Becker Peres Luana, Becker Peres Laize, de Araújo Pedro Henrique Hermes, Sayer Claudia
Chemical Engineering Department, Federal University of Santa Catarina-UFSC, P.O. Box 476, 88040-900 Florianópolis, SC, Brazil.
Colloids Surf B Biointerfaces. 2016 Apr 1;140:317-323. doi: 10.1016/j.colsurfb.2015.12.033. Epub 2015 Dec 29.
Encapsulation of hydrophilic compounds for drug delivery systems with high loading efficiency is not easily feasible and remains a challenge, mainly due to the leaking of the drug to the outer aqueous phase during nanoparticle production. Usually, encapsulation of hydrophilic drugs is achieved by using double emulsion or inverse miniemulsion systems that often require the use of organic solvents, which may generate toxicological issues arising from solvent residues. Herein, we present the preparation of solid lipid nanoparticles loaded with a hydrophilic compound by a novel organic solvent free double emulsion/melt dispersion technique. The main objective of this study was to investigate the influence of important process and formulation variables, such as lipid composition, surfactant type, sonication parameters and lipid solidification conditions over physicochemical characteristics of SLN dispersion. Particle size and dispersity, as well as dispersion stability were used as responses. SLN dispersions with average size ranging from 277 to 550 nm were obtained, showing stability for over 60 days at 4 °C depending on the chosen emulsifying system. Entrapment efficiency of fluorescent dyes used as model markers was assessed by fluorescence microscopy and UV-vis spectrophotometry and results suggest that the obtained lipid based nanoparticles could be potentially applied as a delivery system of water soluble drugs.
对于药物递送系统而言,以高负载效率封装亲水性化合物并非易事,仍然是一项挑战,这主要是由于在纳米颗粒制备过程中药物会泄漏到外部水相中。通常,亲水性药物的封装是通过使用双乳液或反相微乳液系统来实现的,而这些系统通常需要使用有机溶剂,这可能会因溶剂残留而产生毒理学问题。在此,我们介绍了一种通过新型无有机溶剂双乳液/熔体分散技术制备负载亲水性化合物的固体脂质纳米颗粒的方法。本研究的主要目的是研究重要的工艺和配方变量,如脂质组成、表面活性剂类型、超声处理参数和脂质固化条件对固体脂质纳米颗粒分散体物理化学特性的影响。将粒径和分散度以及分散稳定性用作响应指标。获得了平均粒径在277至550 nm范围内的固体脂质纳米颗粒分散体,根据所选的乳化系统,在4°C下显示出超过60天的稳定性。通过荧光显微镜和紫外可见分光光度法评估了用作模型标记物的荧光染料的包封效率,结果表明所获得的基于脂质的纳米颗粒有可能用作水溶性药物的递送系统。