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评估一种由聚合物纳米颗粒和多孔微球组装而成的蛋白质联合给药系统;表征及蛋白质完整性研究。

Evaluation of a combined drug-delivery system for proteins assembled with polymeric nanoparticles and porous microspheres; characterization and protein integrity studies.

作者信息

Alcalá-Alcalá Sergio, Benítez-Cardoza Claudia G, Lima-Muñoz Enrique J, Piñón-Segundo Elizabeth, Quintanar-Guerrero David

机构信息

Laboratorio de Investigación y Posgrado en Tecnología Farmacéutica, Facultad de Estudios Superiores Cuautitlán, Universidad Nacional Autónoma de México, Avenida 1° de Mayo s/n, Campo 1, Cuautitlán Izcalli, Estado de México CP 54743, Mexico.

Laboratorio de Investigación Bioquímica, Sección de Estudios de Posgrado e Investigación, ENMyH-Instituto Politécnico Nacional, Guillermo Massieu Helguera No. 239, La Escalera Ticomán, 07320 D.F., Mexico.

出版信息

Int J Pharm. 2015 Jul 15;489(1-2):139-47. doi: 10.1016/j.ijpharm.2015.04.074. Epub 2015 Apr 29.

Abstract

This work presents an evaluation of the adsorption/infiltration process in relation to the loading of a model protein, α-amylase, into an assembled biodegradable polymeric system, free of organic solvents and made up of poly(D,L-lactide-co-glycolide) acid (PLGA). Systems were assembled in a friendly aqueous medium by adsorbing and infiltrating polymeric nanoparticles into porous microspheres. These assembled systems are able to load therapeutic amounts of the drug through adsorption of the protein onto the large surface area characteristic of polymeric nanoparticles. The subsequent infiltration of nanoparticles adsorbed with the protein into porous microspheres enabled the controlled release of the protein as a function of the amount of infiltrated nanoparticles, since the surface area available on the porous structure is saturated at different levels, thus modifying the protein release rate. Findings were confirmed by both the BET technique (N2 isotherms) and in vitro release studies. During the adsorption process, the pH of the medium plays an important role by creating an environment that favors adsorption between the surfaces of the micro- and nano-structures and the protein. Finally, assays of α-amylase activity using 2-chloro-4-nitrophenyl-α-D-maltotrioside (CNP-G3) as the substrate and the circular dichroism technique confirmed that when this new approach was used no conformational changes were observed in the protein after release.

摘要

这项工作展示了关于将一种模型蛋白α-淀粉酶负载到一个无有机溶剂且由聚(D,L-丙交酯-共-乙交酯)酸(PLGA)制成的组装可生物降解聚合物体系中的吸附/渗透过程的评估。通过将聚合物纳米颗粒吸附并渗透到多孔微球中,在友好的水性介质中组装体系。这些组装体系能够通过将蛋白质吸附到聚合物纳米颗粒特有的大表面积上来负载治疗剂量的药物。随后,吸附有蛋白质的纳米颗粒渗透到多孔微球中,使得蛋白质能够根据渗透纳米颗粒的量进行控释,因为多孔结构上可用的表面积在不同水平上达到饱和,从而改变蛋白质的释放速率。通过BET技术(N2等温线)和体外释放研究证实了这些发现。在吸附过程中,介质的pH通过创造有利于微结构和纳米结构表面与蛋白质之间吸附的环境而发挥重要作用。最后,使用2-氯-4-硝基苯基-α-D-麦芽三糖苷(CNP-G3)作为底物的α-淀粉酶活性测定以及圆二色性技术证实,当采用这种新方法时,蛋白质在释放后未观察到构象变化。

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