Synthesis of organic salts from 1,10-phenanthroline for biological applications

Atakilt Abebe, M. Atlabachew, Misganaw Liyew, Elsabet Ferede
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引用次数: 11

Abstract

Abstract Molecular 1,10-phenanthroline has superb intercalation ability with DNA base pairs. However, it could not be used for medicinal applications. This is due to its toxicity caused by inhibiting metalloenzymes via its chelating nitrogen atoms. Nonetheless, the toxicity has been avoided for its attractive features coordinating with transition metals. However, this required lengthy synthetic work and rendering the final application is more laborious, expensive and less environmentally friendly. Moreover, this usually results in rigid three-dimensional complexes that prevents the complete intercalation of the coordinated 1,10-phenanthroline with DNA base pairs which diminishes its activity. In this work, an alternative strategy in diminishing the toxicity but retaining the flat geometry of 1,10-phenanthroline following simpler synthetic procedure without the involvement of transition metals is described. This was achieved synthesizing five N-alkyl-1,10-phenanthrolinium bromide salts. The salts were characterized by spectrometry (1H NMR, ESI MS, Uv-vis), CHNBr elemental analysis and conductivity measurements. All demonstrated amphiphilic property, which make their applications convenient. Their in vitro biological activities were tested on two Gram-positive (Staphylococcus aureus (S. aureus) and Streptococcus pyogens (S. pyogenes) and two Gram-negative (Eschercia coli (E. coli) and Klebsiella pneumoniae (K. pneumoniae) bacteria and compared with 1,10-phenanthroline. They are found active against all the tested bacteria. The minimum inhibitory concentrations of the salts are nearly the same as 1,10-phenanthroline. The increase in the alkyl chain length increased the antibacterial activities of the slats in all the tested bacteria. All the salts demonstrated high molar conductivities.
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1,10-菲咯啉合成生物用有机盐
摘要分子1,10-菲咯啉与DNA碱基对具有极好的嵌入能力。然而,它不能用于医学应用。这是由于其毒性是通过螯合氮原子抑制金属酶引起的。尽管如此,由于其与过渡金属的配合具有吸引力,因此避免了毒性。然而,这需要漫长的合成工作,并且使得最终应用更加费力、昂贵且不太环保。此外,这通常会导致刚性的三维复合物,阻止配位的1,10-菲咯啉与DNA碱基对的完全嵌入,从而降低其活性。在这项工作中,描述了一种在不涉及过渡金属的情况下,通过更简单的合成程序降低1,10-菲咯啉的毒性但保持其平坦几何形状的替代策略。这是通过合成五种N-烷基-1,10-溴化菲鎓盐实现的。通过光谱分析(1H NMR、ESI MS、Uv-vis)、CHNBr元素分析和电导率测量对盐进行表征。所有这些都表现出两亲性,这使它们的应用变得方便。在两种革兰氏阳性(金黄色葡萄球菌和化脓性链球菌)和两种革兰氏阴性(大肠杆菌和肺炎克雷伯菌)细菌上测试了它们的体外生物活性,并与1,10-菲罗啉进行了比较。它们被发现对所有测试的细菌都有活性。盐的最小抑制浓度几乎与1,10-菲罗啉相同。烷基链长度的增加增加了板条在所有测试细菌中的抗菌活性。所有的盐都显示出高的摩尔电导率。
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Cogent Chemistry
Cogent Chemistry CHEMISTRY, MULTIDISCIPLINARY-
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