首页> 外文期刊>The journal of physical chemistry, B. Condensed matter, materials, surfaces, interfaces & biophysical >Effect of glutamate on the electrical properties of cationic solid lipid nanoparticles containing stearylamine and dioctadecyldimethyl ammonium bromide
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Effect of glutamate on the electrical properties of cationic solid lipid nanoparticles containing stearylamine and dioctadecyldimethyl ammonium bromide

机译:谷氨酸对含硬脂胺和二十八烷基二甲基溴化铵的阳离子固体脂质纳米粒电性能的影响

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Electrical properties, including electrophoretic mobility, zeta potential, total surface charge density, and surface charge density resulting from primary amino groups, of cationic solid lipid nanoparticles (CSLNs) were investigated in the present study. Cationic lipids including stearylamine (SA) and dioctadecyldimethyl ammonium bromide (DODAB) were covered on the external cores of CSLNs. The influences of glutamate concentration in the medium, composition of cationic lipids, and surfactant species were especially analyzed. The results indicated that an increase in the mole ratio of SA in the cationic lipid caused an increase in the average diameter of CSLNs. Also, the average diameter of Span 20-stabilized CSLNs was larger than that of Tween 80-stabilized CSLNs. The electrostatic traits of CSLNs were reduced as the mole ratio of SA increased, and the electricity of Span 20-stabilized CSLNs was weaker than that of Tween 80-stabilized CSLNs. An increase in the glutamate concentration in the medium led to a decrease in electrophoretic mobility, zeta potential, and total surface charge density of CSLNs. As the glutamate concentration increased, surface charge density resulting from primary amino groups increased, and that from quaternary amino groups decreased as a result of the adsorption of negatively charged glutamate on CSLN surfaces. Ohshima's soft particle theory was adopted to describe the electrical behavior of CSLNs, and the deviations of zeta potential predicted by the Smoluchowski, Happel, and Kuwabara models were normally greater than 10%.
机译:在本研究中,研究了阳离子固体脂质纳米颗粒(CSLN)的电学性质,包括电泳迁移率,ζ电位,总表面电荷密度和伯氨基产生的表面电荷密度。阳离子脂质包括硬脂胺(SA)和二十八烷基二甲基溴化铵(DODAB)被覆盖在CSLN的外部核上。重点分析了培养基中谷氨酸浓度,阳离子脂质组成和表面活性剂种类的影响。结果表明,阳离子脂质中SA的摩尔比增加导致CSLN的平均直径增加。此外,Span 20稳定的CSLN的平均直径大于Tween 80稳定的CSLN的平均直径。随着SA摩尔比的增加,CSLN的静电特性降低,Span 20稳定的CSLN的电性能比Tween 80稳定的CSLN的电弱。培养基中谷氨酸盐浓度的增加导致CSLNs的电泳迁移率,ζ电位和总表面电荷密度降低。随着谷氨酸盐浓度的增加,由于带负电荷的谷氨酸盐在CSLN表面上的吸附,伯氨基引起的表面电荷密度增加,而季胺引起的表面电荷密度降低。 Ohshima的软粒子理论被用来描述CSLNs的电学行为,Smoluchowski,Happel和Kuwabara模型预测的zeta电位偏差通常大于10%。

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