Quantum mechanical treatment for potential antiphlogistic effects from the leaf extract of Ocimum basilicum citriodorum using gas chromatography-mass spectrometry (GCMS)

Raja Kaliyaperumal, Tharini Kumaravel, M. Albeshr, Thavan Kasilingam, V. Poovan, Karuppiah Nagaraj, Flora Shah, Isai Mathivanan
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Abstract

The immune biological response systems and inflammation can be triggered by a number of things such as pathogens, damaged cells and toxic substances. In ethnomedicine, leaves of Lemon basil (Ocimum basilicum citriodorum) have been used for their health benefits. This study examines the anti-inflammatory properties of lemon basil stalks. In a GC/MS study, 24 plant-based bioactive compounds were identified. Comparing the activities in 24 compounds with the largest negative binding energy values helped us determine which compound was most active. It can be seen that only two compounds (Campstool and stigmasterol) with the highest binding energies interact with the 2QVD protein; consequently, the compound with the highest binding energy has superior anti-inflammatory activity. In quantum mechanics, electron energy difference between lowest-unoccupied molecular orbitals (LUMO) and highest-occupied molecular orbitals (HOMO) is described by the quantum-mechanical method, electronegativity (χ), electron affinity (A), global hardness (η), global softness (σ) and ionization potential (I) estimated from the optimized structure. Higher energy molecules are more reactive than other substances reported in this study.
利用气相色谱-质谱(GCMS)分析量子力学处理枸橘叶提取物的潜在抗吸作用
引发免疫生物反应系统和炎症的原因有很多,如病原体、受损细胞和有毒物质。在民族医药中,柠檬罗勒(Ocimum basilicum citriodorum)的叶子一直被用于保健。本研究探讨了柠檬罗勒茎的抗炎特性。在一项气相色谱/质谱研究中,确定了 24 种基于植物的生物活性化合物。通过比较负结合能值最大的 24 种化合物的活性,我们确定了哪种化合物的活性最高。可以看出,只有两种结合能最高的化合物(莰烯和豆甾醇)与 2QVD 蛋白相互作用;因此,结合能最高的化合物具有更强的抗炎活性。在量子力学中,最低未占据分子轨道(LUMO)和最高占据分子轨道(HOMO)之间的电子能量差用量子力学方法描述,电负性(χ)、电子亲和力(A)、全局硬度(η)、全局软度(σ)和电离势(I)由优化结构估算得出。与本研究中报告的其他物质相比,能量较高的分子反应性更强。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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