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Preparation and Study of the Antibacterial Applications and Oxidative Stress Induction of Copper Maleamate-Functionalized Mesoporous Silica Nanoparticles

机译:马来酸铜官能化介孔二氧化硅纳米粒子的抗菌应用和氧化应激诱导研究

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摘要

Mesoporous silica nanoparticles (MSNs) are an interesting class of nanomaterials with potential applications in different therapeutic areas and that have been extensively used as drug carriers in different fields of medicine. The present work is focused on the synthesis of MSNs containing a maleamato ligand (MSN-maleamic) and the subsequent coordination of copper(II) ions (MSN-maleamic-Cu) for the exploration of their potential application as antibacterial agents. The Cu-containing nanomaterials have been characterized by different techniques and the preliminary antibacterial effect of the supported maleamato-copper(II) complexes has been tested against two types of bacteria (Gram positive and Gram negative) in different assays to determine the minimum inhibitory concentration (MIC) and minimum bactericidal concentration (MBC). The biological results showed a moderate antibacterial activity against Escherichia coli which motivated a more detailed study of the antibacterial mechanism of action of the synthesized maleamate-containing nanosystems and whose findings showed oxidative stress generation in bacterial cells. All the prepared nanomaterials were also tested as catalysts in the “solvent free” selective oxidation of benzyl alcohol, to observe if there is a potential correlation between the catalytic oxidation capacity of the materials and the observed oxidative stress in bacteria. This may help in the future, for a more accurate rational design of antibacterial nanosystems, based on their observed catalytic oxidation activity.
机译:介孔二氧化硅纳米粒子(MSNs)是一类有趣的纳米材料,在不同的治疗领域都有潜在的应用,并且已广泛用作不同医学领域的药物载体。目前的工作集中于合成含有马来酰胺配体(MSN-maleamic)的MSNs,以及随后的铜(II)离子(MSN-maleamic-Cu)配位,以探索其作为抗菌剂的潜在应用。含铜的纳米材料已通过不同的技术进行了表征,并且在不同的测定方法中对两种类型的细菌(革兰氏阳性和革兰氏阴性)测试了负载型马来铜-铜(II)配合物的初步抗菌作用,以确定最低抑菌浓度。 (MIC)和最低杀菌浓度(MBC)。生物学结果表明,对大肠杆菌具有中等程度的抗菌活性,这促使对合成的含马来酸的纳米系统的抗菌作用机理进行更详细的研究,其发现表明细菌细胞中产生了氧化应激。还测试了所有制备的纳米材料作为苄醇“无溶剂”选择性氧化中的催化剂,以观察材料的催化氧化能力与细菌中观察到的氧化应激之间是否存在潜在的相关性。这可能会在将来基于其观察到的催化氧化活性为抗菌纳米系统的更准确合理设计提供帮助。

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