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A Computational Model for Drug Release from PLGA Implant

机译:PLGA植入物释放药物的计算模型

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摘要

Due to the relative ease of producing nanofibers with a core–shell structure, emulsion electrospinning has been investigated intensively in making nanofibrous drug delivery systems for controlled and sustained release. Predictions of drug release rates from the poly (d,l-lactic-co-glycolic acid) (PLGA) produced via emulsion electrospinning can be a very difficult task due to the complexity of the system. A computational finite element methodology was used to calculate the diffusion mass transport of Rhodamine B (fluorescent drug model). Degradation effects and hydrophobicity (partitioning phenomenon) at the fiber/surrounding interface were included in the models. The results are validated by experiments where electrospun PLGA nanofiber mats with different contents were used. A new approach to three-dimensional (3D) modeling of nanofibers is presented in this work. The authors have introduced two original models for diffusive drug release from nanofibers to the 3D surrounding medium discretized by continuum 3D finite elements: (1) A model with simple radial one-dimensional (1D) finite elements, and (2) a model consisting of composite smeared finite elements (CSFEs). Numerical solutions, compared to experiments, demonstrate that both computational models provide accurate predictions of the diffusion process and can therefore serve as efficient tools for describing transport inside a polymer fiber network and drug release to the surrounding porous medium.
机译:由于生产具有核-壳结构的纳米纤维相对容易,因此对乳液静电纺丝进行了深入研究,以制备可控和持续释放的纳米纤维药物递送系统。由于系统的复杂性,通过乳液静电纺丝生产的聚(d,l-乳酸-乙醇酸共聚物)(PLGA)释放药物的速率可能非常困难。使用计算有限元方法来计算罗丹明B的扩散质量传输(荧光药物模型)。模型中包括了纤维/周围界面的降解作用和疏水性(分配现象)。通过使用不同含量的静电纺PLGA纳米纤维毡的实验验证了结果。这项工作提出了一种新的方法来对纳米纤维进行三维(3D)建模。作者介绍了两个从纳米纤维向连续3D有限元离散化的3D周围介质中扩散药物释放的原始模型:(1)具有简单径向一维(1D)有限元的模型,以及(2)由以下组成的模型:复合涂抹有限元(CSFE)。与实验相比,数值解证明了这两种计算模型都可以提供对扩散过程的准确预测,因此可以用作描述聚合物纤维网络内部传输和药物向周围多孔介质释放的有效工具。

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