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首页> 外文期刊>Molecular pharmaceutics >Congruent Release of Drug and Polymer from Amorphous Solid Dispersions: Insights into the Role of Drug-Polymer Hydrogen Bonding, Surface Crystallization, and Glass Transition
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Congruent Release of Drug and Polymer from Amorphous Solid Dispersions: Insights into the Role of Drug-Polymer Hydrogen Bonding, Surface Crystallization, and Glass Transition

机译:来自无定形固体分散体的药物和聚合物的全体释放:洞察药物 - 聚合物氢键,表面结晶和玻璃过渡的作用

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摘要

Drug loading is an important parameter known to impact the release rate of a poorly soluble drug from an amorphous solid dispersion (ASD). Recent studies have shown that small increases in drug loading can dramatically reduce the drug release rate from ASDs prepared with poly(vinylpyrrolidone-co-vinyl acetate) (PVPVA). However, the link between drug physicochemical properties and the drug loading where the release is abruptly compromised is not well understood. This study probes the role of different factors on the relative dissolution rates of drug and polymer from PVPVA-based ASDs as a function of drug loading: (1) the impact of drug-polymer hydrogen bonding interactions on the initial dissolution rate of ASDs, investigated using two structural analogues, indomethacin (IND) and indomethacin methyl ester (INDester), (2) the influence of surface drug crystallization, observed for INDester ASDs, and (3) by changing temperature, the impact of the "wet" glass transition temperature (T-g). Scanning electron microscopy (SEM), with or without energy dispersive X-ray (EDX) analysis, Fourier transform infrared spectroscopy (FTIR), and powder X-ray diffraction (PXRD) were utilized to study the solid-state phase behavior and/or drug enrichment on the partially dissolved ASD tablet surfaces. Nanoparticle tracking analysis (NTA) was utilized to study the solution-state phase behavior. It was found that, contrary to expectations, ASDs with drug-polymer hydrogen bonding exhibited poorer initial release at moderate drug loadings (15-25%) as compared to the non-hydrogen bonding analogue ASDs. Surface crystallization led to the deterioration of dissolution performance. Lastly, T-g relative to experimental temperatures also appeared to play a role in the observed dissolution behavior as a function of drug loading. These findings shed light on potential mechanisms governing ASD dissolution performance and will aid in the development of optimized ASD formulations with enhanced dissolution performance.
机译:药物载荷是已知的重要参数,以影响来自无定形固体分散体(ASD)的易溶性药物的释放速率。最近的研究表明,药物负载的小幅增加可以显着降低用聚(乙烯基吡咯烷酮 - 乙烯基乙烯酯)(PVPVA)制备的ASDS的药物释放速率。然而,药物物理化学性质与释放突然损害的药物载荷之间的链接突然损害。本研究探讨了不同因素对来自PVPVA的ASD的药物和聚合物的相对溶出速率作为药物负载的功能:(1)药物 - 聚合物氢键相互作用对ASDS的初始溶出速率的影响,研究使用两种结构类似物,吲哚美辛(IND)和吲哚美辛甲酯(indester),(2)表面药物结晶的影响,观察到indester ASDS,(3)通过改变温度,“湿”玻璃化转变温度的影响(TG)。扫描电子显微镜(SEM),有或没有能量分散X射线(EDX)分析,利用傅里叶变换红外光谱(FTIR)和粉末X射线衍射(PXRD)研究固态相行为和/或部分溶解的ASD片剂表面上的药物富集。利用纳米粒子跟踪分析(NTA)来研究溶液状态相行为。结果表明,与预期药物 - 聚合物氢键相比,ASDs与非氢键相比,ASDs的预期与药物 - 聚合物氢键合出较较差的初始释放(15-25%)。表面结晶导致溶解性能的劣化。最后,相对于实验温度的T-G也似乎在观察到的溶解行为中发挥作用,作为药物载荷的函数。这些调查结果阐明了治疗ASD溶出性能的潜在机制,并有助于提高溶出性能的优化ASD配方。

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