Aranha Mariana de C, Alencar Luciana M R, Souto Eliana B, Kamei Daniel T, Lopes André M
Department of Biotechnology, Lorena School of Engineering, University of São Paulo (EEL/USP), Lorena 12602-810, Brazil.
Laboratory of Biophysics and Nanosystems, Physics Department, Federal University of Maranhão, São Luís 65080-805, Brazil.
Pharmaceuticals (Basel). 2024 Sep 6;17(9):1177. doi: 10.3390/ph17091177.
In this work, we developed a smart drug delivery system composed of poly (ethylene glycol)--poly (ε-caprolactone) (PEG-PCL)-based polymersomes (Ps) loaded with doxorubicin (DOX) and vemurafenib (VEM). To enhance targeted delivery to malignant melanoma cells, these drug-loaded nanovesicles were conjugated to the oxalate transferrin variant (oxalate Tf) and incorporated into three-dimensional chitosan hydrogels. This innovative approach represents the first application of oxalate Tf for the precision delivery of drug-loaded polymersomes within a semi-solid dosage form based on chitosan hydrogels. These resulting semi-solids exhibited a sustained release profile for both encapsulated drugs. To evaluate their potency, we compared the cytotoxicity of native Tf-Ps with oxalate Tf-Ps. Notably, the oxalate Tf-Ps demonstrated a 3-fold decrease in cell viability against melanoma cells compared to normal cells and were 1.6-fold more potent than native Tf-Ps, indicating the greater potency of this nanoformulation. These findings suggest that dual-drug delivery using an oxalate-Tf-targeting ligand significantly enhances the drug delivery efficiency of Tf-conjugated nanovesicles and offers a promising strategy to overcome the challenge of multidrug resistance in melanoma therapy.
在这项工作中,我们开发了一种智能药物递送系统,该系统由负载阿霉素(DOX)和维莫非尼(VEM)的聚(乙二醇)-聚(ε-己内酯)(PEG-PCL)基聚合物囊泡(Ps)组成。为了增强对恶性黑色素瘤细胞的靶向递送,这些载药纳米囊泡与草酸盐转铁蛋白变体(草酸盐Tf)偶联,并掺入三维壳聚糖水凝胶中。这种创新方法代表了草酸盐Tf在基于壳聚糖水凝胶的半固体剂型中精确递送载药聚合物囊泡的首次应用。这些所得的半固体对两种包封药物均表现出缓释特性。为了评估它们的效力,我们比较了天然Tf-Ps和草酸盐Tf-Ps的细胞毒性。值得注意的是,与正常细胞相比,草酸盐Tf-Ps对黑色素瘤细胞的细胞活力降低了3倍,并且比天然Tf-Ps的效力高1.6倍,表明这种纳米制剂具有更高的效力。这些发现表明,使用草酸盐-Tf靶向配体的双药递送可显著提高Tf偶联纳米囊泡的药物递送效率,并为克服黑色素瘤治疗中多药耐药性的挑战提供了一种有前景的策略。