Characterization, Molecular Docking, and In Vitro Dissolution Studies of Solid Dispersions of 20(S)-Protopanaxadiol

Qi Zhang, Yiqiong Pu, B. Wang, Yuqin Wang, T. Dong, T. Guo, Tong Zhang, Z. Cai
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引用次数: 5

Abstract

In this study, we prepared solid dispersions (SDs) of 20(S)-protopanaxadiol (PPD) using a melting-solvent method with different polymers, in order to improve the solubility and dissolution performance of drugs with poor water solubility. The SDs were characterized via differential scanning calorimetry (DSC), powder X-ray diffraction (PXRD), Fourier transform infrared spectroscopy (FTIR), nuclear magnetic resonance (NMR), and molecular docking and dynamics study. DSC and PXRD results indicated that PPD crystallinity in SDs was significantly reduced, and that the majority of PPD is amorphous. No interaction was observed between PPD and polymers on FTIR and NMR spectra. Molecular docking and dynamic calculations indicated that the PPD molecule localized to the interpolated charged surface, rather than within the amorphous polymer chain network, which might help prevent PPD crystallization, consequently enhancing the PPD dispersion in polymers. An in vitro dissolution study revealed that the SDs considerably improved the PPD dissolution performance in distilled water containing 0.35% Tween-80 (T-80). Furthermore, among three PPD-SDs formulations, Poloxamer188 (F68) was the most effective in improving the PPD solubility and was even superior to the mixed polymers. Therefore, the SD prepared with F68 as a hydrophilic polymer carrier might be a promising strategy for improving solubility and in vitro dissolution performance. F68-based SD, containing PPD with a melting-solvent preparation method, can be used as a promising, nontoxic, quick-release, and effective intermediate for other pharmaceutical formulations, in order to achieve a more effective drug delivery.
20(S)-原人参二醇固体分散体的表征、分子对接及体外溶出研究
为了提高水溶性较差的药物的溶解度和溶出性能,采用不同聚合物的熔融溶剂法制备了20(S)-原嘌呤二醇(PPD)的固体分散体(SDs)。通过差示扫描量热法(DSC)、粉末x射线衍射(PXRD)、傅里叶变换红外光谱(FTIR)、核磁共振(NMR)、分子对接和动力学研究对SDs进行了表征。DSC和PXRD结果表明,SDs中PPD的结晶度明显降低,大部分PPD为无定形。在FTIR和NMR上未观察到PPD与聚合物之间的相互作用。分子对接和动力学计算表明,PPD分子定位于内插的带电表面,而不是在无定形聚合物链网络中,这可能有助于防止PPD结晶,从而增强PPD在聚合物中的分散。体外溶出研究表明,SDs在含0.35% Tween-80 (T-80)的蒸馏水中显著提高PPD的溶出性能。此外,在三种PPD- sds配方中,Poloxamer188 (F68)对PPD溶解度的改善效果最好,甚至优于混合聚合物。因此,以F68为亲水性聚合物载体制备SD可能是提高其溶解度和体外溶出性能的一种很有前景的策略。f68基SD采用熔融溶剂制备方法,含有PPD,可作为一种无毒、快速释放、有效的中间体用于其他药物制剂,以达到更有效的给药效果。
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