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载多柔比星氧化铁纳米颗粒用于脑胶质母细胞瘤治疗:增强纳米颗粒递送的联合方法。

Doxorubicin-loaded iron oxide nanoparticles for glioblastoma therapy: a combinational approach for enhanced delivery of nanoparticles.

机构信息

Department of Biomedical Engineering, University of Manitoba, Winnipeg, MB, Canada.

Department of Pharmacology and Therapeutics, University of Manitoba, A205 Chown Bldg., 753 McDermot Avenue, Winnipeg, MB, Canada.

出版信息

Sci Rep. 2020 Jul 9;10(1):11292. doi: 10.1038/s41598-020-68017-y.

Abstract

Although doxorubicin (DOX) is an effective anti-cancer drug with cytotoxicity in a variety of different tumors, its effectiveness in treating glioblastoma multiforme (GBM) is constrained by insufficient penetration across the blood-brain barrier (BBB). In this study, biocompatible magnetic iron oxide nanoparticles (IONPs) stabilized with trimethoxysilylpropyl-ethylenediamine triacetic acid (EDT) were developed as a carrier of DOX for GBM chemotherapy. The DOX-loaded EDT-IONPs (DOX-EDT-IONPs) released DOX within 4 days with the capability of an accelerated release in acidic microenvironments. The DOX-loaded EDT-IONPs (DOX-EDT-IONPs) demonstrated an efficient uptake in mouse brain-derived microvessel endothelial, bEnd.3, Madin-Darby canine kidney transfected with multi-drug resistant protein 1 (MDCK-MDR1), and human U251 GBM cells. The DOX-EDT-IONPs could augment DOX's uptake in U251 cells by 2.8-fold and significantly inhibited U251 cell proliferation. Moreover, the DOX-EDT-IONPs were found to be effective in apoptotic-induced GBM cell death (over 90%) within 48 h of treatment. Gene expression studies revealed a significant downregulation of TOP II and Ku70, crucial enzymes for DNA repair and replication, as well as MiR-155 oncogene, concomitant with an upregulation of caspase 3 and tumor suppressors i.e., p53, MEG3 and GAS5, in U251 cells upon treatment with DOX-EDT-IONPs. An in vitro MDCK-MDR1-GBM co-culture model was used to assess the BBB permeability and anti-tumor activity of the DOX-EDT-IONPs and DOX treatments. While DOX-EDT-IONP showed improved permeability of DOX across MDCK-MDR1 monolayers compared to DOX alone, cytotoxicity in U251 cells was similar in both treatment groups. Using a cadherin binding peptide (ADTC5) to transiently open tight junctions, in combination with an external magnetic field, significantly enhanced both DOX-EDT-IONP permeability and cytotoxicity in the MDCK-MDR1-GBM co-culture model. Therefore, the combination of magnetic enhanced convective diffusion and the cadherin binding peptide for transiently opening the BBB tight junctions are expected to enhance the efficacy of GBM chemotherapy using the DOX-EDT-IONPs. In general, the developed approach enables the chemotherapeutic to overcome both BBB and multidrug resistance (MDR) glioma cells while providing site-specific magnetic targeting.

摘要

虽然多柔比星(DOX)是一种具有细胞毒性的有效抗癌药物,可用于多种不同的肿瘤,但由于其在穿过血脑屏障(BBB)方面的能力不足,其在治疗多形性胶质母细胞瘤(GBM)方面的效果受到限制。在这项研究中,开发了用三甲氧基硅丙基-乙二胺三乙酸(EDT)稳定的生物相容性磁性氧化铁纳米粒子(IONPs)作为 DOX 治疗 GBM 化疗的载体。负载 DOX 的 EDT-IONPs(DOX-EDT-IONPs)在 4 天内释放 DOX,并具有在酸性微环境中加速释放的能力。负载 DOX 的 EDT-IONPs(DOX-EDT-IONPs)在小鼠脑源性微血管内皮细胞、多药耐药蛋白 1 转染的 Madin-Darby 犬肾细胞(MDCK-MDR1)和人 U251 GBM 细胞中表现出高效摄取 DOX 的能力。DOX-EDT-IONPs 可使 U251 细胞摄取 DOX 的能力增加 2.8 倍,并显著抑制 U251 细胞增殖。此外,研究发现 DOX-EDT-IONPs 在治疗 48 小时内可有效诱导 GBM 细胞凋亡(超过 90%)。基因表达研究表明,在 U251 细胞中,与 DNA 修复和复制有关的关键酶 TOP II 和 Ku70,以及 miR-155 癌基因,同时肿瘤抑制因子 p53、MEG3 和 GAS5 上调,与 DOX-EDT-IONPs 处理后 caspase 3 的上调相一致。在体外 MDCK-MDR1-GBM 共培养模型中评估了 DOX-EDT-IONPs 和 DOX 治疗的 BBB 通透性和抗肿瘤活性。与单独使用 DOX 相比,DOX-EDT-IONP 显示出 DOX 通过 MDCK-MDR1 单层的通透性提高,但两组治疗中 U251 细胞的细胞毒性相似。使用结合钙粘蛋白的肽(ADTC5)瞬时打开紧密连接,并结合外部磁场,可显著提高 MDCK-MDR1-GBM 共培养模型中 DOX-EDT-IONP 的通透性和细胞毒性。因此,结合磁增强对流扩散和结合钙粘蛋白的肽来瞬时打开 BBB 紧密连接,有望提高使用 DOX-EDT-IONP 进行 GBM 化疗的疗效。总的来说,该方法使化疗药物能够克服血脑屏障和多药耐药(MDR)胶质母细胞瘤细胞,同时提供特异性的磁靶向。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/cb5c/7347880/6ef57ead898e/41598_2020_68017_Fig1_HTML.jpg

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