Potential Impact of Reduced Graphene Oxide Incorporated Metal Oxide Nanocomposites as Antimicrobial, and Antibiofilm Agents Against Pathogenic Microbes: Bacterial Protein Leakage Reaction Mechanism
暂无分享,去创建一个
Hesham Ramzy Tantawy | Sherif Elbasuney | G. S. El-Sayyad | M. Yehia | S. Ismael | Nawal E. Al-Hazmi
[1] G. S. El-Sayyad,et al. Novel fabrication of SiO2/Ag nanocomposite by gamma irradiated Fusarium oxysporum to combat Ralstonia solanacearum , 2022, AMB Express.
[2] A. El-Khawaga,et al. Antimicrobial synergism and antibiofilm activities of amoxicillin loaded citric acid-magnesium ferrite nanocomposite: Effect of UV-illumination, and membrane leakage reaction mechanism. , 2022, Microbial pathogenesis.
[3] D. Wongratanaphisan,et al. Enhanced antimicrobial and physical properties of poly (butylene adipate‐co‐terephthalate)/zinc oxide/reduced graphene oxide ternary nanocomposite films , 2021 .
[4] A. Ashour,et al. Gamma irradiation-assisted synthesis of PANi/Ag/MoS2/LiCo0.5Fe2O4 nanocomposite: Efficiency evaluation of photocatalytic bisphenol A degradation and microbial decontamination from wastewater , 2021 .
[5] Xiaoying Wang,et al. A sandwich-like chitosan-based antibacterial nanocomposite film with reduced graphene oxide immobilized silver nanoparticles. , 2021, Carbohydrate polymers.
[6] R. Amal,et al. Antibacterial Activity of Reduced Graphene Oxide , 2021 .
[7] Nageh K. Allam,et al. Superior visible light antimicrobial performance of facet engineered cobalt doped TiO2 mesocrystals in pathogenic bacterium and fungi , 2021, Scientific Reports.
[8] A. Farghali,et al. Chitosan and EDTA conjugated graphene oxide antinematodes in eggplant: Toward improving plant immune response. , 2021, International journal of biological macromolecules.
[9] A. Kabir,et al. Enhanced photocatalytic activity of Ho3+ doped ZnO NPs synthesized by modified sol-gel method: An experimental and theoretical investigation , 2021 .
[10] Bharat P. Kapgate,et al. Bioinspired Reduced Graphene Oxide Based Nanohybrids for Photocatalysis and Antibacterial Applications. , 2020, Current pharmaceutical biotechnology.
[11] S. Neogi,et al. Bi-functional NiO-ZnO nanocomposite: Synthesis, characterization, antibacterial and photo assisted degradation study , 2020 .
[12] R. Kumar,et al. Nanocomposite matrix conjugated with carbon nanomaterials for photocatalytic wastewater treatment. , 2020, Journal of hazardous materials.
[13] A. Darwish,et al. Influence of ultraviolet irradiation on physical properties of nano-NiO films for optical applications , 2020, Applied Physics A.
[14] G. S. El-Sayyad,et al. Gum Arabic polymer-stabilized and Gamma rays-assisted synthesis of bimetallic silver-gold nanoparticles: Powerful antimicrobial and antibiofilm activities against pathogenic microbes isolated from diabetic foot patients. , 2020, International journal of biological macromolecules.
[15] A. Sivakumar,et al. Structural, optical and magnetic properties of silver oxide (AgO) nanoparticles at shocked conditions , 2020, Journal of Nanostructure in Chemistry.
[16] A. El-Khawaga,et al. Antimicrobial and Photocatalytic Degradation Activities of Chitosan-coated Magnetite Nanocomposite , 2020, Journal of Cluster Science.
[17] M. A. Sadek,et al. Graphene oxide-based nanocomposites (GO-chitosan and GO-EDTA) for outstanding antimicrobial potential against some Candida species and pathogenic bacteria. , 2020, International journal of biological macromolecules.
[18] A. Matsuda,et al. Carbon-dot-loaded CoxNi1−xFe2O4; x = 0.9/SiO2/TiO2 nanocomposite with enhanced photocatalytic and antimicrobial potential: An engineered nanocomposite for wastewater treatment , 2020, Scientific Reports.
