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在不同的流场中保持软蛋白冠可以识别弱结合蛋白。

Preservation of the soft protein corona in distinct flow allows identification of weakly bound proteins.

机构信息

Max Planck Institute for Polymer Research, Ackermannweg 10, 55128 Mainz, Germany.

Max Planck Institute for Polymer Research, Ackermannweg 10, 55128 Mainz, Germany; Department of Dermatology, University Medical Center of the Johannes Gutenberg-University Mainz, Langenbeckstrasse 1, 55131 Mainz, Germany.

出版信息

Acta Biomater. 2018 Aug;76:217-224. doi: 10.1016/j.actbio.2018.05.057. Epub 2018 Jun 8.

Abstract

UNLABELLED

Nanocarriers that are used for targeted drug delivery come in contact with biological liquids and subsequently proteins will adsorb to the nanocarriers' surface to form the so called 'protein corona'. The protein corona defines the biological identity and determines the biological response towards the nanocarriers in the body. To make nanomedicine safe and reliable it is required to get a better insight into this protein corona and, therefore, the adsorbed proteins have to be characterized. Currently, centrifugation is the common method to isolate the protein corona for further investigations. However, with this method it is only possible to investigate the strongly bound proteins, also referred to as 'hard protein corona'. Therefore, we want to introduce a new separation technique to separate nanoparticles including the soft protein corona containing also loosely bound proteins for further characterization. The used separation technique is the asymmetric flow field-flow fractionation (AF4). We were able to separate the nanoparticles with proteins forming the soft protein corona and were able to show that in our system only the hard protein corona directly influenced the cell uptake behavior.

STATEMENT OF SIGNIFICANCE

Currently, there is an ongoing debate whether only strongly bound proteins (hard corona) or also loosely bound proteins (soft corona) contribute to the biological identity of nanocarriers, because up to now isolation of the soft corona was not possible. Here, asymmetric flow field-flow fractionation was used to isolate nanoparticles with a preserved soft corona from the biological medium. This enabled the characterization of the soft corona composition and to evaluate its influence on cellular uptake. For our system we found that only the strongly bound proteins (hard corona) determined cell internalization. This method can now be used to evaluate the impact of the soft corona further and to characterize nanomaterials that cannot be separated from blood plasma by other means.

摘要

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用于靶向药物递送的纳米载体与生物液体接触,随后蛋白质将吸附到纳米载体的表面,形成所谓的“蛋白质冠”。蛋白质冠定义了生物身份,并决定了纳米载体在体内的生物反应。为了使纳米医学安全可靠,需要更好地了解这种蛋白质冠,因此需要对吸附的蛋白质进行特征分析。目前,离心是分离蛋白质冠进行进一步研究的常用方法。然而,这种方法只能研究强结合的蛋白质,也称为“硬蛋白质冠”。因此,我们想引入一种新的分离技术,以分离包括含有松散结合蛋白质的软蛋白质冠的纳米颗粒,以进行进一步的特征分析。所使用的分离技术是不对称流场流分离(AF4)。我们能够分离出形成软蛋白质冠的纳米颗粒,并能够表明在我们的系统中,只有硬蛋白质冠直接影响细胞摄取行为。

意义声明

目前,关于只有强结合蛋白(硬冠)还是也包括松散结合蛋白(软冠)对纳米载体的生物身份有贡献,仍存在争议,因为到目前为止,软冠的分离是不可能的。在这里,使用不对称流场流分离从生物介质中分离出保留软冠的纳米颗粒。这使得软冠组成的特征分析及其对细胞摄取的影响得以评估。对于我们的系统,我们发现只有强结合蛋白(硬冠)决定细胞内化。现在可以使用这种方法来进一步评估软冠的影响,并对不能用其他方法从血浆中分离出来的纳米材料进行特征分析。

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