Complexes of fluconazole with alanine, lysine and threonine: mass spectrometry and theoretical modeling

V. Chagovets, N. Starodubtseva, V. Frankevich
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Abstract

Investigation of the triazole-derived drugs action mechanisms and understanding of their affinity and specificity molecular basis may contribute to the new drugs development. The study was aimed to investigate the triazoles class representative (fluconazole) complexes with amino acids using mass spectrometry, molecular dynamics and ab initio quantum chemistry calculations. During the experimental study, the fluconazole, alanine, lysine and threonine solutions were analyzed by electrospray ionization mass spectrometry and tandem mass spectrometry. The molecular dynamics modeling of the fluconazole–amino acid complexes was performed using the CHARMM force field. The quantum chemistry calculations of the complexes structure and energy parameters were carried out using the density-functional theory by B3LYP calculations (3-21G and 6-311++G** basis sets). Mass spectra indicated that fluconazole formed stable complexes with amino acids in the 1 : 1 stoichiometric ratio. In accordance with the tandem mass spectrometry with varying fluconazole–amino acid associates ion fragmentation energy, the following sequence was obtained: [Fluc + Ala + H]+ < [Fluc + Lys + H]+ < [Fluc + Thr + H]+. The fluconazole–amino acid interaction energy values resulting from the quantum chemistry calculations formed the sequence similar to that obtained by experiment. Thus, as seen in the case of fluconazole–amino acid complexes, it is possible to combine the experimental mass spectrometry studies with quantum chemical modeling for the complexes properties assessment.
氟康唑与丙氨酸、赖氨酸和苏氨酸的配合物:质谱分析和理论建模
研究三唑类药物的作用机制,了解其亲和性和特异性的分子基础,有助于新药物的开发。本研究旨在利用质谱、分子动力学和从头计算量子化学方法研究三唑类代表(氟康唑)与氨基酸的配合物。在实验研究中,采用电喷雾电离质谱法和串联质谱法对氟康唑、丙氨酸、赖氨酸和苏氨酸溶液进行分析。采用CHARMM力场建立了氟康唑-氨基酸配合物的分子动力学模型。利用密度泛函理论,通过B3LYP计算(3-21G和6-311++G**基集)对配合物的结构和能量参数进行了量子化学计算。质谱分析表明,氟康唑与氨基酸以1:1的化学计量比形成稳定的配合物。根据不同氟康唑-氨基酸缔合物离子破碎能的串联质谱法,得到的序列为:[Fluc + Ala + H]+ < [Fluc + Lys + H]+ < [Fluc + Thr + H]+。量子化学计算得到的氟康唑-氨基酸相互作用能值与实验结果序列相似。因此,正如在氟康唑-氨基酸配合物的案例中所看到的那样,可以将实验质谱研究与量子化学建模相结合,以评估配合物的性质。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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