[19] H. H. El-Bahnasawy,et al. Nanostructured Mg substituted Mn-Zn ferrites: A magnetic recyclable catalyst for outstanding photocatalytic and antimicrobial potentials. , 2020, Journal of hazardous materials.
[20] R. Rajeswari,et al. Palladium – Decorated reduced graphene oxide/zinc oxide nanocomposite for enhanced antimicrobial, antioxidant and cytotoxicity activities , 2020 .
[21] K. Acharya,et al. Synthesis of RGO/NiO nanocomposites adopting a green approach and its photocatalytic and antibacterial properties , 2020 .
[22] M. A. Sadek,et al. Reduced graphene oxide: a novel black body emitter for advanced infrared decoy flares , 2020 .
[23] E. Bekyarova,et al. Antimicrobial Mechanisms and Effectiveness of Graphene and Graphene-Functionalized Biomaterials. A Scope Review , 2020, Frontiers in Bioengineering and Biotechnology.
[24] M. Younas,et al. Microbial synthesized cadmium oxide nanoparticles induce oxidative stress and protein leakage in bacterial cells. , 2020, Microbial pathogenesis.
[25] S. Botsa,et al. Enhanced UV–Visible triggered photocatalytic degradation of Brilliant green by reduced graphene oxide based NiO and CuO ternary nanocomposite and their antimicrobial activity , 2020 .
[26] In S. Kim,et al. Antimicrobial mechanism of reduced graphene oxide-copper oxide (rGO-CuO) nanocomposite films: The case of Pseudomonas aeruginosa PAO1. , 2020, Materials science & engineering. C, Materials for biological applications.
[27] M. Soleimani,et al. The biomedical potential of cellulose acetate/polyurethane nanofibrous mats containing reduced graphene oxide/silver nanocomposites and curcumin: Antimicrobial performance and cutaneous wound healing. , 2020, International journal of biological macromolecules.
[28] Sahida Sharma,et al. Promising antifungal agents: A minireview. , 2020, Bioorganic & medicinal chemistry.
[29] Sabu Thomas,et al. Reduced graphene oxide/silver nanohybrid as a multifunctional material for antibacterial, anticancer, and SERS applications , 2019, Applied Physics A.
[30] Chris F. McConville,et al. Antibacterial Properties of Graphene Oxide-Copper Oxide Nanoparticle Nanocomposites. , 2019, ACS applied bio materials.
[31] C. Hsieh,et al. Antibacterial Property of Composites of Reduced Graphene Oxide with Nano-Silver and Zinc Oxide Nanoparticles Synthesized Using a Microwave-Assisted Approach , 2019, International Journal of Molecular Sciences.
[32] V. Shanmugam,et al. Eco-friendly synthesis of zinc oxide nanoparticles using Cinnamomum Tamala leaf extract and its promising effect towards the antibacterial activity , 2019, Journal of Drug Delivery Science and Technology.
[33] G. S. El-Sayyad,et al. Therapeutic and diagnostic potential of nanomaterials for enhanced biomedical applications. , 2019, Colloids and surfaces. B, Biointerfaces.
[34] G. S. El-Sayyad,et al. Antibiofilm and Antimicrobial Activities of Silver Boron Nanoparticles Synthesized by PVP Polymer and Gamma Rays Against Urinary Tract Pathogens , 2019, Journal of Cluster Science.
[35] Mingguang Chen,et al. Facile production of silver-reduced graphene oxide nanocomposite with highly effective antibacterial performance , 2019, Journal of Environmental Chemical Engineering.
[36] H. Naik,et al. Green synthesis of zinc ferrite nanoparticles in Limonia acidissima juice: Characterization and their application as photocatalytic and antibacterial activities , 2019, Microchemical Journal.
[37] C. Muthukumaran,et al. Green synthesis of ZnO nanoparticles using Tecoma castanifolia leaf extract: Characterization and evaluation of its antioxidant, bactericidal and anticancer activities , 2019, Microchemical Journal.
[38] Sheng Tang,et al. Synthesis of a poly(N-methylthionine)/reduced graphene oxide nanocomposite for the detection of hydroquinone , 2019, Materials Chemistry and Physics.
[39] A. Ashour,et al. Antibacterial, antibiofilm, and photocatalytic activities of metals-substituted spinel cobalt ferrite nanoparticles. , 2019, Microbial pathogenesis.
