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Pharmaceutical Cocrystal Formation of Pyrazinamide with 3-Hydroxybenzoic Acid: A Terahertz and Raman Vibrational Spectroscopies Study

机译:吡嗪酰胺与3-羟基苯甲酸的药物共晶体形成:太赫兹和拉曼振动光谱研究

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摘要

Vibrational modes of pyrazinamide (PZA), 3-hydroxybenzoic acid (3-hBA), and their cocrystal were characterized using terahertz time-domain (THz-TDS) and Raman vibrational spectroscopic techniques. In experimental THz spectra, the cocrystal has characteristic absorption bands at around 0.81, 1.47, and 1.61 THz, respectively, meanwhile the raw materials are absolutely different in this region. Raman spectra also show similar results about differences between the cocrystal and corresponding starting parent materials. Density functional theory (DFT) was used to simulate both optimized structures and vibrational modes of the cocrystal formed between PZA and 3-hBA. The vibrational modes of such cocrystal are assigned through comparing the simulation DFT frequency results with experimental vibrational spectra. The calculation of the theoretical THz spectrum shows that the hydrogen bonding effect established between H11–N12–H13 and the carboxyl group -COOH makes contributions to the formation of absorption peaks in 0.49, 0.62, 0.83, and 1.61 THz, which agrees pretty well with experimental results. The theoretical Raman result also matches well with experimental observations. The results provide a fundamental benchmark for the study of pharmaceutical cocrystal formation and also inter-molecular hydrogen bonding interactions between active pharmaceutical ingredients and various cocrystal coformers based on Raman and terahertz vibrational spectroscopic techniques combined with theoretical simulations.
机译:使用太赫兹时域(THz-TDS)和拉曼振动光谱技术表征了吡嗪酰胺(PZA),3-羟基苯甲酸(3-hBA)及其共晶体的振动模式。在实验的THz光谱中,共晶的特征吸收带分别在0.81、1.47和1.61 THz左右,同时该区域中的原料完全不同。拉曼光谱也显示出关于共晶和相应的起始母体材料之间差异的相似结果。密度泛函理论(DFT)用于模拟PZA和3-hBA之间形成的共晶的优化结构和振动模式。通过将模拟DFT频率结果与实验振动光谱进行比较,可以指定此类共晶的振动模式。理论THz谱的计算表明,H11–N12–H13与羧基-COOH之间建立的氢键作用有助于形成0.49、0.62、0.83和1.61 THz的吸收峰,与实验结果。拉曼理论上的结果也与实验观察非常吻合。该结果为研究药物共晶体形成以及基于拉曼和太赫兹振动光谱技术与理论模拟相结合的活性药物成分与各种共晶体共形成剂之间的分子间氢键相互作用的研究提供了基本基准。

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