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Development of Novel EE/Alginate Polyelectrolyte Complex Nanoparticles for Lysozyme Delivery: Physicochemical Properties and In Vitro Safety

机译:用于溶菌酶递送的新型EE /藻酸盐聚电解质复合物纳米颗粒的开发:理化性质和体外安全性

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摘要

The number of biologic drugs has increased in the pharmaceutical industry due to their high therapeutic efficacy and selectivity. As such, safe and biocompatible delivery systems to improve their stability and efficacy are needed. Here, we developed novel cationic polymethacrylate-alginate (EE-alginate) pNPs for the biologic drug model lysozyme (Lys). The impact of variables such as total charge and charge ratios over nanoparticle physicochemical properties as well as their influence over in vitro safety (viability/proliferation and cell morphology) on HeLa cells was investigated. Our results showed that electrostatic interactions between the EE-alginate and lysozyme led to the formation of EE/alginate Lys pNPs with reproducible size, high stability due to their controllable zeta potential, a high association efficiency, and an in vitro sustained Lys release. Selected formulations remained stable for up to one month and Fourier transform-Infrared (FT-IR) showed that the functional groups of different polymers remain identifiable in combined systems, suggesting that Lys secondary structure is retained after pNP synthesis. EE-alginate Lys pNPs at low concentrations are biocompatible, while at high concentrations, they show cytotoxic for HeLa cells, and this effect was found to be dose-dependent. This study highlights the potential of the EE-alginate, a novel polyelectrolyte complex nanoparticle, as an effective and viable nanocarrier for future drug delivery applications.
机译:由于生物药物的高治疗功效和选择性,其在药物工业中的数量已经增加。因此,需要安全且生物相容的递送系统以改善其稳定性和功效。在这里,我们为生物药物模型溶菌酶(Lys)开发了新型阳离子聚甲基丙烯酸-海藻酸酯(EE-海藻酸酯)pNPs。研究了诸如总电荷和电荷比率对纳米粒子理化性质的变量的影响,以及它们对HeLa细胞的体外安全性(生存力/增殖和细胞形态)的影响。我们的结果表明,EE-藻酸盐和溶菌酶之间的静电相互作用导致形成EE /藻酸盐Lys pNP,其大小可重现,由于其可控制的Zeta电位而具有较高的稳定性,具有较高的缔合效率,并且在体外持续释放Lys。选定的配方可以稳定长达一个月,傅立叶红外光谱(FT-IR)显示,在组合系统中,不同聚合物的官能团仍然可以识别,这表明pNP合成后,Lys二级结构得以保留。低浓度的EE-藻酸盐Lys pNP具有生物相容性,而高浓度时,它们对HeLa细胞显示出细胞毒性,并且发现这种作用是剂量依赖性的。这项研究突出了一种新型聚电解质复合物纳米颗粒EE海藻酸盐作为一种有效且可行的纳米载体的潜力,可用于未来的药物输送应用。

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