Antibacterial activity of mixed metal oxide derived from Zn-Al layered double hydroxide precursors, effect of calcination temperature

被引:0
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作者
Fethi Ghribi
Tayeb Bouarroudj
Youcef Messai
Ilyas Belkhattab
Abdelmounaim Chetoui
Amira Bourouba
Amina Bourouba
Houneida Benbouzid
Okba Louafi
Abdelghani Djahoudi
Zoubir Benmaamar
Khaldoune Bachari
机构
[1] Scientific and Technical Research Center in Physico-Chemical Analyses (CRAPC),Energy Processes and Nanotechnology Laboratory
[2] BP 384,Laboratory of Functional Analysis of Chemical Processes
[3] Blida1 University,Laboratory for the Study of Surfaces and Interfaces of Solid Matter (LESIMS)
[4] Blida1 University,Laboratory of Cellular Toxicology, Department of Biology, Faculty of Sciences
[5] Badji Mokhtar University,Department of Material Sciences
[6] Research Center in Semiconductors Technology for Energetic (CRTSE),Laboratory of Microbiology, Department of Pharmacy, Faculty of Medicine
[7] University of Badji Mokhtar,undefined
[8] Faculty of Exact Sciences and Natural and Life Sciences Echahid Cheikh Larbi Tebessi University Tebessa,undefined
[9] University of Badji Mokhtar,undefined
来源
Biologia | 2024年 / 79卷
关键词
Layered Double Hydroxide (LDHs); Mixed metal oxide; MMO); ZnO-ZnAl; O; Antimicrobial Activity; Minimum Inhibitory Concentration (MIC); Minimum Bactericidal Concentration (MBC);
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摘要
For several decades, the use of antibiotics has led to the emergence of highly resistant human and animal pathogens, posing a significant threat to global health, food security, and economic progress. In the quest for alternatives to combat multidrug-resistant bacteria and yeasts, the utilization of nanoparticles materials has emerged as a promising avenue. In this research, we investigated the antimicrobial properties of Zn-Al-layered double hydroxide, synthesized through co-precipitation and subsequently calcined at temperatures of 400, 600, and 800°C. A total of 21 bacterial strains, including 15 clinical strains and 6 Gram-reference strains, along with one fungal strain, were subjected to testing. The synthesized materials underwent characterization using various techniques such as X-ray diffraction (XRD) spectroscopy, scanning electron microscopy (SEM), ultraviolet–visible spectroscopy, and fourier-transform infrared (FTIR) spectroscopy. The key findings indicate that the uncalcined Zn-Al-layered double hydroxide and the heterojunction ZnO-ZnAl2O4 calcined at 400°C and 600°C exhibited a minimum inhibitory concentration (MIC) of 0.125 μg/mL against the tested strains. The spinell ZnAl2O4 calcined at 800°C showed MICs ranging between 0.125 and 2 μg/mL, with a greater bactericidal effect on gram-negative bacteria (GNBs) such as Enterobacteriaceae and non-Enterobacteriaceae compared to Gram-positive bacteria. Consequently, the heterojunction ZnO-ZnAl2O4 demonstrated higher efficacy against Gram-positive bacteria. These findings highlight the potential of heterojunction ZnO-ZnAl2O4 and spinell ZnAl2O4 as mixed metal oxides derived from ZnAl-layered double hydroxide, offering promising alternatives to traditional antibiotics and suggesting their potential use as impregnating agents in matrices with a broad spectrum of specific antimicrobial activity.
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页码:937 / 952
页数:15
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