Centre for THz Research, China Jiliang University, Hangzhou 310018, China.
Department of Chemistry, Zhejiang Sci-Tech University, Hangzhou 310018, China.
Spectrochim Acta A Mol Biomol Spectrosc. 2019 Aug 5;219:419-426. doi: 10.1016/j.saa.2019.04.082. Epub 2019 Apr 30.
Co-crystals have great potential for drug research and development because the formation of co-crystal is accompanied by changes inter-molecular interactions between starting materials that enable to improve both physical and chemical properties of active pharmaceutical ingredients. In order to provide a more profound insight into the structural changes of specific drugs upon co-crystallization, spectroscopic characterization of solid-state acetazolamide (ACZ), 4-hydroxybenzoic acid (4HBA) and their co-crystal prepared by mechanical grinding approach has been performed with spectral techniques including terahertz time-domain spectroscopy (THz-TDS) and Raman spectroscopy. Experimental THz spectra show that the ACZ-4HBA co-crystal has a few significantly different absorption peaks in 0.82, 1.16, 1.28 and 1.64 THz respectively compared with parent materials in the frequency region from 0.2 to 1.8 THz. Likewise, such differences between the co-crystal and starting compounds could also be characterized by Raman vibrational spectra. Moreover, density functional theory (DFT) calculations were performed to simulate optimized structures and vibrational modes of three kind of possible co-crystal theoretical forms (form I, II and III) between ACZ and 4HBA. Theoretical results and THz/Raman vibrational spectra of ACZ-4HBA co-crystal show that the 4HBA links to the thiadiazole acetamide fragment of ACZ via the double-bridged heterodimeric synthon C(N)NH⋯HOOC inter-molecular hydrogen bonding interaction establishing the theoretical form I, which is more consistent with experimental observations than other two possible theoretical co-crystal forms. These results provide rich information and unique method for characterizing the composition of co-crystal structures and also inter-molecular interactions shown within pharmaceutical co-crystallization process at the molecular level.
共晶在药物研发中具有巨大的潜力,因为共晶的形成伴随着起始材料之间分子间相互作用的变化,从而改善了活性药物成分的物理和化学性质。为了更深入地了解特定药物在共晶化过程中的结构变化,采用太赫兹时域光谱(THz-TDS)和拉曼光谱等光谱技术对机械研磨法制备的固态乙酰胺唑(ACZ)、4-羟基苯甲酸(4HBA)及其共晶进行了光谱特征研究。实验 THz 光谱表明,与 0.2 至 1.8 THz 频率范围内的母体材料相比,ACZ-4HBA 共晶在 0.82、1.16、1.28 和 1.64 THz 处分别具有几个明显不同的吸收峰。同样,共晶与起始化合物之间的这种差异也可以通过拉曼振动光谱来表征。此外,还进行了密度泛函理论(DFT)计算,以模拟 ACZ 和 4HBA 之间三种可能的共晶理论形式(形式 I、II 和 III)的优化结构和振动模式。ACZ-4HBA 共晶的理论结果和 THz/Raman 振动光谱表明,4HBA 通过双桥杂二聚体 C(N)NH⋯HOOC 分子间氢键相互作用与 ACZ 的噻二唑乙酰胺片段相连,建立了理论形式 I,这与实验观察结果更为一致,而不是其他两种可能的理论共晶形式。这些结果为共晶结构的组成以及药物共晶化过程中分子内相互作用提供了丰富的信息和独特的方法,为分子水平上的研究提供了参考。