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Solid dispersion of acetaminophen and poly(ethylene oxide) prepared by hot-melt mixing.

机译:通过热熔混合制备的乙酰氨基酚和聚(环氧乙烷)的固体分散体。

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摘要

In this study, a model drug, acetaminophen (APAP), was melt mixed with poly(ethylene oxide) (PEO) using a Brabender mixer. APAP was found to recrystallize upon cooling to room temperature for all the drug loadings investigated. Higher drug loading leads to faster recrystallization rate. However, the morphology of the recrystallized drug crystals is identical in samples with different drug loadings and does not change with the storage time. To adjust the drug's dissolution rate, nanoclay Cloisite 15A and 30B were added into the binary mixture. The presence of either of the nanoclay dramatically accelerates the drug's recrystallization rate and slows down the drug's releasing rate. The drop of the releasing rate is mainly due to the decrease of wettability, as supported by the contact angle data. Data analysis of the dissolution results suggests that the addition of nanoclays changes the drug's release mechanism from erosion dominant to diffusion dominant. This study suggests that nanoclays may be utilized to tailor the drug's releasing rate and to improve the dosage form's stability by dramatically shortening the lengthy recrystallization process.
机译:在该研究中,使用Brabender混合器将模型药物,乙酰氨基酚(APAP)与聚(环氧乙烷)(PEO)混合混合。发现APAP在冷却至室温时重结晶,以获得所有药物载体的所有药物载体。更高的药物载荷导致更快的重结晶速率。然而,重结晶药物晶体的形态在具有不同药物载荷的样品中相同,并且不会随储存时间而变化。为了调整药物的溶解速率,将纳米粘土克洛亚钛矿15a和30b加入二元混合物中。纳米粘土的存在显着地加速了药物的重结晶速率,并减慢药物的释放速率。释放速率的下降主要是由于润湿性的降低,如接触角数据所支持。溶出结果的数据分析表明,添加纳米阵列的添加改变了药物的释放机制,从侵蚀到扩散显性。该研究表明,纳米粘土可用于量身定制药物的释放速率并通过显着缩短冗长的重结晶方法来改善剂型的稳定性。

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