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Improved biocompatibility and efficient labeling of neural stem cells with poly(L-lysine)-coated maghemite nanoparticles.

机译:用聚(L-赖氨酸)涂覆的磁赤铁矿纳米粒子改善生物相容性和神经干细胞的有效标记。

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摘要

BACKGROUND: ududCell tracking is a powerful tool to understand cellular migration, dynamics, homing and function of stem cell transplants. Nanoparticles represent possible stem cell tracers, but they differ in cellular uptake and side effects. Their properties can be modified by coating with different biocompatible polymers. To test if a coating polymer, poly(L-lysine), can improve the biocompatibility of nanoparticles applied to neural stem cells, poly(L-lysine)-coated maghemite nanoparticles were prepared and characterized. We evaluated their cellular uptake, the mechanism of internalization, cytotoxicity, viability and proliferation of neural stem cells, and compared them to the commercially available dextran-coated nanomag(®)-D-spio nanoparticles. -----ududRESULTS: ududLight microscopy of Prussian blue staining revealed a concentration-dependent intracellular uptake of iron oxide in neural stem cells. The methyl thiazolyl tetrazolium assay and the calcein acetoxymethyl ester/propidium iodide assay demonstrated that poly(L-lysine)-coated maghemite nanoparticles scored better than nanomag(®)-D-spio in cell labeling efficiency, viability and proliferation of neural stem cells. Cytochalasine D blocked the cellular uptake of nanoparticles indicating an actin-dependent process, such as macropinocytosis, to be the internalization mechanism for both nanoparticle types. Finally, immunocytochemistry analysis of neural stem cells after treatment with poly(L-lysine)-coated maghemite and nanomag(®)-D-spio nanoparticles showed that they preserve their identity as neural stem cells and their potential to differentiate into all three major neural cell types (neurons, astrocytes and oligodendrocytes). -----ududCONCLUSION: ududImproved biocompatibility and efficient cell labeling makes poly(L-lysine)-coated maghemite nanoparticles appropriate candidates for future neural stem cell in vivo tracking studies.
机译:背景: ud ud细胞跟踪是了解干细胞移植的细胞迁移,动力学,归巢和功能的强大工具。纳米颗粒代表可能的干细胞示踪剂,但它们在细胞摄取和副作用方面有所不同。它们的性质可以通过用不同的生物相容性聚合物包被来改变。为了测试涂覆聚合物聚(L-赖氨酸)是否可以改善应用于神经干细胞的纳米颗粒的生物相容性,制备并表征了涂覆聚(L-赖氨酸)的磁赤铁矿纳米颗粒。我们评估了它们的细胞摄取,神经干细胞的内在化,细胞毒性,生存力和增殖机制,并将它们与可商购的葡聚糖包被的nanomag(®)-D-spio纳米颗粒进行了比较。 ----- ud ud结果: ud ud普鲁士蓝染色的光学显微镜显示神经干细胞中氧化铁的浓度依赖性细胞内摄取。甲基噻唑基四唑鎓测定和钙黄绿素乙酰氧基甲基酯/碘化丙啶测定表明,聚(L-赖氨酸)包覆的磁赤铁矿纳米颗粒在细胞标记效率,神经干细胞的活力和增殖方面比nanomag(D)-spio得分更高。细胞松弛素D阻断了纳米颗粒的细胞摄取,表明肌动蛋白依赖性过程(例如巨胞饮作用)是两种纳米颗粒类型的内在化机理。最后,用聚(L-赖氨酸)涂层的磁赤铁矿和nanomag(®)-D-spio纳米粒子处理后的神经干细胞的免疫细胞化学分析表明,它们保留了其作为神经干细胞的身份以及分化为所有三种主要神经元的潜力细胞类型(神经元,星形胶质细胞和少突胶质细胞)。结论:改善生物相容性和有效的细胞标记使聚(L-赖氨酸)涂层磁赤铁矿纳米粒子成为未来神经干细胞体内追踪研究的合适候选者。

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