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酮洛芬超临界浸渍聚乳酸在生物医学中的应用:释放动力学分析与建模

Supercritical Impregnation of Ketoprofen into Polylactic Acid for Biomedical Application: Analysis and Modeling of the Release Kinetic.

作者信息

Verano Naranjo Lidia, Cejudo Bastante Cristina, Casas Cardoso Lourdes, Mantell Serrano Casimiro, Martínez de la Ossa Fernández Enrique José

机构信息

Chemical Engineering and Food Technology Department, Faculty of Science, Wine and Agrifood Research Institute (IVAGRO), University of Cadiz, 11519 Puerto Real, Spain.

出版信息

Polymers (Basel). 2021 Jun 17;13(12):1982. doi: 10.3390/polym13121982.

Abstract

Ketoprofen (KET) is an anti-inflammatory drug often used in medicine due to its analgesic and antipyretic effects. If it is administered in a controlled form by means of different dosing devices, it acts throughout the patient's recovery period improving its efficacy. This study intends to support the use of supercritical solvent impregnation (SSI) as an efficient technique to develop polylactic acid (PLA) functionalized with ketoprofen, for use as controlled drug release devices. For this purpose, firstly, the influence of different SSI variables on the desirable swelling of the polymer structure, while avoiding their foaming, were evaluated. Then, the resulting ketoprofen loading was evaluated under different pressure/temperature conditions. It was generally found that as pressure and temperature are higher, the drug impregnation loads also increase. The maximum impregnation loads (at about 9% KET/PLA) were obtained at 200 bar and 75 °C. In vitro drug release tests of the impregnated compound were also carried out, and it was found that drug release profiles were also dependent on the specific pressure and temperature conditions used for the impregnation of each polymer filament.

摘要

酮洛芬(KET)是一种抗炎药物,因其具有止痛和解热作用,常用于医学领域。如果通过不同的给药装置以可控形式给药,它在患者的整个康复期都能发挥作用,提高疗效。本研究旨在支持使用超临界溶剂浸渍(SSI)作为一种有效技术,来开发用酮洛芬功能化的聚乳酸(PLA),用作控释药物装置。为此,首先评估了不同的SSI变量对聚合物结构理想溶胀的影响,同时避免其发泡。然后,在不同的压力/温度条件下评估所得的酮洛芬负载量。一般发现,压力和温度越高,药物浸渍量也会增加。在200巴和75℃下获得了最大浸渍量(约9% KET/PLA)。还对浸渍化合物进行了体外药物释放测试,发现药物释放曲线也取决于用于浸渍每根聚合物细丝的特定压力和温度条件。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5bad/8235655/dfdd9aff0842/polymers-13-01982-g001.jpg

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