Characterizing the Interactions of Organic Nanoparticles with Renal Epithelial Cells in Vivo

内吞作用 内吞循环 右旋糖酐 体内 化学 纳米颗粒 细胞生物学 受体介导的内吞作用 肾功能 生物物理学 网格蛋白 药理学 受体 纳米技术 生物 材料科学 生物化学 内分泌学 生物技术
作者
Anil V. Nair,Edmund J. Keliher,Amanda B. Core,Dennis Brown,Ralph Weissleder
出处
期刊:ACS Nano [American Chemical Society]
卷期号:9 (4): 3641-3653 被引量:55
标识
DOI:10.1021/acsnano.5b00428
摘要

Nanotechnology approaches are actively being pursued for drug delivery, novel diagnostics, implantable devices, and consumer products. While considerable research has been performed on the effects of these materials on targeted tumor or phagocytic cells, relatively little is known about their effects on renal cells. This becomes critical for supersmall nanoparticles (<10 nm), designed to be renally excreted. The active endocytic machinery of kidney proximal tubules avidly internalizes filtered proteins, which may also be the case for filtered nanoparticles. To test whether such interactions affect kidney function, we injected mice with either 5 nm dextran-based nanoparticles (DNP) that are similar in composition to FDA-approved materials or poly(amido amine) dendrimer nanoparticles (PNP) of comparable size. These fluorescently tagged nanoparticles were both filtered and internalized by renal tubular epithelial cells in a dose- and time-dependent fashion. The biological effects were quantitated by immunocytochemistry, measuring kidney injury markers and performing functional tests. DNP administration resulted in a dose-dependent increase in urinary output, while cellular albumin endocytosis was increased. The expression of megalin, a receptor involved in albumin uptake, was also increased, but AQP1 expression was unaffected. The effects after PNP administration were similar but additionally resulted in increased clathrin expression and increased endocytosis of dextran. We conclude that there are no major detrimental renal effects of DNP on overall kidney function, but changes in endocytosis-mediating protein expression do occur. These studies provide a framework for the testing of additional nanoparticle preparations as they become available.
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