席夫碱配体及其金属配合物的合成、表征、生物学评价及分子对接。

IF 4.1 3区 生物学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY
Elsayed M AbouElleef, Rania A Saad, M A Diab, M M El-Zahed, A Z El-Sonbati, Sh M Morgan
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引用次数: 0

摘要

2,3-二氨基吡啶与2,4-二羟基苯甲醛缩合得到具有ONN供体序列的4,4'-[(1E,1 ~ E)-(吡啶-2,3-二基)-二(氮杂基)]-(甲基基)-二(苯-1,3-二醇)单碱三齿希夫碱配体(HL)。元素分析、电导率测试、磁化率数据、红外光谱、紫外可见光谱、x射线衍射和质谱数据用于配体及其配合物的结构表征。通过计算HF/3-21G计算优化了它们的几何结构,并评估了它们的HOMO-LUMO能隙。配合物的低摩尔电导表明它们不是电解的。从分光光度和重量分析,配合物(2-4)的比例为1:2,而配合物(1 & 5)的金属与配体的比例为1:1。对2,3-二氨基吡啶、2,4-二羟基苯甲醛、配体(HL)及其配合物对某些细菌(粪肠球菌、伤寒沙门氏菌和表皮葡萄球菌)和真菌(黄曲霉、茄色交替菌和白色念珠菌)的抗菌和抗真菌活性进行了筛选。结果表明,2,4-二羟基苯甲醛抗菌活性最强,其次为Mn(II)配合物。抗菌活性随化合物浓度的增加而增加。为了评估配体及其复合物对蜡样芽孢杆菌(PDB ID: 1FEZ)、表皮葡萄球菌(PDB ID: 3KP7)、粪肠杆菌(PDB ID: 5V5U)和伤寒葡萄球菌(PDB ID: 5V2W)蛋白结合位点的抑制作用,通过分子建模为药物设计提供了新的思路。分子对接研究证实了金属配合物与细菌蛋白之间的强结合相互作用,验证了它们的生物学潜力。这些发现表明希夫贱金属配合物具有良好的抗菌性能,使其成为制药和医疗应用的潜在候选物。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Synthesis, characterization, biological evaluation and molecular docking of a Schiff base ligand and its metal complexes.

Condensation of 2,3-diaminopyridine with 2,4-dihyrodybenzaldehyde yielded a 4,4'-[(1E,1 ~ E)-(pyridine-2,3-diyl)bis(azanylylidene)]bis(methanylylidene)bis(benzene-1,3-diol) monobasic tridentate Schiff base ligand (HL) with an ONN donor sequence. Elemental analyses, conductivity tests, magnetic susceptibility data, FT-IR, UV-vis spectra, x-ray diffraction, and mass spectrum data of the ligand and its complexes were used for the characterization of the structures. Computational HF/3-21G calculations were performed to optimize their geometrical structures and assess their HOMO-LUMO energy gaps. The low molar conductance of the complexes indicates that they are not electrolytic. From the spectrophotometric and gravimetric analyses, the complexes (2-4) are in the ratio of 1:2, while complexes (1 & 5) (1:1) metal to ligand. 2,3-Diaminopyridine, 2,4-dihydroxybenzaldehyde, ligand (HL) and its complexes were screened for antibacterial and antifungal activities against some bacterial (Enterococcus faecalis, Salmonella typhi, and Staphylococcus epidermidis) and fungal isolates (Aspergillus flavus, Alternaria solani, and Candida albicans). The result reveals that 2,4-dihyrodybenzaldehyde has the strongest antibacterial activity among the other compounds followed by Mn(II) complex. The antimicrobial activity increases by increasing the compound concentration. To assess the inhibitory impact of ligand and its complexes on binding sites of B. cereus (PDB ID: 1FEZ), S. epidermidis (PDB ID: 3KP7), E. faecalis (PDB ID: 5V5U) and S. typhi (PDB ID: 5V2W) proteins, molecular modeling has been implemented offer a fresh concept for medication design. Molecular docking studies confirmed strong binding interactions between the metal complexes and bacterial proteins, validating their biological potential. These findings demonstrate the promising antimicrobial properties of Schiff base metal complexes, making them potential candidates for pharmaceutical and medicinal applications.

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来源期刊
Biometals
Biometals 生物-生化与分子生物学
CiteScore
5.90
自引率
8.60%
发文量
111
审稿时长
3 months
期刊介绍: BioMetals is the only established journal to feature the important role of metal ions in chemistry, biology, biochemistry, environmental science, and medicine. BioMetals is an international, multidisciplinary journal singularly devoted to the rapid publication of the fundamental advances of both basic and applied research in this field. BioMetals offers a forum for innovative research and clinical results on the structure and function of: - metal ions - metal chelates, - siderophores, - metal-containing proteins - biominerals in all biosystems. - BioMetals rapidly publishes original articles and reviews. BioMetals is a journal for metals researchers who practice in medicine, biochemistry, pharmacology, toxicology, microbiology, cell biology, chemistry, and plant physiology who are based academic, industrial and government laboratories.
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