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Investigations of the effect of the lipid matrix on drug entrapment in vitro release and physical stability of olanzapine-loaded solid lipid nanoparticles

机译:脂质基质对载有奥氮平固体脂质纳米粒的药物截留体外释放和物理稳定性的影响

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摘要

The purpose of this research was to study the effect of the lipid matrix on the entrapment of olanzapine (OL). OL-loaded solid lipid nanoparticles (SLNs) were prepared using lipids like glyceryl monostearate (GMS), Precirol ATO 5 (PRE), glyceryl tristearate (GTS), and Witepsol E85 (WE 85)—and poloxamer 407 and hydrogenated soya phosphatidylcholine as stabilizers—using a hot melt emulsification high-pressure homogenization technique, and then characterized by particle size analysis, zeta potential, differential scanning calorimetry (DSC), and powder X-ray diffraction (pXRD). Homogenization at 10 000 psi for 3 cycles resulted in the formation of SLNs with a mean particle size of ∼190 nm for the 4 lipids investigated. The highest partition coefficient for OL between the melted lipid and pH 7.4 phosphate buffer (pH 7.4 PB) was obtained with GTS. The entrapment efficiency was in the following order: GTS SLNs>PRE SLNs>WE 85 SLNs>GMS SLNs. DSC and pXRD showed that much of the incorporated fraction of OL existed in the amorphous state after incorporation into SLNs. A sharp increase in the flocculation of the SLN dispersions was observed upon addition of 0.6 M aqueous sodium sulfate solution. Nanoparticle surface hydrophobicity was in the following order: GTS SLNs>PRE SLNs>WE 85 SLNs>GMS SLNs. A significant increase in size and zeta potential was observed for GTS SLN and WE 85 SLN dispersions stored at 40°C. Release of OL from the SLNs was sustained up to 48 hours in pH 7.4 PB and obeyed Higuchi’s release kinetics.
机译:这项研究的目的是研究脂质基质对奥氮平(OL)包封的影响。使用单硬脂酸甘油酯(GMS),Precirol ATO 5(PRE),三硬脂酸甘油酯(GTS)和Witepsol E85(WE 85)等脂质和泊洛沙姆407和氢化大豆磷脂酰胆碱作为稳定剂,制备了OL负载的固体脂质纳米颗粒(SLN) -使用热熔乳化高压均质技术,然后通过粒度分析,ζ电势,差示扫描量热法(DSC)和粉末X射线衍射(pXRD)进行表征。在10000 psi下进行3个周期的均质化处理后,形成了4种脂质的SLN,平均粒径约为190 nm。用GTS获得了在熔融脂质和pH 7.4磷酸盐缓冲液(pH 7.4 PB)之间的OL最高分配系数。包封效率按以下顺序排列:GTS SLN> PRE SLN> WE 85 SLN> GMS SLN。 DSC和pXRD显示,在掺入SLN中之后,OL的大部分掺入部分以非晶态存在。加入0.6M硫酸钠水溶液后,观察到SLN分散体的絮凝作用急剧增加。纳米颗粒表面疏水性按以下顺序:GTS SLN> PRE SLN> WE 85 SLN> GMS SLN。对于储存在40°C的GTS SLN和WE 85 SLN分散体,观察到其大小和Zeta电位显着增加。在pH 7.4 PB下,SLN中的OL释放持续长达48小时,并遵守了Higuchi的释放动力学。

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