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首页> 外文期刊>Spectrochimica acta, Part A. Molecular and biomolecular spectroscopy >Molecular structure and quantum descriptors of cefradine by using vibrational spectroscopy (IR and Raman), NBO, AIM, chemical reactivity and molecular docking
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Molecular structure and quantum descriptors of cefradine by using vibrational spectroscopy (IR and Raman), NBO, AIM, chemical reactivity and molecular docking

机译:使用振动光谱(IR和拉曼),NBO,AIM,化学反应性和分子对接,CeFradine的分子结构和量子描述符

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This study aims to investigate the structural and vibrational features of cefradine (the first-generation cephalo-sporin antibiotic) based on spectroscopic experiments and theoretical quantum chemical approach. The fundamental structural aspects of cefradine have been examined based on optimized geometry, spectroscopic behavior, intermolecular interaction, chemical reactivity, intramolecular hydrogen bonding, and molecular docking analysis. The most stable minimum energy conformer of the title molecule was identified by performing a one-dimensional potential energy surface scan along the rotational bonds at B3LYP/6-311++G (d,p) level of theory. The vibrational features of the molecule and information about the coupled modes were predicted. The chemical reactivity and stability of all the possible conformers of cefradine were estimated based on the HOMO-LUMO energy gap and NBO approach. The overall picture of accumulation of charges on individual atoms of the molecule was predicted by molecular electrostatic potential (MEP) surface map which in turn identifies the nucleophilic and electrophilic region or sites. The quantitative analysis of electrophilicity and nucleophilicity indices was done by Hirshfeld charge analysis and it was found that N8 atom is the most prominent site for nucleophilic attack while C14 atom is feasible for electrophilic attack. QTAIM study has also been performed to investigate the nature and strength of hydrogen bonding interactions. Besides, molecular docking studies were performed to examine the active binding residues of the target. (C) 2020 Elsevier B.V. All rights reserved.
机译:本研究旨在基于光谱实验和理论量子化学方法研究头孢拉定(第一代头孢菌素抗生素)的结构和振动特征。基于优化的几何结构、光谱行为、分子间相互作用、化学反应性、分子内氢键和分子对接分析,研究了头孢拉定的基本结构。通过在B3LYP/6-311++G(d,p)理论水平上沿旋转键进行一维势能表面扫描,确定了标题分子最稳定的最小能量构象。预测了分子的振动特征和有关耦合模的信息。根据HOMO-LUMO能隙和NBO方法估计了头孢拉定所有可能构象的化学反应性和稳定性。分子静电势(MEP)表面图预测了分子中单个原子上电荷累积的总体情况,进而确定了亲核和亲电区域或位置。通过Hirshfeld电荷分析对亲电性和亲核性指数进行了定量分析,发现N8原子是亲核攻击最显著的位置,而C14原子是亲电攻击的可行位置。QTAIM研究也被用于研究氢键相互作用的性质和强度。此外,还进行了分子对接研究,以检测目标的活性结合残基。(C) 2020爱思唯尔B.V.版权所有。

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