Department of Physics, Sri ManakulaVinayagar Engineering College, Pondicherry 605107, India.
Department of Physics, Sri ManakulaVinayagar Engineering College, Pondicherry 605107, India.
Spectrochim Acta A Mol Biomol Spectrosc. 2024 Dec 5;322:124853. doi: 10.1016/j.saa.2024.124853. Epub 2024 Jul 21.
The objective of this investigation is to learn more about the structural, electrical, spectroscopic, and physiochemical characteristics of biologically active cyano-4'-hydroxybiphenyl (CHBP). The title molecule's optimized conformational analysis was computed using the DFT/B3LYP/6-311++G (d, p) level of theory. The observed wavenumbers were compared with theoretical FT-IR and FT-Raman spectra. H and C NMR experimental spectra in CDCl solution (solvent phase) were recorded and the chemical shift was calculated. NBO analysis was used to examine the transfer of charge as well as the intermolecular and intramolecular bonding of orbitals. The TD-DFT (time-dependent DFT) approach was used to estimate theoretical values for both the gas and solvent (ethanol) in the corresponding transitional research, which was conducted using UV-Vis's spectra. Energy gap (Eg = 0.26764 eV) implies that the strong potential for charge transfer, and the stability of the CHBP compound. CHBP compound's has bioactive nature, its drug-likeness and biological properties were evaluated. The predicted topological polar surface area of 44.02 \AA for the molecule falls within the permissible range of < 140 \AA. Based on the docking results, the most stable docking score value is -6.84 kcal/mol. In that interaction, MET 165 affects both phenyl rings in a pi-sulphur fashion and a single bond hydrogen with protein moieties GLN 192. This suggests that the pi-alkyl in PRO 168 is a hydroxyl substitutional ring. Our findings demonstrate the CHBP compound is a good inhibitor against the SAR COVID-19 viral protein.
本研究旨在深入了解具有生物活性的氰基-4'-羟基联苯(CHBP)的结构、电学、光谱和物理化学特性。采用 DFT/B3LYP/6-311++G(d,p)理论水平对标题分子进行了优化构象分析。观察到的波数与理论 FT-IR 和 FT-Raman 光谱进行了比较。记录了在 CDCl 溶液(溶剂相)中的 1H 和 13C NMR 实验谱,并计算了化学位移。NBO 分析用于研究电荷转移以及轨道的分子间和分子内键合。采用 TD-DFT(时变密度泛函理论)方法,在相应的过渡态研究中,对气体和溶剂(乙醇)的理论值进行了估算,这是通过 UV-Vis 光谱进行的。能隙(Eg=0.26764 eV)表明存在强烈的电荷转移潜力和 CHBP 化合物的稳定性。CHBP 化合物具有生物活性,对其药物性质和生物学性质进行了评估。预测分子的拓扑极性表面积为 44.02 \AA,落在可接受的范围<140 \AA 内。根据对接结果,最稳定的对接得分值为-6.84 kcal/mol。在这种相互作用中,MET 165 以π-硫方式影响两个苯环,并与蛋白质部分 GLN 192 形成单键氢键。这表明 PRO 168 中的π-烷基是羟基取代环。我们的研究结果表明,CHBP 化合物是一种对抗 SARS-CoV-2 病毒蛋白的良好抑制剂。