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季铵化壳聚糖的合成及其在固体分散体提高吲哚美辛溶解度中的潜在应用。

Synthesis of Quarternized Chitosans and Their Potential Applications in the Solubility Enhancement of Indomethacin by Solid Dispersion.

机构信息

Department of Pharmaceutical Chemistry, Faculty of Pharmaceutical Sciences, Prince of Songkla University, Hat Yai, 90110, Songkhla, Thailand.

Drug Delivery System Excellence Center, Faculty of Pharmaceutical Sciences, Prince of Songkla University, Hat Yai, 90110, Songkhla, Thailand.

出版信息

AAPS PharmSciTech. 2024 Aug 6;25(6):179. doi: 10.1208/s12249-024-02893-9.

Abstract

This study was designed to synthesize quarternized chitosans (Q-CS) and explore their potential application in aqueous solubility enhancement of indomethacin (IND), a BCS class-II drug. Three different Q-CS; N,N,N-trimethyl chitosan chloride (TMC), N-(4-N'-methylpyridinylmethyl) chitosan chloride (mPyCS), and N-(4-N',N',N'-trimethylaminobenzyl) chitosan chloride (TmBzCS) were synthesized and characterized through various spectroscopic analysis. Q-CS-based solid-dispersion (SD) composites of IND (Q-CS-IND) were prepared using the spray-drying method and characterized through Fourier transform infrared (FTIR), scanning electron microscopy (SEM), differential-scanning calorimetry (DSC), and powder X-ray diffraction (P-XRD). The solubility and dissolution profiles of SD-composites of IND were evaluated and compared with physical mixtures (PM). The IND contents were quantified and validated in the composites using UV-Vis spectrophotometer. FTIR and NMR analysis showed the successful preparation of Q-CS. TMC was found with the highest yield (55.13%) and mPyCS with the highest degree of quaternization (DQ) (63.37%). FT-IR analysis of IND-Q-CS composites demonstrated chemical interaction between carbonyl moieties of IND with functional groups of Q-CS. DSC and PXRD analyses demonstrated the transformation of IND in SD composites from crystalline to an amorphous form. All the IND-Q-CS composites were observed with a significant increase in the solubility and dissolution rate of the drug (1996.0 µg/min) compared to PM (1306.8 µg/min), which is higher than pure IND (791.6 µg/min). The contents of IND in TMC, mPyCS, and TmBzCS composites were 97.69-99.92%, 97.66-100.25%, and 97.18-100.11% respectively. Overall, the findings encourage the applications of Q-CS derivatives for increasing IND water solubility and warrant further in vivo biological profiling of IND composites.

摘要

本研究旨在合成季铵化壳聚糖(Q-CS),并探索其在提高 BCS 类 II 药物吲哚美辛(IND)的水溶性方面的潜在应用。通过各种光谱分析,合成并表征了三种不同的 Q-CS;N,N,N-三甲基壳聚糖盐酸盐(TMC)、N-(4-N'-甲基吡啶基甲基)壳聚糖盐酸盐(mPyCS)和 N-(4-N',N',N'-三甲胺基苯甲酰基)壳聚糖盐酸盐(TmBzCS)。采用喷雾干燥法制备了 IND 的 Q-CS 固溶体(SD)复合材料(Q-CS-IND),并通过傅里叶变换红外光谱(FTIR)、扫描电子显微镜(SEM)、差示扫描量热法(DSC)和粉末 X 射线衍射(P-XRD)进行了表征。评价并比较了 IND-SD 复合材料的溶解度和溶解曲线与物理混合物(PM)。使用紫外分光光度计定量和验证了复合材料中的 IND 含量。FTIR 和 NMR 分析表明 Q-CS 的成功制备。TMC 的产率最高(55.13%),mPyCS 的季铵化程度(DQ)最高(63.37%)。IND-Q-CS 复合材料的 FT-IR 分析表明,IND 的羰基与 Q-CS 的官能团之间存在化学相互作用。DSC 和 PXRD 分析表明,SD 复合材料中 IND 从结晶态向无定形态转变。与 PM(1306.8µg/min)相比,所有 IND-Q-CS 复合材料均观察到药物的溶解度和溶解速率显著提高(1996.0µg/min),高于纯 IND(791.6µg/min)。TMC、mPyCS 和 TmBzCS 复合材料中 IND 的含量分别为 97.69-99.92%、97.66-100.25%和 97.18-100.11%。总体而言,这些发现鼓励应用 Q-CS 衍生物来提高 IND 的水溶性,并保证对 IND 复合材料进行进一步的体内生物学分析。

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