[40] Eue-Soon Jang,et al. Antimicrobial activity of ZnO nanoplates and its Ag nanocomposites: Insight into an ROS-mediated antibacterial mechanism under UV light , 2018, Journal of Solid State Chemistry.
[41] A. Ashour,et al. Synthesis and characterization of metals-substituted cobalt ferrite [Mx Co(1-x) Fe2O4; (M = Zn, Cu and Mn; x = 0 and 0.5)] nanoparticles as antimicrobial agents and sensors for Anagrelide determination in biological samples. , 2018, Materials science & engineering. C, Materials for biological applications.
[42] A. Ashour,et al. Antimicrobial activity of metal-substituted cobalt ferrite nanoparticles synthesized by sol–gel technique , 2018, Particuology.
[43] Shuquan Huang,et al. Synthesis of zinc ferrite/silver iodide composite with enhanced photocatalytic antibacterial and pollutant degradation ability. , 2018, Journal of colloid and interface science.
[44] Chuan-xiang Chen,et al. Catalytic polymerization of N-methylthionine at electrochemically reduced graphene oxide electrodes , 2018, Electrochimica Acta.
[45] M. Yoshimura,et al. Progress of reduction of graphene oxide by ascorbic acid , 2018, Applied Surface Science.
[46] G. S. El-Sayyad,et al. Synthesis of Metallic Silver Nanoparticles by Fluconazole Drug and Gamma Rays to Inhibit the Growth of Multidrug-Resistant Microbes , 2018, Journal of Cluster Science.
[47] Sharangouda J. Patil,et al. Sugarcane juice mediated eco-friendly synthesis of visible light active zinc ferrite nanoparticles: Application to degradation of mixed dyes and antibacterial activities , 2018, Materials Chemistry and Physics.
[48] A. Nada,et al. Elaboration of nano titania-magnetic reduced graphene oxide for degradation of tartrazine dye in aqueous solution , 2018 .
[49] Maricarmen Íñiguez-Moreno,et al. Biofilm formation by Staphylococcus aureus and Salmonella spp. under mono and dual-species conditions and their sensitivity to cetrimonium bromide, peracetic acid and sodium hypochlorite , 2017, Brazilian journal of microbiology : [publication of the Brazilian Society for Microbiology].
[50] Wei Huang,et al. Chemical analysis and in vitro antimicrobial effects and mechanism of action of Trachyspermum copticum essential oil against Escherichia coli. , 2017, Asian Pacific journal of tropical medicine.
[51] J. Marco,et al. Reduced Graphene Oxides: Influence of the Reduction Method on the Electrocatalytic Effect towards Nucleic Acid Oxidation , 2017, Nanomaterials.
[52] G. S. El-Sayyad,et al. Synthesis of silver nanoparticles using natural pigments extracted from Alfalfa leaves and its use for antimicrobial activity , 2017, Chemical Papers.
[53] S. Bottle,et al. Synergic bactericidal effects of reduced graphene oxide and silver nanoparticles against Gram-positive and Gram-negative bacteria , 2017, Scientific Reports.
[54] E. Mijowska,et al. Graphitic carbon nitride/graphene oxide/reduced graphene oxide nanocomposites for photoluminescence and photocatalysis , 2017 .
[55] Vinay S. Sharma,et al. Synthesis, characterization and enhanced antimicrobial activity of reduced graphene oxide–zinc oxide nanocomposite , 2017 .
[56] K. L. Foo,et al. Synthesis of Graphene Oxide using Modified Hummers Method: Solvent Influence , 2017 .
[57] G. Pazour,et al. Ror2 signaling regulates Golgi structure and transport through IFT20 for tumor invasiveness , 2017, Scientific Reports.
[58] M. Othman,et al. Copper-substituted cobalt ferrite nanoparticles: structural, optical and antibacterial properties , 2016 .
[59] M. Bawa’aneh,et al. Influence of Mn doping on the magnetic and optical properties of ZnO nanocrystalline particles , 2016 .
[60] V. Dharanishanthi,et al. Antibacterial mechanism of biogenic silver nanoparticles of Lactobacillus acidophilus , 2015 .
[61] Yachong Guo,et al. Graphene Induces Formation of Pores That Kill Spherical and Rod-Shaped Bacteria. , 2015, ACS nano.
