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基于聚乳酸-羟基乙酸共聚物的纳米球作为一种有效的巨噬细胞特异性药物递送系统。

PLGA Based Nanospheres as a Potent Macrophage-Specific Drug Delivery System.

作者信息

Boltnarova Barbora, Kubackova Jana, Skoda Josef, Stefela Alzbeta, Smekalova Monika, Svacinova Petra, Pavkova Ivona, Dittrich Milan, Scherman Daniel, Zbytovska Jarmila, Pavek Petr, Holas Ondrej

机构信息

Department of Pharmaceutical Technology, Faculty of Pharmacy in Hradec Kralove, Charles University, Akademika Heyrovskeho 1203, 500 05 Hradec Kralove, Czech Republic.

Department of Pharmacology and Toxicology, Faculty of Pharmacy in Hradec Kralove, Charles University, Akademika Heyrovskeho 1203, 500 05 Hradec Kralove, Czech Republic.

出版信息

Nanomaterials (Basel). 2021 Mar 16;11(3):749. doi: 10.3390/nano11030749.

Abstract

Macrophages possess an innate ability to scavenge heterogenous objects from the systemic circulation and to regulate inflammatory diseases in various organs via cytokine production. That makes them attractive targets for nanomedicine-based therapeutic approaches to inflammatory diseases. In the present study, we have prepared several different poly(lactic-co-glycolic acid) (PLGA) polymer nanospheres for macrophage-targeted drug delivery using both nanoprecipitation and emulsification solvent evaporation methods. Two experimental linear PLGA polymers with relatively low molar weight, one experimental branched PLGA with unique star-like molecular architecture, and a commercially available PLGA, were used for nanosphere formulation and compared to their macrophage uptake capacity. The nanosphere formulations labelled with loaded fluorescent dye Rhodamine B were further tested in mouse bone marrow-derived macrophages and in hepatocyte cell lines AML-12, HepG2. We found that nanospheres larger than 100 nm prepared using nanoprecipitation significantly enhanced distribution of fluorescent dye selectively into macrophages. No effects of nanospheres on cellular viability were observed. Additionally, no significant proinflammatory effect after macrophage exposure to nanospheres was detected as assessed by a determination of proinflammatory cytokines and mRNA. All experimental PLGA nanoformulations surpassed the nanospheres obtained with the commercially available polymer taken as a control in their capacity as macrophage-specific carriers.

摘要

巨噬细胞具有从体循环中清除异质物体并通过产生细胞因子来调节各器官炎症性疾病的先天能力。这使得它们成为基于纳米医学的炎症性疾病治疗方法的有吸引力的靶点。在本研究中,我们使用纳米沉淀法和乳化溶剂蒸发法制备了几种不同的聚乳酸-乙醇酸共聚物(PLGA)聚合物纳米球,用于巨噬细胞靶向给药。两种具有相对低分子量的实验性线性PLGA聚合物、一种具有独特星形分子结构的实验性支化PLGA以及一种市售PLGA,被用于纳米球制剂,并比较它们的巨噬细胞摄取能力。用负载的荧光染料罗丹明B标记的纳米球制剂在小鼠骨髓来源的巨噬细胞和肝细胞系AML-12、HepG2中进一步进行了测试。我们发现,使用纳米沉淀法制备的大于100 nm的纳米球显著增强了荧光染料在巨噬细胞中的选择性分布。未观察到纳米球对细胞活力的影响。此外,通过测定促炎细胞因子和mRNA评估,未检测到巨噬细胞暴露于纳米球后有明显的促炎作用。所有实验性PLGA纳米制剂作为巨噬细胞特异性载体的能力均超过了以市售聚合物作为对照获得的纳米球。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/862d/8002218/48e4f809e16a/nanomaterials-11-00749-g001.jpg

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