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血清蛋白吸附增强介孔硅纳米粒子对白血病干细胞的靶向作用。

Serum Protein Adsorption Enhances Active Leukemia Stem Cell Targeting of Mesoporous Silica Nanoparticles.

机构信息

University of Ulm , Institute of Inorganic Chemistry II, Albert-Einstein-Allee 11, 89081 Ulm, Germany.

University Hospital Ulm , Institute of Experimental Cancer Research, Albert-Einstein-Allee 11, 89081 Ulm, Germany.

出版信息

ACS Appl Mater Interfaces. 2017 Jun 7;9(22):18566-18574. doi: 10.1021/acsami.7b04742. Epub 2017 May 25.

Abstract

The functionalization of nanoparticles with a ligand targeting receptors overexpressed by the target cells is a commonly used strategy when aiming at nanoparticle-based, cell type-specific drug delivery.1-4 However, the influence of particle surface chemistry on the targetability has received much less attention. The surface charge is known to directly or indirectly affect the nanoparticle cellular uptake kinetics by influencing serum protein adsorption.5-7 Thus, it is fair to assume that both the specificity and cellular uptake kinetics of targeted nanoparticles are influenced by the nanoparticle charge, both of which are important parameters for controlling cell-specific drug delivery efficiency. We therefore studied the influence of the surface chemistry of mesoporous silica nanoparticles (MSNs) carrying identical amounts of a specific antibody (anti-B220) on the selectivity toward B220-positive leukemia stem cells. The uptake by these cells was higher compared to the nanoparticle uptake by B220-negative leukemia stem cells, demonstrating uptake specificity. In addition, the adsorption of serum proteins onto the differently charged MSNs was studied by SDS-PAGE. Interestingly, the highest selectivity was not observed for the MSNs with the lowest level of serum protein adsorption, which suggests that proteins present in the protein corona of the MSNs may positively influence the selective uptake of targeted nanoparticles. For the particles exhibiting the highest selectivity, successful selective delivery of cargo to the B220-positive cells was demonstrated. Taken together, our results indicate that nanoparticle surface charge and adsorption of serum proteins is an important factor for enhancing selectivity in targeted delivery of drugs using nanoparticulate vectors, an observation tentatively attributed to enhanced cellular internalization kinetics in the presence of adsorbed serum proteins on the nanoparticles.

摘要

当目标是基于纳米粒子的、针对特定细胞类型的药物递释时,用靶向靶细胞过度表达的受体的配体对纳米粒子进行功能化是一种常用策略。1-4 然而,粒子表面化学对靶向性的影响受到的关注要少得多。已知表面电荷通过影响血清蛋白吸附,直接或间接地影响纳米粒子的细胞摄取动力学。5-7 因此,可以合理地假设,靶向纳米粒子的特异性和细胞摄取动力学都受到纳米粒子电荷的影响,这两者都是控制细胞特异性药物递送效率的重要参数。因此,我们研究了表面带相同数量特异性抗体(抗 B220)的介孔硅纳米粒子(MSNs)的表面化学对 B220 阳性白血病干细胞选择性的影响。与 B220 阴性白血病干细胞相比,这些细胞对这些纳米粒子的摄取更高,表明了摄取的特异性。此外,通过 SDS-PAGE 研究了不同带电荷的 MSNs 对血清蛋白的吸附。有趣的是,最高的选择性并不是在血清蛋白吸附水平最低的 MSNs 上观察到的,这表明 MSNs 蛋白冠中的蛋白质可能会积极影响靶向纳米粒子的选择性摄取。对于表现出最高选择性的粒子,成功地将货物递送到 B220 阳性细胞中进行了选择性递释。综上所述,我们的结果表明,纳米粒子表面电荷和血清蛋白的吸附是增强使用纳米载体进行药物靶向递释的选择性的一个重要因素,这一观察结果推测归因于在纳米粒子上吸附的血清蛋白存在时增强了细胞内化动力学。

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