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对与 Mn、Fe、Co、Ni 和 Cu 离子络合的扑热息痛药物的计算研究:结构分析、电子性质和溶剂效应。

A computational study on acetaminophen drug complexed with Mn, Fe, Co, Ni, and Cu ions: structural analysis, electronic properties, and solvent effects.

机构信息

Department of Chemistry, Payame Noor University (PNU), P.O. Box 19395-4697, Tehran, Iran.

出版信息

J Mol Model. 2022 Sep 6;28(10):302. doi: 10.1007/s00894-022-05305-6.

Abstract

In the present research, the cation-π interactions in acetaminophen-M complexes (M = Mn, Fe, Co, Ni, and Cu) are investigated using density functional theory (DFT/ωB97XD) in the gas phase and solution. The results show that the absolute values of energy are reduced in going from the gas phase to the solution. Based on the obtained data, the complexes in water are the most stable. The natural bond orbital (NBO) and the atoms in molecules (AIM) analyses are also applied to achieve more details about the nature of interactions. These results are useful for understanding the role of the drug-receptor interactions in the complexes. According to AIM outcomes, the cation-π interactions are the closed-shell and may indicate the partially covalent nature in the complexes. A comprehensive analysis is also performed on the conceptual DFT parameters of the complexes to evaluate their electronic properties. Our findings show increasing the stability and decreasing the reactivity of the complexes in the solution phase with respect to the gas phase. These interactions are ubiquitous in biological systems, and their importance in theoretical models led us to study such important interactions. The results of this study may be useful for the design and synthesis of a variety of supramolecular complexes with the desired properties.

摘要

在本研究中,使用密度泛函理论(DFT/ωB97XD)在气相和溶液中研究了对乙酰氨基酚-M 配合物(M=Mn、Fe、Co、Ni 和 Cu)中的阳离子-π 相互作用。结果表明,从气相到溶液,能量绝对值降低。基于获得的数据,水合配合物最稳定。还应用自然键轨道(NBO)和分子中的原子(AIM)分析来获得关于相互作用性质的更多细节。这些结果有助于理解药物-受体相互作用在配合物中的作用。根据 AIM 结果,阳离子-π 相互作用是闭壳的,可能表明配合物中存在部分共价性质。还对配合物的概念性 DFT 参数进行了全面分析,以评估其电子性质。我们的研究结果表明,与气相相比,配合物在溶液相中稳定性增加,反应性降低。这些相互作用在生物系统中普遍存在,其在理论模型中的重要性促使我们研究这种重要的相互作用。这项研究的结果可能有助于设计和合成具有所需性质的各种超分子配合物。

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