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D-Maltose coated silver nanoparticles and their synergistic effect in combination with ampicillin

机译:D-麦芽糖涂覆银纳米粒子及其与氨苄青霉素组合的协同效应

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Resistance of pathogenic bacteria to conventional antibiotics has made them a much more challenging threat to public health. It is urgent to develop strategies to combat drug resistant bacteria. In the current study, d-maltose coated silver nanoparticles (AgNPs) were examined for their antibacterial and their synergistic effect in combination with ampicillin against Staphylococcus aureus (S. aureus) and Escherichia coli (E. coli). AgNPs were synthesized using a modified Tollen's method, providing highly stable AgNPs. Antibacterial activities of AgNPs were evaluated by determining their minimum inhibition concentration and minimum bactericidal concentration. It was found that S. aureus and E. coli were inhibited by AgNPs. Formation of AgNPs and ampicillin complexes were optimized after mixing them for at least 10 min. These complexes were stable for 1-3 days with no loss of activity. Interestingly, the synergism of the MIC AgNP1, the largest nanoparticle examined, and 2.5 A mu g cm(-3) of ampicillin revealed a 27 and 77% fold increase compared with the ampicillin control against S. aureus and E. coli, respectively. Synergism was found even with low levels of ampicillin. Therefore, these AgNPs could be used as an adjunct treatment in conjunction with an antibiotic to solve the problem of drug-resistant bacteria.
机译:致病细菌对常规抗生素的抵抗使它们对公共卫生的威胁更具挑战性。迫切需要制定对抗耐药细菌的策略。在目前的研究中,研究了D-麦芽糖涂覆的银纳米颗粒(AgNP),用于它们的抗菌和它们的协同效应与氨苄青霉素对葡萄球菌(金黄色葡萄球菌)和大肠杆菌(大肠杆菌)组合。使用改性的Tollen方法合成AgNP,提供高度稳定的AgNP。通过确定其最小抑制浓度和最小杀菌浓度来评估AgNP的抗菌活性。发现S. aureus和大肠杆菌受到agnps的抑制。在将它们混合至少10分钟后优化AgNP和氨苄青霉素配合物的形成。这些配合物稳定1-3天,无活性损失。有趣的是,MIC AgNP1的协同作用,所检测的最大纳米粒子和2.5μM-3)的氨苄青霉素显示出与氨苄青霉素对抗金黄色葡萄球菌和大肠杆菌相比的增加了27%和77%。甚至含有低水平的氨苄青霉素,也发现协同作用。因此,这些agnps可与抗生素结合使用以解决耐药细菌问题的辅助治疗。

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