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Synthesis, characterization, and in vitro activity against Candida spp. of fluconazole encapsulated on cationic and conventional nanoparticles of poly(lactic-co-glycolic acid)

机译:对假丝酵母的合成,表征和体外活性。氟康唑包封在聚乳酸-乙醇酸共聚物的阳离子和常规纳米颗粒上

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摘要

In this study, nanoparticles (NPs) of poly(lactic-co-glycolic acid) (PLGA) loaded with fluconazole (FLZ) and FLZ-NPs coated with the cationic polymer polyethylenimine (PEI) (FLZ-NP-PEI) were synthetized in order to improve antimycotic activity against four strains of Candida spp. of clinical relevance. FLZ-NPs and FLZ-NP-PEI were synthesized by double emulsion solvent-diffusion (DES-D) and characterized. Minimum inhibitory concentration (MIC50) and minimum fungicide concentration (MFC) were determined in vitro by culturing Candida strains in the presence of these nanocompounds. FLZ-NPs were spherical in shape with hydrodynamic sizes of ~222 nm and surface charge of −11.6 mV. The surface charges of these NPs were successfully modified using PEI (FLZ-NP-PEI) with mean hydrodynamic sizes of 281 nm and surface charge of 23.5 mV. The efficiency of encapsulation (~53%) and a quick release of FLZ (≥90% after 3 h) were obtained. Cytotoxicity assay showed a good cell viability for FLZ-NPs (≥86%), and PEI-modified NPs presented a decrease in cell viability (~38%). FLZ-NPs showed an increasing antifungal activity of FLZ for sensitive (Candida parapsilosis ATCC22019 and Candida albicans ATCC10231, MIC50 =0.5 and 0.1 µg/mL, respectively) and resistant strains (Candida glabrata EMLM14 and Candida krusei ATCC6258, MIC50 =0.1 and 0.5 µg/mL, respectively). FLZ-NP-PEI showed fungicidal activity even against C. glabrata and C. krusei (MFC =4 and 8 µg/mL, respectively). MIC50 values showed best results for FLZ-NPs and FLZ-NP-PEI. Nevertheless, only FLZ-NP-PEI displayed fungicidal activity against the studied strains.
机译:在这项研究中,合成了负载有氟康唑(FLZ)的聚乳酸-乙醇酸共聚物(PLGA)的纳米颗粒(NPs)和涂覆有阳离子聚合物聚乙烯亚胺(PEI)(FLZ-NP-PEI)的FLZ-NPs。为了提高对四种假丝酵母菌的抗真菌活性。临床相关性。通过双乳液溶剂扩散法(DES-D)合成了FLZ-NP和FLZ-NP-PEI并进行了表征。通过在这些纳米化合物的存在下培养念珠菌菌株,在体外确定最小抑菌浓度(MIC50)和最小杀菌剂浓度(MFC)。 FLZ-NP为球形,流体动力学尺寸为〜222 nm,表面电荷为-11.6 mV。使用PEI(FLZ-NP-PEI)成功修饰了这些NP的表面电荷,其平均流体力学尺寸为281 nm,表面电荷为23.5 mV。获得了包封效率(〜53%)和FLZ的快速释放(3小时后≥90%)。细胞毒性试验显示,FLZ-NP具有良好的细胞活力(≥86%),而PEI修饰的NPs则具有较低的细胞活力(〜38%)。 FLZ-NPs显示出对敏感菌株(副寄生念珠菌ATCC22019和白色念珠菌ATCC10231,MIC50分别为0.5和0.1 µg / mL)和抗性菌株(光滑念珠菌EMLM14和krusei念珠菌ATCC6258,MIC50 = 0.1和0.5 µg)具有增强的FLZ抗真菌活性。 / mL)。 FLZ-NP-PEI甚至显示了对光滑念珠菌和克鲁斯梭菌的杀真菌活性(分别为MFC = 4和8 µg / mL)。 MIC50值显示出FLZ-NP和FLZ-NP-PEI的最佳结果。然而,只有FLZ-NP-PEI对所研究的菌株显示出杀菌活性。

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