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A Simple Evaporation Method for Large-Scale Production of Liquid Crystalline Lipid Nanoparticles with Various Internal Structures

机译:一种大规模生产具有各种内部结构的液晶脂质纳米粒子的简单蒸发方法

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摘要

We present a simple and industrially accessible method of producing liquid crystalline lipid nanoparticles with various internal structures based on phytantriol, Pluronic F127, and vitamin E acetate. Bilayer vesicles were produced when an ethanolic solution dissolving the lipid components was mixed with deionized water. After the evaporation of ethanol from the aqueous mixture, vesicles were transformed into lipid-filled liquid crystalline nanoparticles with well-defined internal structures such as hexagonal lattices (mostly inverted cubic Pn3m), lined or coiled pattern (inverted hexagonal H-2), and disordered structure (inverse microemulsion, L-2), depending on the compositions. Further studies suggested that their internal structures were also affected by temperature. The internal structures were characterized from cryo-TEM and small-angle X-ray scattering results. Microcalorimetry studies were performed to investigate the degree of molecular ordering/crystallinity of lipid components within the nanostructures. From the comparative studies, we demonstrated the present method could produce the lipid nanoparticles with similar characteristics to those made from a conventional method. More importantly, the production only requires simple tools for mixing and ethanol evaporation and it is possible to produce 10 kg or so per batch of aqueous lipid nanopartides dispersions, enabling the large-scale production of the liquid crystalline nanopartides for various biomedical applications.
机译:我们提出了一种简单且工业上可获取的方法,该方法基于植物三醇,Pluronic F127和维生素E乙酸酯生产具有各种内部结构的液晶脂质纳米颗粒。当将溶解脂质成分的乙醇溶液与去离子水混合时,产生双层囊泡。从含水混合物中蒸发出乙醇后,将囊泡转化为脂质填充的液晶纳米粒子,该纳米粒子具有明确的内部结构,例如六边形格子(大多为倒立的立方Pn3m),线性或螺旋状图案(倒置的六边形H-2)和无序结构(反相微乳液,L-2),取决于组成。进一步的研究表明它们的内部结构也受温度影响。内部结构通过冷冻TEM和小角度X射线散射结果表征。进行了微量量热法研究以研究纳米结构内脂质成分的分子有序度/结晶度。从比较研究中,我们证明了本方法可以生产具有与常规方法相似的特性的脂质纳米颗粒。更重要的是,该生产仅需要用于混合和乙醇蒸发的简单工具,就可以每批生产10千克左右的脂质纳米颗粒水性分散液,从而可以大规模生产用于各种生物医学应用的液晶纳米颗粒。

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