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Improving the Size Homogeneity of Multicore Superparamagnetic Iron Oxide Nanoparticles

机译:改善多核超顺磁性氧化铁纳米粒子的尺寸均质性

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摘要

Superparamagnetic iron oxide nanoparticles (SPIONs) have been widely explored for use in many biomedical applications. Methods for synthesis of magnetic nanoparticle (MNP), however, typically yield multicore structures with broad size distribution, resulting in suboptimal and variable performance in vivo. In this study, a new method for sorting SPIONs by size, labeled diffusive magnetic fractionation (DMF), is introduced as an improvement over conventional magnetic field flow fractionation (MFFF). Unlike MFFF, which uses a constant magnetic field to capture particles, DMF utilizes a pulsed magnetic field approach that exploits size-dependent differences in the diffusivity and magnetic attractive force of SPIONs to yield more homogenous particle size distributions. To compare both methods, multicore SPIONs with a broad size distribution (polydispersity index (PdI) = 0.24 ± 0.05) were fractionated into nine different-sized SPION subpopulations, and the PdI values were compared. DMF provided significantly improved size separation compared to MFFF, with eight out of the nine fractionations having significantly lower PdI values ( value < 0.01). Additionally, the DMF method showed a high particle recovery (>95%), excellent reproducibility, and the potential for scale-up. Mathematical models were developed to enable optimization, and experimental results confirmed model predictions ( = 0.98).
机译:超顺磁性氧化铁纳米粒子(SPIONs)已被广泛探索用于许多生物医学应用中。但是,磁性纳米粒子(MNP)的合成方法通常会产生具有宽尺寸分布的多核结构,从而导致体内亚最佳和可变性能。在这项研究中,引入了一种按尺寸对SPION进行分类的新方法,称为标记扩散磁分馏(DMF),作为对常规磁场流分馏(MFFF)的改进。与使用恒定磁场捕获颗粒的MFFF不同,DMF采用脉冲磁场方法,该方法利用SPIONs的扩散率和磁吸引力的大小相关差异来产生更均匀的粒度分布。为了比较这两种方法,将具有宽尺寸分布(多分散指数(PdI)= 0.24±0.05)的多核SPION分为9个不同大小的SPION亚组,并比较了PdI值。与MFFF相比,DMF显着改善了大小分离,九个馏分中的八个具有显着更低的PdI值(值<0.01)。此外,DMF方法显示出较高的颗粒回收率(> 95%),出色的重现性和扩大规模的潜力。开发了数学模型以实现优化,并且实验结果证实了模型预测(= 0.98)。

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