后通过Stober方法制备了两种双功能纳米复合材料(Fe_3O_4 @ SiO_2 @ FITC,Fe_3O_4 @ SiO_2 @ CdTe)。将BSA偶联在EDC活化的Fe_3O_4 @ SiO_2 @ FITC纳米颗粒的表面上。结果与讨论:FTIR和FL表明,Fe_3O_4 @ SiO_2 @ CdTe和Fe_3O_4 @ SiO_2 @ CdTe均保留了荧光特性和磁性。 Fe_3O_4 @ SiO_2 @ CdTe的荧光不同于CdTe,而Fe_3O_4 @ SiO_2 @ FITC的荧光与FITC相比无明显变化,这是由于QD和染料的荧光机理不同所致。 XPS表明BSA已成功接枝到Fe_3O_4 @ SiO_2 @ FITC纳米颗粒上。本研究获得了纳米复合共轭牛血清白蛋白,并通过FTIR,FL和XPS对产物进行了检测。结果表明,获得了具有表面功能和生物相容性的纳米复合材料。具有生物功能的纳米颗粒有望在生物科学中具有潜在的应用,例如发光检测,磁分离,药物递送等。

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