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首页> 外文期刊>Pharmaceutics >Nanoemulsion Structural Design in Co-Encapsulation of Hybrid Multifunctional Agents: Influence of the Smart PLGA Polymers on the Nanosystem-Enhanced Delivery and Electro-Photodynamic Treatment
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Nanoemulsion Structural Design in Co-Encapsulation of Hybrid Multifunctional Agents: Influence of the Smart PLGA Polymers on the Nanosystem-Enhanced Delivery and Electro-Photodynamic Treatment

机译:杂交多功能剂共封装纳米乳剂结构设计:智能PLGA聚合物对纳米系统增强递送和电光动力处理的影响

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In the present study, we examined properties of poly(lactide- co -glycolide) (PLGA)-based nanocarriers (NCs) with various functional or “smart” properties, i.e., coated with PLGA, polyethylene glycolated PLGA (PEG-PLGA), or folic acid-functionalized PLGA (FA-PLGA). NCs were obtained by double emulsion (water-in-oil-in-water) evaporation process, which is one of the most suitable approaches in nanoemulsion structural design. Nanoemulsion surface engineering allowed us to co-encapsulate a hydrophobic porphyrin photosensitizing dye—verteporfin (VP) in combination with low-dose cisplatin (CisPt)—a hydrophilic cytostatic drug. The composition was tested as a multifunctional and synergistic hybrid agent for bioimaging and anticancer treatment assisted by electroporation on human ovarian cancer SKOV-3 and control hamster ovarian fibroblastoid CHO-K1 cell lines. The diameter of PLGA NCs with different coatings was on average 200 nm, as shown by dynamic light scattering, transmission electron microscopy, and atomic force microscopy. We analyzed the effect of the nanocarrier charge and the polymeric shield variation on the colloidal stability using microelectrophoretic and turbidimetric methods. The cellular internalization and anticancer activity following the electro-photodynamic treatment (EP-PDT) were assessed with confocal microscopy and flow cytometry. Our data show that functionalized PLGA NCs are biocompatible and enable efficient delivery of the hybrid cargo to cancer cells, followed by enhanced killing of cells when supported by EP-PDT.
机译:在本研究中,我们将具有各种功能或“智能”性质的聚(丙交酯酰基乙酰胺)(PLGA)的纳米载体(NCS)的性质检查,即涂有PLGA,聚乙二醇聚乙烯糖合PLGA(PEG-PLGA),或叶酸官能化PLGA(FA-PLGA)。通过双乳液(水包油水溶液)蒸发过程获得NCS,这是纳米乳液结构设计中最合适的方法之一。纳米乳液表面工程使我们共同包封疏水性卟啉光敏染料 - vereporfin(VP)与低剂量顺铂(CISPT)-A亲水性细胞抑制药物。将该组合物作为一种多功能和协同杂交剂的用于生物体和抗癌治疗,通过对人卵巢癌Skov-3的电穿孔辅助,并控制仓鼠卵巢成纤维细胞CHO-K1细胞系。具有不同涂层的PLGA NCs的直径平均为200nm,如动态光散射,透射电子显微镜和原子力显微镜所示。通过微电泳和浊度方法分析了纳米载波电荷和聚合物屏蔽变化对胶体稳定性的影响。通过共聚焦显微镜和流式细胞术评估电光动力处理(EP-PDT)后的细胞内化和抗癌活性。我们的数据显示,官能化PLGA NCS是生物相容性的,并能够在通过EP-PDT支持时,使杂种货物的杂种货物递送至癌细胞。

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