Kietzmann Desiree, Béduneau Arnaud, Pellequer Yann, Lamprecht Alf
Laboratory of Pharmaceutical Engineering (EA3924), University of Franche-Comté, Besançon, France.
Int J Pharm. 2009 Jun 22;375(1-2):61-6. doi: 10.1016/j.ijpharm.2009.04.006. Epub 2009 Apr 11.
Commonly, the microencapsulation of a lipophilic drug in pH-sensitive polymeric matrix via an ordinary oil/oil emulsification allows for entrapping limited drug amounts due to its loss into the external phase. Here, we propose a microencapsulation method on the basis of an oil/water emulsification method using n-butanol. Eudragit S100 microspheres were prepared by an oil/water emulsification solvent extraction method trapping ibuprofen as lipophilic model drug. Morphological analyses of the obtained particles showed a spherical shape and a sponge-like internal structure. In order to increase the entrapment efficacy several preparation parameters were optimized, such as theoretical drug load and surfactant concentration in the external phase. The particle size varied slightly around 170 microm, barely influenced by the modified process parameters. Drug leakage at pHs below the polymer dissolution pH was highest with microspheres prepared at low theoretical drug loading and low surfactant concentrations. In vitro drug release was found to be strongly pH-dependent; ibuprofen was retained in microspheres at pH 2.0 (<20% release within 4 h) whereas a higher leakage was observed at pH 5.5 and a nearly immediate drug release was obtained at pH 7.4. The use of n-butanol was found to be a new promising alternative for the preparation of pH-sensitive microspheres by an oil/water emulsification.
通常情况下,通过普通油/油乳化法将亲脂性药物微囊化于pH敏感聚合物基质中时,由于药物损失到外相中,导致包封的药物量有限。在此,我们提出一种基于使用正丁醇的油/水乳化法的微囊化方法。通过油/水乳化溶剂萃取法制备了以布洛芬为亲脂性模型药物的Eudragit S100微球。对所得颗粒的形态分析表明其呈球形且具有海绵状内部结构。为了提高包封效率,对几个制备参数进行了优化,如理论载药量和外相中表面活性剂的浓度。粒径在170微米左右略有变化,几乎不受改性工艺参数的影响。在低理论载药量和低表面活性剂浓度下制备的微球,在聚合物溶解pH值以下的pH值条件下药物泄漏最高。发现体外药物释放强烈依赖于pH值;布洛芬在pH 2.0时保留在微球中(4小时内释放<20%),而在pH 5.5时观察到较高的泄漏,在pH 7.4时几乎立即释放药物。发现使用正丁醇是通过油/水乳化制备pH敏感微球的一种新的有前景的替代方法。