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Development of PEG-PLA/PLGA microparticles for pulmonary drug delivery prepared by a novel emulsification technique assisted with amphiphilic block copolymers

机译:通过新型乳化技术制备的肺部药物递送的PEG-PLA / PLGA微粒的研制辅助助液嵌段共聚物制备

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We developed a novel "spray dry-based" method for preparing surface-modified particle via "block copolymer-assisted" emulsification/evaporation for pulmonary drug delivery. The method included three steps: (1) o/w emulsion containing both hydrophobic polymers and amphiphilic block copolymers was obtained by emulsification of water and a polymer-containing organic solvent, (2) the o/w emulsion was misted with a nebulizer, and (3) the emulsion mists were dried by a heater. In this way, the hydrophobic polymers and the hydrophobic part of the amphiphilic block copolymers gradually tangled during the evaporation of organic solvents from the o/w emulsion. Consequently, the hydrophilic polymer chain was introduced on the particle surface. The particle surface can be easily modified although there are no reactive groups in the hydrophobic polymer molecules. We successfully obtained dry PEG-PLA/PLGA microparticles by controlling the weight ratio of the block copolymer and the hydrophobic polymer. The introduction of PEG to the particle surface involves an increase in the Zeta potential of the particles. Interestingly, the "dimpled" microparticles having a diameter of approximately 2. μm were obtained. The "dimpled" microparticles can serve as drug carriers for pulmonary drug delivery, because the particles have a large surface area. We expect that this novel surface-modification technique will enable efficient fabrication of particles in drug delivery systems.
机译:我们开发了一种新颖的“喷雾干燥”方法,用于通过“嵌段共聚物辅助”乳化/蒸发来制备表面改性颗粒以进行肺药递送。该方法包括三个步骤:(1)通过乳化水和含聚合物的有机溶剂而获得含有疏水性聚合物和两亲嵌段共聚物的O / W乳液,(2)用雾化器雾化物质, (3)用加热器干燥乳液雾。以这种方式,疏水性聚合物和两亲嵌段共聚物的疏水部分在从O / W乳液的有机溶剂蒸发过程中逐渐缠结。因此,在颗粒表面上引入亲水性聚合物链。颗粒表面可以容易地修饰,尽管疏水性聚合物分子中没有反应性基团。通过控制嵌段共聚物和疏水聚合物的重量比,我们成功获得了干PEG-PLA / PLGA微粒。 PEG对颗粒表面的引入涉及颗粒的ζ电位增加。有趣的是,获得直径约为2.μm的“凹陷”微粒。 “凹陷”微粒可以用作肺药递送的药物载体,因为颗粒具有大的表面积。我们预期,这种新的表面改性技术将能够有效地制造药物递送系统中的颗粒。

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