喷雾干燥聚乳酸(PLGA)微球爆发释放动力学的新见解

IF 4.5 2区 医学 Q2 MEDICINE, RESEARCH & EXPERIMENTAL
Molecular Pharmaceutics Pub Date : 2024-12-02 Epub Date: 2024-10-25 DOI:10.1021/acs.molpharmaceut.4c00686
Kyprianos Michaelides, Mohamad Anas Al Tahan, Yundong Zhou, Gustavo F Trindade, David J H Cant, Yiwen Pei, Pawan Dulal, Ali Al-Khattawi
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引用次数: 0

摘要

喷雾干燥因其快速、一步到位和成本效益高的特点,成为活性药物成分 (API) 的主要生产方法之一。它还能生成微球,对包括生物大分子和疫苗在内的原料药进行控释。然而,喷雾干燥制剂,尤其是基于聚乳酸-聚乙二醇酸(PLGA)的控释注射剂所面临的主要挑战之一是猝灭释放,即在给药后的短时间内有相当一部分原料药过早释放,从而对最终产品的性能和质量产生不利影响。本研究利用牛血清白蛋白(BSA)蛋白质作为原料药模型,找出可能影响长效注射剂微球制剂动力学和性能的猝灭释放源。研究人员对不同配方(即不同的 BSA/PLGA 比率)的喷雾干燥微球的形态、粒度、表面积、热性能、含水量以及化学成分及其分布进行了表征,以研究喷雾干燥对猝灭释放现象的影响。结果表明,观察到的相对较高的初始释放率(85%)主要归因于靠近颗粒表面的蛋白质分布。形态分析表明,微球在迸发释放阶段保持了球形结构。X 射线光电子能谱、硬 X 射线光电子能谱和氩簇溅射辅助飞行时间二次离子质谱分析表明,颗粒表面的 PLGA 富含埋藏的 BSA 蛋白质。三种不同配方的颗粒大小和表面积在统计学上存在显著差异,这可能是造成最初释放差异的原因,但似乎并没有改变整体猝灭释放曲线。考虑到所建议的迸发释放源,双流体喷雾干燥法的特点是通过单一液体进料提供预先制备好的乳液,这种方法产生的基质型微球表面有一层 PLGA,表面分析证明了这一点。事实证明,PLGA 表层容易降解和形成孔隙,使 BSA 更快地从微球中扩散出来,从而导致猝灭释放。提高聚合物浓度似乎并不能阻止这一过程。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
New Insights on the Burst Release Kinetics of Spray-Dried PLGA Microspheres.

Spray drying is one of the leading manufacturing methods for active pharmaceutical ingredients (APIs) owing to its rapid, single-step, and cost-effective nature. It also has the capacity to generate microspheres capable of controlled release of APIs including biomolecules and vaccines. However, one of the key challenges of spray-dried formulations especially with poly(lactic-co-glycolic acid) (PLGA)-based controlled-release injectables is burst release, where a significant fraction of the API is released prematurely within a short period of time following administration, leading to detrimental impact on the performance and quality of end products. This study uses a model API, bovine serum albumin (BSA) protein, to identify the sources of burst release that may affect the kinetics and performance of long-acting injectable microsphere formulations. Spray-dried microspheres with various formulations (i.e., variable BSA/PLGA ratios) were characterized in terms of their morphology, particle size, surface area, thermal properties, moisture content, as well as chemical compositions and their distributions to investigate the impact of spray drying on the burst release phenomenon. The results suggest that a relatively high initial release (85%) observed is mainly attributed to the protein distribution close to the particle surface. Morphology analysis provided evidence that the microspheres retained their spherical structure during the burst release phase. X-ray photoelectron spectroscopy, hard X-ray photoelectron spectroscopy, and argon cluster sputtering-assisted time-of-flight secondary ion mass spectrometry analysis suggest an enrichment of PLGA on particle surfaces with buried BSA protein. The statistically significant difference in particle size and surface area between three different formulations may be responsible for an initial variation in release but did not seem to alter the overall burst release profile. Considering the suggested source of burst release, the two-fluid spray-drying method, characterized by a single liquid feed delivering a preprepared emulsion, generated matrix-type microspheres with a surface layer of PLGA, as evidenced by surface analysis. The PLGA surface layer proved to be prone to degradation and pore formation, allowing for faster diffusion of BSA out of the microspheres, resulting in a burst release. Increasing the polymer concentration did not seem to halt this process.

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来源期刊
Molecular Pharmaceutics
Molecular Pharmaceutics 医学-药学
CiteScore
8.00
自引率
6.10%
发文量
391
审稿时长
2 months
期刊介绍: Molecular Pharmaceutics publishes the results of original research that contributes significantly to the molecular mechanistic understanding of drug delivery and drug delivery systems. The journal encourages contributions describing research at the interface of drug discovery and drug development. Scientific areas within the scope of the journal include physical and pharmaceutical chemistry, biochemistry and biophysics, molecular and cellular biology, and polymer and materials science as they relate to drug and drug delivery system efficacy. Mechanistic Drug Delivery and Drug Targeting research on modulating activity and efficacy of a drug or drug product is within the scope of Molecular Pharmaceutics. Theoretical and experimental peer-reviewed research articles, communications, reviews, and perspectives are welcomed.
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