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首页> 外文期刊>Journal of biomedical materials research, Part A >Studies of the cellular uptake of hydrogel nanospheres and microspheres by phagocytes, vascular endothelial cells, and smooth muscle cells.
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Studies of the cellular uptake of hydrogel nanospheres and microspheres by phagocytes, vascular endothelial cells, and smooth muscle cells.

机译:研究吞噬细胞,血管内皮细胞和平滑肌细胞对水凝胶纳米球和微球的细胞吸收。

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Intensive research efforts have been placed on the development of nanospheres for targeted drug delivery for treating a variety of diseases, including coronary restenosis, cancer, and inflammatory reactions. Although most of these drug-bearing spheres are delivered via intravenous administration, little is known about the effect of sphere physical characteristics on the responses of vascular and blood cells. To find the answer, this work was aimed to investigate the cellular uptake of nanosized (100 nm) and microsized hydrogel spheres (1 microm) made of poly(N-isopropylacrylamide) by vascular cells and phagocytes under various flow conditions in vitro. We found that the cellular uptake of nanospheres depended on incubation times and sphere concentrations as well as on the introduced shear stress levels of the medium. Measurements of the intracellular-released fluorescence and confocal fluorescence microscopy revealed that nanospheres were internalized by endothelial cells and smooth muscle cells more than microspheres, whereas microspheres were rapidly taken up by phagocytes, especially at high concentration. Our results strongly suggest that hydrogel nanospheres are more effective as an intravascular delivery system compared to microspheres in the terms of vascular cellular uptake and biocompatibility.
机译:已经针对用于靶向药物递送的纳米球的开发进行了深入研究,以治疗多种疾病,包括冠状动脉再狭窄,癌症和炎症反应。尽管大多数这些载药球是通过静脉内给药的,但对球体物理特性对血管和血细胞反应的影响知之甚少。为了找到答案,这项工作旨在研究在不同流动条件下血管细胞和吞噬细胞对由聚(N-异丙基丙烯酰胺)制成的纳米大小(100 nm)和微型大小的水凝胶球(1微米)的细胞吸收。我们发现纳米球的细胞摄取取决于孵育时间和球浓度以及所引入的培养基的剪切应力水平。细胞内释放的荧光和共聚焦荧光显微镜的测量结果显示,相比于微球,纳米球更被内皮细胞和平滑肌细胞内化,而吞噬细胞则迅速吸收了微球,特别是在高浓度时。我们的研究结果强烈表明,与微球相比,水凝胶纳米球在血管细胞吸收和生物相容性方面作为微血管更有效。

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