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Magnetic Nanoparticle Images and Assaying Biomarkers via the Magnetic Relaxation of Biofunctionalized Nanoparticles Associated With Biotargets

机译:磁性纳米颗粒图像和通过与生物靶标相关联的生物功能化纳米颗粒的磁性弛豫来测定生物标志物

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This paper presents a novel assay of biomarkers consisting of alpha-fetaprotein (AFP) via the measurements of saturation magnetization and magnetic relaxation. The biofunctionalized magnetic nanoparticles (BMNs) were anti-alpha-fetaprotein (antiAFP) coated onto dextran-coated iron oxide nanoparticles, labeled as Fe3O4-antiAFP, and then conjugated with AFP biotargets. After a complete conjugation of AFP and Fe3O4-antiAFP, the BMNs were dried for magnetic measurements. Magnetic nanoparticle images were obtained from magnetic force microscopy with details regarding the transmission electron microscopy images. Findings show that the saturation magnetization M-s increases with a rise in the associated AFP concentration and the magnetic relaxation timer tau also shows a rapid increase when the concentration of AFP is lower than 0.2 ppm. Thus, we demonstrate a sensitive platform for detecting biomarkers by characterizing M-s and tau with a sensitivity limit of 0.03-ppm AFP. The results can be attributed to the interparticle interactions and the Neel motion of magnetic moments in BMNs.
机译:本文通过测量饱和磁化强度和磁弛豫强度,提出了一种由α-胎蛋白(AFP)组成的新型生物标志物测定方法。将生物功能化的磁性纳米颗粒(BMN)涂在葡聚糖包被的氧化铁纳米颗粒上,标记为Fe3O4-antiAFP,然后将其与AFP生物靶标偶联。 AFP和Fe3O4-antiAFP完全结合后,将BMN干燥以进行磁测量。磁性纳米颗粒图像是从磁力显微镜获得的,有关透射电子显微镜图像的详细信息。结果表明,饱和磁化强度M-s随着相关AFP浓度的增加而增加,并且当AFP浓度低于0.2 ppm时,磁弛豫计时器tau也显示出快速增加。因此,我们证明了通过表征M-s和tau具有0.03-ppm AFP灵敏度极限来检测生物标志物的敏感平台。结果可以归因于BMN中的粒子间相互作用和磁矩的Neel运动。

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