Palladium(II)-Salicylanilide Complexes, Spectroscopic, Biological, DFT Calculations and in Silico Studies

Ahmed S. M. Al‐Janabi, T. Yousef, Mohammed E. A. Al-Doori, R. A. Bedier, B. M. Ahmed
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Abstract

Palladium(II)-Salicylanilide complexes of the type [Pd(k2-Saln)2] (1), [Pd(k2-Saln)2(diphos)] (2-6) (diphos = dppe, dppp, dppb, dppf, and dppmS2) and [Pd(k2-Saln)2(m-dppm)] (7) were synthesized and characterized. The salicylanidate ligand (Saln-) was bonded as bidentate chelating through the O atoms of hydroxyl and carbonyl groups in complex (1), whereas coordinated as monodentate through the O atom of hydroxyl group in complexes (2-7), and the all diphosphine ligands except dppm bonded as bidentate chelating to afford a square planner geometry around the Pd(II) ion. The dppm ligand was coordinated as bidentate bridging to afford binuclear complex. The prepared complexes displayed respectable activity against the pathogen bacteria species. Complex (5) showed the highest inhibition value against all types of bacteria, compared to the other complexes and the free ligand. On the other hand, the complex [Pd(Saln)2], showed the lowest inhibition against all types of bacteria. And the inhibition sequence of complexes is as following:(5) > (4) > (2) > (3) > HSaln > (1)Calculations of density function theory (DFT) were performed at the B3LYP/6-311G(d,p) level involved in the Gaussian 09 program to inspect the optimized structures of the chelating agent and its complexes. Docking study of the ligand was performed against the proteins of bacterial strains Streptococcus pyogenes (ID: 5GOT), Escherichia coli (ID: 1C14), Staphylococcus aureus (ID: 3BL6), and Salmonella typhimurium (ID: 3V7F) by Schrodinger suite program using XP glide protocol.
钯(II)-水杨酰苯胺配合物,光谱,生物,DFT计算和硅研究
合成了[Pd(k2-Saln)2](1)、[Pd(k2-Saln)2(diphos)] (2-6) (diphos = dppe、dppp、dppb、dppf和dppmS2)和[Pd(k2-Saln)2(m-dppm)](7)型钯(II)-水杨基苯胺配合物并进行了表征。水杨酸盐配体(Saln-)在配合物(1)中通过羟基和羰基的O原子形成双齿螯合键,而在配合物(2-7)中通过羟基的O原子形成单齿螯合键,除dppm外的所有二膦配体都形成双齿螯合键,在Pd(II)离子周围形成方形规划几何。dppm配体作为双齿桥接得到双核配合物。所制备的配合物对病原菌具有良好的抑菌活性。与其他配合物和游离配体相比,配合物(5)对所有类型细菌的抑制值最高。另一方面,配合物[Pd(Saln)2]对所有类型细菌的抑制作用最低。配合物的抑制顺序为:(5)> (4)> (2)> (3)> HSaln >(1)在高斯09程序涉及的B3LYP/6-311G(d,p)水平上进行密度函数理论(DFT)计算,以考察最佳的螯合剂及其配合物的结构。利用薛定谔套件程序,采用XP滑翔方案,对病原菌化脓链球菌(ID: 5GOT)、大肠杆菌(ID: 1C14)、金黄色葡萄球菌(ID: 3BL6)和鼠伤寒沙门氏菌(ID: 3V7F)蛋白进行对接研究。
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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