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Showing 3 results for Alizadeh Matboo

Mitra Gholami , Shahram Nazari , Mahdi Farzadkia , Seyed Mohsen Mohseni , Soudabeh Alizadeh Matboo, Fakhraddin Akbari Dourbash , Meysam Hasannejad ,
Volume 74, Issue 1 (April 2016)
Abstract

Background: Nano scale dendrimers are macromolecules synthetic which frequently used in medical and health field. Because traditional antibiotics inevitably induce bacterial resistance, which is responsible for many treatment failures, there is an urgent need to develop novel antibiotic drugs. This study was aimed to examine Synthesis and the antibacterial effect of NanoPolyamidoamine-G7 (NPAMAM-G7) dendrimer on Escherichia Coli, Proteus Mirabilis, Salmonella Typhi, Bacillus Subtilis and Staphylococcus Aureus.

Methods: In this experimental study that has been conducted in June 2015 in the Laboratory of Microbiology, Iran University of Medical Science, NPAMAM-G7 dendrimers was synthesized by Tomalia’s divergent growth approach. The antibacterial effects of NPAMAM-G7 dendrimer were studied by disc diffusion and micro-dilution method. Minimum inhibitory concentration (MIC) and minimum bactericidal concentration (MBC) against gram-positive and gram-negative bacteria were determined according to Clinical and Laboratory Standards Institute (CLSI) guideline. Standard discs were prepared using different concentrations of dendrimer on Mueller-Hinton agar plates.

Results: Zone of inhibition in concentration 25 μg/ml of NPAMAM-G7 dendrimers for Escherichia Coli, Proteus Mirabilis, Salmonella Typhi, Bacillus Subtilis and Staphylococcus Aureus were 26, 38, 36, 22 and 25 mm, respectively. Regarding the zone of inhibition in gram negative bacteria with gram positive ones was P= 0.16 and was not significant difference. The MIC for Salmonella Typhi was 0.025, for Proteus Mirabilis, Bacillus Subtilis, Staphylococcus Aureus and Escherichia Coli was 0.25 μg/ml. The MBC for Salmonella Typhi was 25μg/ml, for Proteus Mirabilis and Bacillus Subtilis was 50 μg/ml and for Escherichia Coli and Staphylococcus Aureus was 100 μg/ml. The least of sensitivity against NPAMAM-G7 related to Escherichia Coli and Staphylococcus Aureus and the most of sensitivity related to Salmonella Typhi.

Conclusion: The NPAMAM-G7 dendrimer with end amine groups exhibited a positive impact on the removal of standard strains, gram-positive and gram-negative bacteria. Therefore, it is possible to use these nanodendrimers as antibacterial in the future.


Mitra Gholami , Shahram Nazari , Mahdi Farzadkia , Gharib Majidi , Soudabeh Alizadeh Matboo ,
Volume 74, Issue 3 (June 2016)
Abstract

Background: Poly(amidoamine) (PAMAM) dendrimer derivatives have been investigated for their biological applications, especially for delivery of drugs, including antimicrobial drugs to eukaryotic cells, but their effects on bacterial cells are largely unexplored. Nanotechnology and its application is one of the rapidly developing sciences. As demand of fresh drinking water is increasing, nanotechnology can contribute noticeable development and improvement to water treatment process. This study was aimed to examine synthesis and the antibacterial effect of Nanopolyamidoamine-G7 (NPAMAM-G7) dendrimer on Escherichia Coli (E. Coli), Klebsiella Oxytoca (K. Oxytoca), Pseudomonas Aeruginosa (P. Aeruginosa), Proteus Mirabilis (P. Mirabilis) and Staphylococcus Aureus (S. Aureus) from aqueous solution.
Methods: In this experimental study that has been conducted in August to December 2015 in the laboratory of microbiology of Iran University of Medical Sciences, initially dilution of 103 CFU/ml were prepared from each strain of bacteria. Then different concentrations of dendrimer (0.025, 0.25, 2.5 and 25 µg/ml) in the laboratory temperature (23-25 °C) was added to water. In order to determine the efficiency of dendrimers in removal of bacteria, samples were taken at different times (0, 10, 20, 30, 40, 50 and 60 min) and were cultured on nutrient agar medium. Samples were incubated for 24 hours at 37 °C and then number of colonies were counted.
Results: Antibacterial properties of dendrimers in aqueous solution by increasing the dendrimer concentration and contact time is directly related. At a concentration of 25 μg/ml at 60 minutes all bacteria except S. Aureus, and at 30 minutes, E. Coli and K. Oxytoca bacteria for 100% excluded. The concentration of 2.5 μg/ml at 60 minutes of bacteria, E. Coli, K. Oxytoca and P. Mirabilis are 100% excluded. All concentrations of dendrimers at different times were reduced bacteria in the PAMAM- G7 dendrimer effect on gram-negative bacteria, gram-positive bacteria was better.
Conclusion: The NPAMAM-G7 dendrimer with end amine groups exhibited a positive impact on the removal of standard strains, gram-positive and gram-negative bacteria. Therefore, it is possible to use these nanodendrimers as antibacterial in the future.


Mitra Gholami , Shahram Nazari, Ahmad Reza Yari , Seyed Mohsen Mohseni , Soudabeh Alizadeh Matboo ,
Volume 75, Issue 2 (May 2017)
Abstract

Background: Electrolysis is an electrochemical method for the treatment of water. recently water disinfection by electrochemical methods has been increasingly carried out. The aim of this applied research was to investigate the removal of Escherichia coli (E. coli) and Staphylococcus aureus (S. aureus) bacteria from drinking water by using electrolysis method with Al-Fe electrodes parallel with the monopole mode.

Methods: An experimental study was conducted in the laboratory of microbiology, Iran University of Medical Science in May 2017. In this study, the contaminated water samples were prepared through adding 103, 104 and 105 E. coli and S. aureus bacteria per 1 milliliters (mL) of drinking water. Independent variables Included: different concentrations of E.coli and S. aureus bacteria (103, 104 and 105 CFU/ml), reaction time (5, 10, 15, 20 and 25 min), initial pH (7, 8 and 9), electrode gap (1, 2 and 3 cm), current density (0.83, 1.67 and 3.3 mA/cm2) to determine the optimum conditions were investigated. One-way ANOVA was used to analyze the results.

Results: The results show that in the optimum conditions with increasing the pH from 7 to 9 removal efficiency of bacterial strains of E. coli and S. aureus were decreased significantly from 98 to 73% and 99.1 to 76%, respectively. In initial concentration of 104 CFU/ml, optimum conditions were obtained for current density, reaction time and electrodes gap, 1.67 mA/cm2, 20 min and 2 cm, respectively. With increasing current density and reaction time in both strains of bacteria, were decreased significantly. The electrodes gap do not have much impact on the efficiency of the process. The amount of electrical energy consumed in optimal conditions was calculated 0.5128 kilowatt-hour (kWh/h). Statistical analysis shows that exist significant relationship (P<0.01) between initial concentrations of bacterial strains and efficiency of the process.

Conclusion: According to the results, E. coli and S. aureus, removal efficiency were obtained more than 98%, therefore electrolysis process can be used in the removal of pathogenic bacteria from drinking water.



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