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在有机硒化合物中插入功能基团会促进线粒体参数的变化,并提高其抗菌活性。

The insertion of functional groups in organic selenium compounds promote changes in mitochondrial parameters and raise the antibacterial activity.

机构信息

Departamento de Bioquímica e Biologia Molecular, Centro de Ciências Naturais e Exatas, Universidade Federal de Santa Maria, Santa Maria CEP 97105-900, Brazil.

Departamento de Análises Clínicas, Centro de Ciências da Saúde, Universidade Federal de Santa Maria, Santa Maria CEP 97105-900, Brazil.

出版信息

Bioorg Chem. 2020 May;98:103727. doi: 10.1016/j.bioorg.2020.103727. Epub 2020 Mar 5.

Abstract

Organic selenium compounds are widely associated with numerous pharmacological properties. However, selenium compounds, such as Ebselen (Ebs) and Diphenyl Diselenide (DPDS), could interact with mitochondrial respiratory complexes, especially with thiol groups. The present study evaluated whether the insertion of functional groups, o-methoxy, and p-methyl on organic selenium compounds promotes changes in mitochondrial functioning parameters and whether this is related to antibacterial activity. Here we tested some in vitro parameters after the exposure of mitochondria to different concentrations of β-selenoamines 1-phenyl-3-(p-tolylselanyl)propan-2-amine (C1) and 1-(2-methoxyphenylselanyl)-3-phenylpropan-2-amine (C2) and analogs of DPDS 1,2-bis(2-methoxyphenyl)diselenide (C3) and 1,2-bisp-tolyldiselenide (C4). We also evaluated the antibacterial activity of β-selenoamines and diselenides against Methicillin-resistant Staphylococcus aureus and Escherichia coli. Our results showed that o-methoxy insertion increased the antioxidant properties, without affecting the mitochondrial membrane potential. The compounds with a p-methyl insertion affected the mitochondrial membrane potential and significantly decreased the State III respiration and RCR. Besides, the p-methyl compounds presented antibacterial activity at lower concentrations than those shown in o-methoxy, precisely by the same mechanism that promotes damage to thiol groups and better absorption in gram-positive bacteria due to their relationship with cell wall constituents. Finally, our study confirms that structural modifications in organic selenium compounds provide changes in mitochondrial functioning but also raise their antibacterial effect. This strategy can be used as a target for the development of new enough potent antibacterial to restrict the advance of resistant bacterial infections.

摘要

有机硒化合物与许多药理学特性广泛相关。然而,硒化合物,如 Ebselen(Ebs)和二苯二硒醚(DPDS),可能与线粒体呼吸复合物相互作用,特别是与巯基相互作用。本研究评估了在有机硒化合物中插入功能团 -o-甲氧基和-p-甲基是否会促进线粒体功能参数的变化,以及这是否与抗菌活性有关。在这里,我们测试了在不同浓度的β-硒代胺 1-苯基-3-(对甲苯基硒基)丙-2-胺(C1)和 1-(2-甲氧基苯基硒基)-3-苯基丙-2-胺(C2)以及 DPDS 类似物 1,2-双(2-甲氧基苯基)二硒化物(C3)和 1,2-双对甲苯基二硒化物(C4)暴露于线粒体后一些体外参数。我们还评估了β-硒代胺和二硒化物对耐甲氧西林金黄色葡萄球菌和大肠杆菌的抗菌活性。我们的结果表明,-o-甲氧基的插入增加了抗氧化性能,而不影响线粒体膜电位。具有-p-甲基插入的化合物影响线粒体膜电位,并显著降低 State III 呼吸和 RCR。此外,p-甲基化合物在比 -o-甲氧基更低的浓度下表现出抗菌活性,正是通过相同的机制,即促进巯基的损伤和由于与细胞壁成分的关系而在革兰氏阳性菌中更好的吸收。最后,我们的研究证实,有机硒化合物结构的修饰提供了线粒体功能的变化,但也提高了它们的抗菌效果。该策略可用于开发新的足够有效的抗菌药物来限制耐药菌感染的进展。

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