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Phagocytotic Competence of Differentiated U937 Cells for Colloidal Drug Delivery Systems in Immune Cells

机译:免疫细胞中胶体药物递送系统的分化U937细胞的吞噬能力。

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Drug delivery into immune cells has high potential for the treatment of all kinds of inflammation, allowing a target-oriented transport of active agents. The advantage of this local drug release is the prevention of negative effects of systemic applications and low-dose application. Thereby, the phagocytotic capability of mature phagocytes is essential. Microparticles can be loaded with immune regulatory substances to control and terminate inflammatory processes. In this study, silica microparticles were co-incubated with monocyte/macrophage-like cells in order to determine phagocytotic particle uptake. The phorbol ester-triggered differentiation was proven by the increased expression of surface markers as phosphatidylserine and CD14 and enhanced lysosomal activity. Particle/cell co-incubation results in cell surface attachment followed by phagocytosis. Phagolysosomal ingestion could be determined by co-localization using fluorescence staining techniques. In contrast, no particle interaction with undifferentiated cells could be found. Under phagolysosomal conditions, multilayer degradation within 22 h could be shown, indicating a valuable carrier basis design for the time-controlled delivery of active agents. Subsequently, it can be assumed that a higher differentiation degree allows phagocytosis of microparticles, providing drug delivery into immuno-active cells.
机译:将药物递送到免疫细胞中具有治疗各种炎症的高潜力,从而可以靶向靶向运输活性剂。这种局部药物释放的优点是可以防止全身性应用和低剂量应用的负面影响。因此,成熟吞噬细胞的吞噬能力至关重要。微粒可以负载免疫调节物质,以控制和终止炎症过程。在这项研究中,将二氧化硅微粒与单核细胞/巨噬细胞样细胞共孵育,以确定吞噬颗粒的摄取。通过增加表面标记物磷脂酰丝氨酸和CD14的表达以及增强的溶酶体活性,证明了佛波酯引发的分化。颗粒/细胞共孵育导致细胞表面附着,然后吞噬。吞噬溶酶体摄入可以通过使用荧光染色技术进行共定位来确定。相反,未发现与未分化细胞的颗粒相互作用。在吞噬溶酶体条件下,可以显示22 h内的多层降解,这表明了用于时间控制的活性剂输送的有价值的载体基础设计。随后,可以假定较高的分化程度允许吞噬微粒,从而将药物递送到免疫活性细胞中。

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