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首页> 外文期刊>Journal of pharmaceutical investigation >Fabrication of poly(d,l-lactide-co-glycolide) nanoparticles using a simple fluidic device with a tapered glass capillary and the effect of thermodynamic parameters
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Fabrication of poly(d,l-lactide-co-glycolide) nanoparticles using a simple fluidic device with a tapered glass capillary and the effect of thermodynamic parameters

机译:使用带有锥形玻璃毛细管的简单流体装置制备聚(d,l-丙交酯-共-乙交酯)纳米粒子和热力学参数的影响

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摘要

Poly(d,l-lactide-co-glycolide) (PLGA) nanoparticles were prepared by nanoprecipitation method using a simple fluidic device with pristine and tapered glass capillaries. An organic PLGA solution and an aqueous poly(vinyl alcohol) solution were introduced into the fluidic device as the discontinuous and continuous phases, respectively. Five kinds of water-miscible solvents including acetone, acetonitrile, dimethyl formamide, dimethyl sulfoxide, and tetrahydrofuran were chosen as solvents for PLGA. This study investigated the effect of thermodynamic parameters such as diffusion coefficients (Dsw, Dws), exchange ratio (R = Dsw/Dws), and solvent–polymer interaction parameter (χ) on the size variation of PLGA nanoparticles. It was found that the size of PLGA nanoparticles was inversely proportional to the exchange ratio and solvent–polymer interaction parameter. This variation in size might be attributed to the production of smaller local supersaturation region in the case of lower exchange ratio and solvent–polymer interaction parameter. In addition, the size of PLGA nanoparticles could be tuned by changing the polymer concentration and flow rates in the fluidic device. This thermodynamic approach provides a rational basis for the selection of solvent to control the nanoparticle size.
机译:聚(d,l-丙交酯-共-乙交酯)(PLGA)纳米粒子是使用具有原始和锥形玻璃毛细管的简单流体装置通过纳米沉淀法制备的。将有机PLGA溶液和聚乙烯醇水溶液分别作为不连续相和连续相引入到流体装置中。 PLGA的溶剂选择了五种与水混溶的溶剂,包括丙酮,乙腈,二甲基甲酰胺,二甲基亚砜和四氢呋喃。这项研究调查了热力学参数(如扩散系数(Dsw,Dws),交换比(R = Dsw / Dws)和溶剂-聚合物相互作用参数(χ))对PLGA纳米颗粒尺寸变化的影响。发现PLGA纳米颗粒的尺寸与交换比和溶剂-聚合物相互作用参数成反比。在较低的交换比和溶剂-聚合物相互作用参数的情况下,尺寸的这种变化可能归因于较小的局部过饱和区域的产生。另外,可以通过改变流体装置中的聚合物浓度和流速来调节PLGA纳米颗粒的尺寸。这种热力学方法为选择溶剂以控制纳米颗粒尺寸提供了合理的基础。

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