Calatayud M Pilar, Riggio Cristina, Raffa Vittoria, Sanz Beatriz, Torres Teobaldo E, Ibarra M Ricardo, Hoskins Clare, Cuschieri Alfred, Wang Lijun, Pinkernelle Josephine, Keilhoff Gerburg, Goya Gerardo F
Instituto de Nanociencia de Aragon (INA), Universidad de Zaragoza, Mariano Esquillor s/n, 50018 Zaragoza, Spain.
J Mater Chem B. 2013 Aug 7;1(29):3607-3616. doi: 10.1039/c3tb20336k. Epub 2013 Jun 11.
We report a one-step synthesis protocol for obtaining polymer-coated magnetic nanoparticles (MNPs) engineered for uploading neural cells. Polyethyleneimine-coated FeO nanoparticles (PEI-MNPs) with sizes of 25 ± 5 nm were prepared by oxidation of Fe(OH) by nitrate in basic aqueous media and adding PEI in situ during synthesis. The obtained PEI-MNP cores displayed a neat octahedral morphology and high crystallinity. The resulting nanoparticles were coated with a thin polymer layer of about 0.7-0.9 nm, and displayed a saturation magnetization value M = 58 A m kg at 250 K (64 A m kg for T = 10 K). Cell uptake experiments on a neuroblastoma-derived SH-SY5Y cell line were undertaken over a wide time and MNP concentration range. The results showed a small decrease in cell viability for 24 h incubation (down to 70% viability for 100 μg ml), increasing the toxic effects with incubation time (30% cell survival at 100 μg ml for 7 days of incubation). On the other hand, primary neuronal cells displayed higher sensitivity to PEI-MNPs, with a cell viability reduction of 44% of the control cells after 3 days of incubation with 50 μg ml. The amount of PEI-MNPs uploaded by SH-SY5Y cells was found to have a linear dependence on concentration. The intracellular distribution of the PEI-MNPs analyzed at the single-cell level by the dual-beam (FIB/SEM) technique revealed the coexistence of both fully incorporated PEI-MNPs and partially internalized PEI-MNP-clusters crossing the cell membrane. The resulting MNP-cluster distributions open the possibility of using these PEI-MNPs for magnetically driven axonal re-growth in neural cells.
我们报告了一种一步合成方案,用于制备为上传神经细胞而设计的聚合物包覆磁性纳米颗粒(MNP)。通过在碱性水性介质中用硝酸盐氧化Fe(OH)并在合成过程中原位添加聚乙烯亚胺(PEI),制备了尺寸为25±5 nm的聚乙烯亚胺包覆的FeO纳米颗粒(PEI-MNP)。所获得的PEI-MNP核呈现出规整的八面体形态和高结晶度。所得纳米颗粒包覆有约0.7 - 0.9 nm的薄聚合物层,在250 K时显示出饱和磁化强度值M = 58 A m²/kg(T = 10 K时为64 A m²/kg)。在广泛的时间和MNP浓度范围内,对源自神经母细胞瘤的SH-SY5Y细胞系进行了细胞摄取实验。结果表明,孵育24小时后细胞活力略有下降(对于100 μg/ml,活力降至70%),且随着孵育时间毒性作用增加(孵育7天,对于100 μg/ml,细胞存活率为30%)。另一方面,原代神经元细胞对PEI-MNP表现出更高的敏感性,在与50 μg/ml孵育3天后,细胞活力比对照细胞降低了44%。发现SH-SY5Y细胞摄取的PEI-MNP量与浓度呈线性相关。通过双束(FIB/SEM)技术在单细胞水平分析PEI-MNP的细胞内分布,揭示了完全掺入的PEI-MNP和部分内化的穿过细胞膜的PEI-MNP簇的共存。所得的MNP簇分布为使用这些PEI-MNP促进神经细胞中的磁驱动轴突再生提供了可能性。