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18纳米载阿霉素三螺旋胶束的设计:患者来源的GBM6细胞中的细胞摄取和细胞毒性

Design of 18 nm Doxorubicin-Loaded 3-Helix Micelles: Cellular Uptake and Cytotoxicity in Patient-Derived GBM6 Cells.

作者信息

Jung Benson T, Jung Katherine, Lim Marc, Li Michael, Santos Raquel, Ozawa Tomoko, Xu Ting

机构信息

Department of Materials Science and Engineering, University of California, Berkeley, Berkeley, California 94720, United States.

Department of Chemistry, University of California, Berkeley, Berkeley, California 94720, United States.

出版信息

ACS Biomater Sci Eng. 2021 Jan 11;7(1):196-206. doi: 10.1021/acsbiomaterials.0c01639. Epub 2020 Dec 18.

DOI:10.1021/acsbiomaterials.0c01639
PMID:33338381
Abstract

The fate of nanocarrier materials at the cellular level constitutes a critical checkpoint in the development of effective nanomedicines, determining whether tissue level accumulation results in therapeutic benefit. The cytotoxicity and cell internalization of ∼18 nm 3-helix micelle (3HM) loaded with doxorubicin (DOX) were analyzed in patient-derived glioblastoma (GBM) cells . The half-maximal inhibitory concentration (IC) of 3HM-DOX increased to 6.2 μg/mL from <0.5 μg/mL for free DOX in patient-derived GBM6 cells, to 15.0 μg/mL from 6.5 μg/mL in U87MG cells, and to 21.5 μg/mL from ∼0.5 μg/mL in LN229 cells. Modeling analysis of previous 3HM biodistribution results predicts that these cytotoxic concentrations are achievable with intravenous injection in rodent GBM models. 3HM-DOX formulations were internalized intact and underwent intracellular trafficking distinct from free DOX. 3HM was quantified to have an internalization half-life of 12.6 h in GBM6 cells, significantly longer than that reported for some liposome and polymer systems. 3HM was found to traffic through active endocytic processes, with clathrin-mediated endocytosis being the most involved of the pathways studied. Inhibition studies suggest substantial involvement of receptor recognition in 3HM uptake. As the 3HM surface is PEG-ylated with no targeting functionalities, protein corona-cell surface interactions, such as the apolipoprotein-low-density lipoprotein receptor, are expected to initiate internalization. The present work gives insights into the cytotoxicity, pharmacodynamics, and cellular interactions of 3HM and 3HM-DOX relevant for ongoing preclinical studies. This work also contributes to efforts to develop predictive mathematical models tracking the accumulation and biodistribution kinetics at a systemic level.

摘要

纳米载体材料在细胞水平的命运是有效纳米药物开发中的一个关键检查点,它决定了组织水平的积累是否会带来治疗益处。在患者来源的胶质母细胞瘤(GBM)细胞中分析了负载阿霉素(DOX)的约18 nm三螺旋胶束(3HM)的细胞毒性和细胞内化情况。在患者来源的GBM6细胞中,3HM-DOX的半数最大抑制浓度(IC)从游离DOX的<0.5 μg/mL增加到6.2 μg/mL,在U87MG细胞中从6.5 μg/mL增加到15.0 μg/mL,在LN229细胞中从约0.5 μg/mL增加到21.5 μg/mL。对先前3HM生物分布结果的建模分析预测,在啮齿动物GBM模型中静脉注射可达到这些细胞毒性浓度。3HM-DOX制剂完整内化,并经历了与游离DOX不同的细胞内运输。在GBM6细胞中,3HM的内化半衰期经量化为12.6小时,明显长于一些脂质体和聚合物系统所报道的半衰期。发现3HM通过活跃的内吞过程进行运输,网格蛋白介导的内吞作用是所研究途径中最主要的。抑制研究表明受体识别在3HM摄取中起重要作用。由于3HM表面进行了聚乙二醇化且无靶向功能,预计载脂蛋白-低密度脂蛋白受体等蛋白质冠-细胞表面相互作用会引发内化。本研究为正在进行的临床前研究中3HM和3HM-DOX的细胞毒性、药效学及细胞相互作用提供了见解。这项工作也有助于开发预测性数学模型,以跟踪系统水平的积累和生物分布动力学。

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