Department of Chemistry, College of Science, Mustansiriyah University, P.O. Box 46010, Baghdad, Iraq.
Department of Chemistry, College of Science, Mustansiriyah University, P.O. Box 46010, Baghdad, Iraq.
Spectrochim Acta A Mol Biomol Spectrosc. 2022 May 5;272:120971. doi: 10.1016/j.saa.2022.120971. Epub 2022 Jan 31.
Two new water-soluble thiadiazole compounds are prepared and characterized with various techniques. These compounds, 5-amino-1,3,4-thiadiazole hydrochloride (1) and 5-amino-3-(N-propane-2-imine)-1,3,4-thiadiazole chloride salt (2) were synthesized via Mannich reaction, and characterized by microelemental analysis, and some spectroscopic means (FTIR, UV-Vis, H NMR, C NMR and mass), in addition to single-crystal X-ray diffraction for compound 2. DFT calculations were conducted to study their geometry optimization, vibrational spectra, MEP maps, and NBO analysis. In addition, TD-DFT calculations were performed to study their absorption spectra. The prepared compounds were tested against Jack beans urease enzyme (in vitro) to indicate their antiureolytic activity potency. The activity of the enzyme was measured under optimal conditions, before and after mixing with the prepared organic compounds. The results showed that both compounds have potentially inhibited the enzyme activity with respect to their IC values: 13.76 µM ± 0.15 for 1, and 18.81 µM ± 0.18 for 2. These values are even lower than that of thiourea (21.40 ± 0.21 µM) as a standard inhibitor. The inhibition activity of urease enzyme was confirmed by a Lineweaver-Burk plot. According to the kinetic parameters obtained from the Lineweaver-Burk plot, the inhibition of urease enzyme by compounds 1 and 2 seems to be non-competitive. Molecular docking studies of the prepared compounds 1 and 2 were performed in order to interpret the obtained biological results and to investigate their interactions with the urease enzyme active site. These studies reveal that compounds 1 and 2 are good candidates as inhibitors for urease enzyme. Moreover, compound 1 exhibits a higher promising inhibition activity.
两种新的水溶性噻二唑化合物通过曼尼希反应合成,并通过微量分析和一些光谱手段(FTIR、UV-Vis、H NMR、C NMR 和质谱)以及化合物 2 的单晶 X 射线衍射进行了表征。此外,还进行了 DFT 计算以研究它们的几何优化、振动光谱、MEP 图和 NBO 分析。此外,还进行了 TD-DFT 计算以研究它们的吸收光谱。合成的化合物在体外对杰克豆脲酶(urease)进行了测试,以表明它们的抗脲酶活性。在最佳条件下,在与合成有机化合物混合前后测量了酶的活性。结果表明,两种化合物都具有潜在的抑制酶活性,其 IC 值分别为:13.76 ± 0.15µM 用于 1,18.81 ± 0.18µM 用于 2。这些值甚至低于作为标准抑制剂的硫脲(21.40 ± 0.21µM)。通过 Lineweaver-Burk 图证实了脲酶的抑制活性。根据 Lineweaver-Burk 图获得的动力学参数,化合物 1 和 2 对脲酶的抑制似乎是非竞争性的。为了解释获得的生物学结果并研究它们与脲酶活性部位的相互作用,对合成的化合物 1 和 2 进行了分子对接研究。这些研究表明,化合物 1 和 2 是脲酶抑制剂的良好候选物。此外,化合物 1 表现出更高的潜在抑制活性。