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蛋白质吸附对纳米颗粒与培养的内皮细胞结合的影响。

The influence of protein adsorption on nanoparticle association with cultured endothelial cells.

作者信息

Ehrenberg Morton S, Friedman Alan E, Finkelstein Jacob N, Oberdörster Günter, McGrath James L

机构信息

Department of Biomedical Engineering, University of Rochester, Goergen Hall, Rochester, NY 14627, USA.

出版信息

Biomaterials. 2009 Feb;30(4):603-10. doi: 10.1016/j.biomaterials.2008.09.050. Epub 2008 Nov 13.

Abstract

As materials are produced at smaller scales, the properties that make them especially useful for biological applications such as drug delivery, imaging or sensing applications also render them potentially harmful. There has been a reasonable amount of work addressing the interactions of biological fluids at material surfaces that demonstrates the high affinity of protein for particle surfaces and some looking at the role of particle surface chemistry in cellular associations, but mechanisms have been too little addressed outside the context of intended, specific interactions. Here, using cultured endothelium as a model for vascular transport, we demonstrate that the capacity of nanoparticle surfaces to adsorb protein is indicative of their tendency to associate with cells. Quantification of adsorbed protein shows that high binding nanoparticles are maximally coated in seconds to minutes, indicating that proteins on particle surfaces can mediate cell association over much longer time scales. We also remove many of the most abundant proteins from culture media which alters the profile of adsorbed proteins on nanoparticles but does not affect the level of cell association. We therefore conclude that cellular association is not dependent on the identity of adsorbed proteins and therefore unlikely to require specific binding to any particular cellular receptors.

摘要

随着材料生产规模的缩小,那些使其在药物递送、成像或传感等生物应用中特别有用的特性,也可能使其具有潜在危害。已经有相当数量的工作致力于研究生物流体在材料表面的相互作用,这些研究表明蛋白质对颗粒表面具有高亲和力,还有一些研究着眼于颗粒表面化学在细胞结合中的作用,但在预期的特定相互作用背景之外,相关机制的研究还很少。在这里,我们以培养的内皮细胞作为血管运输的模型,证明纳米颗粒表面吸附蛋白质的能力表明了它们与细胞结合的倾向。对吸附蛋白质的定量分析表明,高结合性纳米颗粒在几秒到几分钟内就会被最大程度地覆盖,这表明颗粒表面的蛋白质可以在更长的时间尺度上介导细胞结合。我们还从培养基中去除了许多最丰富的蛋白质,这改变了纳米颗粒上吸附蛋白质的分布,但不影响细胞结合水平。因此,我们得出结论,细胞结合不依赖于吸附蛋白质的种类,因此不太可能需要与任何特定的细胞受体进行特异性结合。

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