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硝苯地平-PVP 无定形固体分散体的强制固态氧化研究。

Forced Solid-State Oxidation Studies of Nifedipine-PVP Amorphous Solid Dispersion.

机构信息

Research Center Pharmaceutical Engineering (RCPE) GmbH, Inffeldgasse 13, 8010 Graz, Austria.

Department of Pharmaceutical Technology, Faculty of Pharmacy, University of Ljubljana, Aškerčeva cesta 7, 1000 Ljubljana, Slovenia.

出版信息

Mol Pharm. 2022 Feb 7;19(2):568-583. doi: 10.1021/acs.molpharmaceut.1c00678. Epub 2022 Jan 21.

Abstract

In the present study, the oxidative degradation behavior of nifedipine (NIF) in amorphous solid dispersions (ASDs) prepared with poly(vinyl pyrrolidone) (PVP) with a short (K30) and a long (K90) chain length was investigated. The ASDs were prepared via dry ball-milling and analyzed using Fourier transform infrared (IR) spectroscopy, X-ray scattering, and differential scanning calorimetry. The ASDs were exposed to accelerated thermal-oxidative conditions using a pressurized oxygen headspace (120 °C for 1 day) and high temperatures at atmospheric pressure (60-120 °C for a period of 42 days). Additionally, solution-state oxidative degradation studies showed that pure NIF degrades to a greater extent than in the presence of PVP. Electronic structure calculations were performed to understand the impact of drug-polymer intermolecular interactions on the autoxidation of drugs. While no drug degradation was observed in freshly prepared ASD samples, alkyl free radicals were detected via electron paramagnetic resonance (EPR) spectroscopy. The free radicals were found to be consumed to a greater extent by PVP K30- than PVP K90-based ASDs upon exposure to high oxygen pressures. This was consistent with the greater solid-state oxidative degradation of NIF observed in ASDs with PVP K30 than with PVP K90. As no drug recrystallization occurred during this study period, the lower glass-transition temperature and presumed greater molecular mobility of PVP K30 and its ASD as compared to the PVP K90 system appear to contribute to the greater drug degradation in PVP-K30-based ASDs. The extent and the rate of oxidative degradation were higher in the case of PVP-K30-based ASD as compared to that in PVP-K90-based ASD, and the overall degradation increased with an increase in temperature. IR spectral analysis of drug-polymer interactions supports the electronic calculations of the oxidation process. We infer that, apart from the initial free radical content, the difference in the extent of drug-polymer intermolecular interactions in ASDs and amorphous stabilization during the forced oxidation experiments contribute to the observed differences in the autoxidative reactivity of the drug in ASDs with different PVP chain lengths. Overall, the chemical degradation of NIF in ASDs with two PVP chain lengths obtained from accelerated solid-state oxidation studies was in qualitative agreement with that obtained from long-term (3 years) storage under ambient conditions. The study highlights the ability of accelerated processes to determine the oxidative degradation behavior of polymeric ASDs and suggests that the polymer chain length could factor into chemical as well as physical stability considerations.

摘要

在本研究中,考察了用具有短(K30)和长(K90)链长的聚乙烯吡咯烷酮(PVP)制备的无定形固体分散体(ASD)中硝苯地平(NIF)的氧化降解行为。通过干球磨法制备 ASD,并使用傅里叶变换红外(IR)光谱、X 射线散射和差示扫描量热法进行分析。将 ASD 暴露于加压氧气顶空(120°C 1 天)和常压高温(60-120°C 42 天)的加速热氧化条件下。此外,溶液态氧化降解研究表明,纯 NIF 的降解程度大于存在 PVP 的情况。进行电子结构计算以了解药物-聚合物分子间相互作用对药物自动氧化的影响。虽然在新制备的 ASD 样品中未观察到药物降解,但通过电子顺磁共振(EPR)光谱检测到烷基自由基。在暴露于高氧压下时,发现基于 PVP K30 的 ASD 比基于 PVP K90 的 ASD 消耗更多的游离基。这与在 PVP K30 基 ASD 中观察到的 NIF 更大的固态氧化降解一致,而在 PVP K90 基 ASD 中则没有。由于在研究期间没有药物重结晶发生,因此与 PVP K90 系统相比,PVP K30 的较低玻璃化转变温度和假定的更大分子迁移率及其 ASD 似乎导致了基于 PVP-K30 的 ASD 中药物降解程度更大。与基于 PVP-K90 的 ASD 相比,基于 PVP-K30 的 ASD 的氧化降解程度和速率更高,并且随着温度的升高,整体降解增加。药物-聚合物相互作用的 IR 光谱分析支持氧化过程的电子计算。我们推断,除了初始自由基含量外,在强制氧化实验中 ASD 中药物-聚合物分子间相互作用的程度和无定形稳定的差异导致了具有不同 PVP 链长的 ASD 中药物自动氧化反应性的观察到的差异。总体而言,从加速固态氧化研究获得的两种 PVP 链长的 NIF 在 ASD 中的化学降解与在环境条件下长期(3 年)储存获得的化学降解一致。该研究强调了加速过程确定聚合物 ASD 氧化降解行为的能力,并表明聚合物链长可能会影响化学和物理稳定性。

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