Exploring Naproxen Cocrystals Through Solid-State Vibrational Circular Dichroism

IF 3 4区 化学 Q2 CHEMISTRY, ANALYTICAL
Chirality Pub Date : 2025-02-17 DOI:10.1002/chir.70027
Adam Sklenář, Anne Zehnacker-Rentien, Jakub Kaminský, Jan Rohlíček, Petr Bouř
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Abstract

Vibrational circular dichroism (VCD) spectroscopy appears as a useful method for characterizing optically active substances in the solid state. This is particularly important for active pharmaceutical ingredients. However, measurement and interpretation of the spectra bring about many difficulties. To assess the experimental and computational methodologies, we explore an anti-inflammatory drug, naproxen. Infrared (IR) and VCD spectra of the pure compound and its cocrystals with alanine and proline were recorded, and the data were interpreted by quantum chemical simulations based on a cluster model and density functional theory. Although unpolarized IR spectroscopy can already distinguish pure ingredients from cocrystals or a mixture, the VCD technique is much more sensitive. For example, the naproxen carboxyl group strongly interacts with the zwitterionic alanine in the cocrystal via two strong hydrogen bonds, which results in a rather rigid structure crystallizing in the chiral P212121 Sohncke group and its VCD is relatively strong. In contrast, the d-proline and (S)-naproxen cocrystal (P21 group) involves a single hydrogen bond between the subunits, which together with a limited motion of the proline ring gives a weaker signal. Solid-state VCD spectroscopy thus appears useful for exploring composite crystal structures and interactions within them, including studies of pharmaceutical compounds.

Abstract Image

通过固态振动圆二色性探索萘普生共晶
振动圆二色光谱(VCD)是一种有效的表征固态光活性物质的方法。这对活性药物成分尤其重要。然而,光谱的测量和解释带来了许多困难。为了评估实验和计算方法,我们探索了一种抗炎药萘普生。记录了纯化合物及其与丙氨酸和脯氨酸共晶的红外(IR)和VCD光谱,并基于簇模型和密度泛函理论进行了量子化学模拟。虽然非偏振红外光谱已经可以从共晶或混合物中区分纯成分,但VCD技术要灵敏得多。例如,萘普生羧基通过两个强氢键与共晶中的两性离子丙氨酸发生强烈的相互作用,导致手性P212121 Sohncke基团结晶结构相当刚性,其VCD也比较强。相比之下,d-脯氨酸和(S)-萘普生共晶(P21基团)在亚基之间只有一个氢键,加上脯氨酸环的有限运动,信号较弱。因此,固态VCD光谱对于探索复合晶体结构和它们之间的相互作用,包括药物化合物的研究,似乎是有用的。
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来源期刊
Chirality
Chirality 医学-分析化学
CiteScore
4.40
自引率
5.00%
发文量
124
审稿时长
1 months
期刊介绍: The main aim of the journal is to publish original contributions of scientific work on the role of chirality in chemistry and biochemistry in respect to biological, chemical, materials, pharmacological, spectroscopic and physical properties. Papers on the chemistry (physiochemical, preparative synthetic, and analytical), physics, pharmacology, clinical pharmacology, toxicology, and other biological aspects of chiral molecules will be published.
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