[62] H. Asgharzadeh,et al. Fast and fully-scalable synthesis of reduced graphene oxide , 2015, Scientific Reports.
[63] A. Kearns,et al. Combinations of β-Lactam or Aminoglycoside Antibiotics with Plectasin Are Synergistic against Methicillin-Sensitive and Methicillin-Resistant Staphylococcus aureus , 2015, PloS one.
[64] M. Meyyappan,et al. X-ray Absorption Study of Graphene Oxide and Transition Metal Oxide Nanocomposites , 2014, The journal of physical chemistry. C, Nanomaterials and interfaces.
[65] P. Ciambelli,et al. Oil lubricant tribological behaviour improvement through dispersion of few layer graphene oxide. , 2014, Journal of nanoscience and nanotechnology.
[66] A. Ismail,et al. Improving performance and antifouling capability of PES UF membranes via blending with highly hydrophilic hydrous manganese dioxide nanoparticles , 2014 .
[67] Dennis Eggett,et al. The Influence of Risk Perception on Biosafety Level-2 Laboratory Workers’ Hand-To-Face Contact Behaviors , 2014, Journal of occupational and environmental hygiene.
[68] Adriano Brandelli,et al. Anti-adhesion and antibacterial activity of silver nanoparticles supported on graphene oxide sheets. , 2014, Colloids and surfaces. B, Biointerfaces.
[69] M. Ansari,et al. Antibiofilm efficacy of silver nanoparticles against biofilm of extended spectrum β-lactamase isolates of Escherichia coli and Klebsiella pneumoniae , 2014, Applied Nanoscience.
[70] Ying Huang,et al. One-pot simplified co-precipitation synthesis of reduced graphene oxide/Fe3O4 composite and its microwave electromagnetic properties , 2013 .
[71] Haihong Li,et al. Characterization of adhesin genes, staphylococcal nuclease, hemolysis, and biofilm formation among Staphylococcus aureus strains isolated from different sources. , 2013, Foodborne pathogens and disease.
[72] G. James,et al. Anti-biofilm activity of silver nanoparticles against different microorganisms , 2013, Biofouling.
[73] P. Cochat,et al. Et al , 2008, Archives de pediatrie : organe officiel de la Societe francaise de pediatrie.
[74] Zuzer H Dhoondia,et al. Lactobacillus Mediated Synthesis of Silver Oxide Nanoparticles , 2012 .
[75] Jing Kong,et al. Antibacterial activity of graphite, graphite oxide, graphene oxide, and reduced graphene oxide: membrane and oxidative stress. , 2011, ACS nano.
[76] W. Lu,et al. Improved synthesis of graphene oxide. , 2010, ACS nano.
[77] Chunhai Fan,et al. Graphene-based antibacterial paper. , 2010, ACS nano.
[78] P. Feng,et al. Fabrication and characterization of few-layer graphene , 2010 .
[79] R. Ruoff,et al. The chemistry of graphene oxide. , 2010, Chemical Society reviews.
[80] Ying Ying Wang,et al. Raman spectroscopy and imaging of graphene , 2008, 0810.2836.
[81] A. Goffeau. Drug resistance: The fight against fungi , 2008, Nature.
[82] M. Wilczynski. Anti‐Microbial Porcelain Enamels , 2008 .
[83] B. Foxman,et al. Escherichia coli mediated urinary tract infections: are there distinct uropathogenic E. coli (UPEC) pathotypes? , 2005, FEMS microbiology letters.
[84] Jo‐Shu Chang,et al. The steam reforming of naphthalene over a nickel-dolomite cracking catalyst. , 2005 .
[85] S. Furukawa,et al. Estimation of the biofilm formation of Escherichia coli K-12 by the cell number. , 2005, Journal of bioscience and bioengineering.
[86] J. Vázquez-Boland,et al. Microbial pathogenesis. , 1999, International microbiology : the official journal of the Spanish Society for Microbiology.
[87] A. Bisno,et al. Adherence of slime-producing strains of Staphylococcus epidermidis to smooth surfaces , 1982, Infection and immunity.
[88] M. M. Bradford. A rapid and sensitive method for the quantitation of microgram quantities of protein utilizing the principle of protein-dye binding. , 1976, Analytical biochemistry.