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斜发沸石微颗粒作为富含儿茶素提取物的载体:微胶囊化及体外释放研究。

Clinoptilolite Microparticles as Carriers of Catechin-Rich Extracts: Microencapsulation and In Vitro Release Study.

机构信息

Chemistry Unit, Department of Pharmacology, Animal Physiology and Physiological Chemistry, Faculty of Veterinary Medicine, Students Campus, Trakia University, 6000 Stara Zagora, Bulgaria.

Mineralagro-Z Ltd., 1000 Sofia, Bulgaria.

出版信息

Molecules. 2021 Mar 16;26(6):1655. doi: 10.3390/molecules26061655.

Abstract

The main goal of the present study was to investigate the microencapsulation, in vitro release capacity and efficiency of catechin-rich extract by Clinosorbent-5 (CLS-5) microparticles by in-depth detailed analyses and mathematical modelling of the encapsulation and in vitro release kinetics behaviour of the polyphenol-mineral composite system. The bioflavanol encapsulation and release efficiency on/from the mineral matrix were assessed by sorption experiments and interpretative modelling of the experimental data. The surface and spectral characteristics of the natural bioactive substance and the inorganic microcarrier were determined by Fourier Transform Infrared Spectroscopy (FTIR) and Ultraviolet/Visible (UV/Vis) spectrophotometric analyses. The maximum extent of catechin microencapsulation in acidic medium was 32%. The in vitro release kinetics study in simulated enzyme-free gastric medium (pH = 1.2) approved 88% maximum release efficiency achieved after 24 h. The in vitro release profile displayed that the developed bioflavanol/clinoptilolite microcarrier system provided sustained catechin in vitro release behaviour without an initial burst effect. Thus, the results from the present study are essential for the design and development of innovative catechin-CLS-5 microcarrier systems for application in human and veterinary medicine.

摘要

本研究的主要目的是通过对多酚-矿物复合体系的包封和体外释放动力学行为进行深入详细的分析和数学建模,研究用 Clinosorbent-5(CLS-5)微球对富含儿茶素的提取物进行微囊化、体外释放能力和效率。通过吸附实验和对实验数据的解释性建模,评估生物类黄酮在矿物基质上/从矿物基质上的包封和释放效率。通过傅里叶变换红外光谱(FTIR)和紫外/可见(UV/Vis)分光光度分析测定天然生物活性物质和无机微载体的表面和光谱特性。在酸性介质中儿茶素的最大微囊化程度为 32%。在模拟无酶胃液介质(pH=1.2)中的体外释放动力学研究表明,24 小时后达到 88%的最大释放效率。体外释放曲线表明,所开发的生物类黄酮/斜发沸石微载体系统提供了持续的儿茶素体外释放行为,没有初始突释效应。因此,本研究的结果对于设计和开发用于人和兽医医学的创新儿茶素-CLS-5 微载体系统至关重要。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/af20/8002362/015e97defe88/molecules-26-01655-g001.jpg

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