Shanmugapriya N, Balachandran V, Revathi B, Narayana B, Salian Vinutha V, Vanasundari K, Sivakumar C
Centre for Research, Department of Physics, Arignar Anna Government Arts College (Affiliated to Bharathidasan University), Tiruchirappalli, Musiri, 621 211, India.
Department of Studies in Chemistry, Mangalore University, Mangalagangotri, 574 199, India.
Heliyon. 2021 Jul 22;7(7):e07634. doi: 10.1016/j.heliyon.2021.e07634. eCollection 2021 Jul.
The research received a great deal of worldwide attention due to the nature of interpretation before the experimental process. Based on the systematic process the structure of thiazole -pyrazole compound 4-[{2-[3-(4-chlorophenyl)-5-(4-propan-2-yl) phenyl)-4, 5-dihydro- 1H- pyrazol-1-yl]-4-oxo-1, 3- thiazol-5(4H)-ylidene} methyl] benzonitrile [CPTBN] was investigated. In the first level, the spectral statistics on experimental FT-IR and FT- Raman was reported. At the next level, geometrical parameters was theoretically acquired from density functional theory (DFT) using B3LPY/6-31G and 6-311G basis set. The computed Wavenumber were collected and compared with the experimental data. The vibrational modes were interpreted in terms of potential energy distribution (PED) results. The FMO, MEP, and NBO analysis further validated the electrophilic and nucleophilic interaction in the molecular systems. Two grams-positive bacteria: and two gram-negative bacteria: was performed for antibacterial activity. Two fungal strain and was carried out against a ligand using anti-fungal activity. The molecular docking analysis explores the antimicrobial and selective potential inhibitory nature of the binding molecule. Besides, RDG and ELF analysis were also performed to show the nature of interactions between the molecule.
由于实验过程前的解释性质,该研究受到了全球广泛关注。基于系统过程,对噻唑-吡唑化合物4-[{2-[3-(4-氯苯基)-5-(4-丙-2-基)苯基]-4,5-二氢-1H-吡唑-1-基]-4-氧代-1,3-噻唑-5(4H)-亚基}甲基]苯甲腈[CPTBN]的结构进行了研究。在第一层面,报告了实验傅里叶变换红外光谱(FT-IR)和傅里叶变换拉曼光谱(FT- Raman)的光谱统计数据。在下一层面,使用B3LPY/6-31G和6-311G基组从密度泛函理论(DFT)理论上获得几何参数。收集计算得到的波数并与实验数据进行比较。根据势能分布(PED)结果解释振动模式。前线分子轨道(FMO)、分子静电势(MEP)和自然键轨道(NBO)分析进一步验证了分子体系中的亲电和亲核相互作用。对两种革兰氏阳性菌: 和两种革兰氏阴性菌: 进行了抗菌活性测试。对两种真菌菌株 和 进行了针对配体的抗真菌活性测试。分子对接分析探索了结合分子的抗菌和选择性潜在抑制性质。此外,还进行了RDG和ELF分析以显示分子间相互作用的性质。