Synergism of Water Shock and a Biocompatible Block Copolymer Potentiates the Antibacterial Activity of Graphene Oxide.
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Li Wei | Kunli Goh | Rongrong Jiang | Chenjie Xu | Christian Wiraja | Yuan Chen | Christian Wiraja | Chenjie Xu | H. Karahan | Li Wei | Kunli Goh | Jun Wei | Yuan Chen | Rongrong Jiang | Jun Wei | H Enis Karahan | Zhe Liu | Zhe Liu
[1] J. Dubochet,et al. Cryo-Transmission Electron Microscopy of Frozen-Hydrated Sections of Escherichia coli and Pseudomonas aeruginosa , 2003, Journal of bacteriology.
[2] S. Levy,et al. Molecular Mechanisms of Antibacterial Multidrug Resistance , 2007, Cell.
[3] Christy L Haynes,et al. Cytotoxicity of graphene oxide and graphene in human erythrocytes and skin fibroblasts. , 2011, ACS applied materials & interfaces.
[4] H. Goossens,et al. Antibiotic resistance—the need for global solutions , 2013, BDJ.
[5] J. Handzlik,et al. Strategies for bypassing the membrane barrier in multidrug resistant Gram‐negative bacteria , 2011, FEBS letters.
[6] P. Alexandridis,et al. Osmotic Stress Measurements of Intermolecular Forces in Ordered Assemblies Formed by Solvated Block Copolymers , 2004 .
[7] Haitao Liu,et al. Availability of the basal planes of graphene oxide determines whether it is antibacterial. , 2014, ACS applied materials & interfaces.
[8] Anaïs Pitto‐Barry,et al. Pluronic® block-copolymers in medicine: from chemical and biological versatility to rationalisation and clinical advances , 2014 .
[9] C. Winslow,et al. THE VIABILITY OF VARIOUS SPECIES OF BACTERIA IN AQUEOUS SUSPENSIONS , 1927, Journal of bacteriology.
[10] Jing Kong,et al. Antibacterial activity of graphite, graphite oxide, graphene oxide, and reduced graphene oxide: membrane and oxidative stress. , 2011, ACS nano.
[11] K. Krishnamoorthy,et al. Graphene oxide nanopaint , 2014 .
[12] Juan-Yu Yang,et al. Highly stable and dispersive silver nanoparticle-graphene composites by a simple and low-energy-consuming approach and their antimicrobial activity. , 2013, Small.
[13] D. Pink,et al. Thickness and Elasticity of Gram-Negative Murein Sacculi Measured by Atomic Force Microscopy , 1999, Journal of bacteriology.
[14] Cher Ming Tan,et al. Antibacterial action of dispersed single-walled carbon nanotubes on Escherichia coli and Bacillus subtilis investigated by atomic force microscopy. , 2010, Nanoscale.
[15] P. Alexandridis,et al. Temperature-Dependent Adsorption of Pluronic F127 Block Copolymers onto Carbon Black Particles Dispersed in Aqueous Media , 2002 .
[16] Longhai Piao,et al. Effect of Pluronic block copolymers on aqueous dispersions of graphene oxide , 2015 .
[17] M. Tilby,et al. Bypass of receptor-mediated resistance to colicin E3 in Escherichia coli K-12 , 1978, Journal of bacteriology.
[18] Agnes B Kane,et al. Biological interactions of graphene-family nanomaterials: an interdisciplinary review. , 2012, Chemical research in toxicology.
[19] H. C. van der Mei,et al. Adsorption of pluronic F-127 on surfaces with different hydrophobicities probed by quartz crystal microbalance with dissipation. , 2009, Langmuir : the ACS journal of surfaces and colloids.
[20] Mark C Hersam,et al. Minimizing oxidation and stable nanoscale dispersion improves the biocompatibility of graphene in the lung. , 2011, Nano letters.
[21] Hong Wang,et al. Acetone-induced graphene oxide film formation at the water-air interface. , 2013, Chemistry, an Asian journal.
[22] Donald R McCrimmon,et al. Biocompatible nanoscale dispersion of single-walled carbon nanotubes minimizes in vivo pulmonary toxicity. , 2010, Nano letters.
[23] T. Camesano,et al. Atomic force microscopy study of the role of LPS O‐antigen on adhesion of E. coli , 2009, Journal of molecular recognition : JMR.
[24] Deepthy Menon,et al. Hemocompatibility and macrophage response of pristine and functionalized graphene. , 2012, Small.
[25] R. Advíncula,et al. On the antibacterial mechanism of graphene oxide (GO) Langmuir-Blodgett films. , 2015, Chemical communications.
[26] M. Record,et al. Responses of E. coli to osmotic stress: large changes in amounts of cytoplasmic solutes and water. , 1998, Trends in biochemical sciences.
[27] R. Phillips,et al. The Rate of Osmotic Downshock Determines the Survival Probability of Bacterial Mechanosensitive Channel Mutants , 2014, Journal of bacteriology.
[28] J. Otter,et al. The Role Played by Contaminated Surfaces in the Transmission of Nosocomial Pathogens , 2011, Infection Control & Hospital Epidemiology.
[29] Kostas Kostarelos,et al. Safety considerations for graphene: lessons learnt from carbon nanotubes. , 2013, Accounts of chemical research.
[30] Hongbo Zeng,et al. Understanding the molecular interactions of lipopolysaccharides during E. coli initial adhesion with a surface forces apparatus , 2011 .
[31] D. Rodrigues,et al. Toxicity of a polymer-graphene oxide composite against bacterial planktonic cells, biofilms, and mammalian cells. , 2012, Nanoscale.
[32] H. Neu,et al. The release of enzymes from Escherichia coli by osmotic shock and during the formation of spheroplasts. , 1965, The Journal of biological chemistry.
[33] R. Schneider,et al. Cell Surface Analysis Techniques: What Do Cell Preparation Protocols Do to Cell Surface Properties? , 1999, Applied and Environmental Microbiology.
[34] Lih-Yuan Lin,et al. Single-walled carbon nanotube coated antibacterial paper: preparation and mechanistic study. , 2013, Journal of materials chemistry. B.
[35] Bong Jin Hong,et al. Successful stabilization of graphene oxide in electrolyte solutions: enhancement of biofunctionalization and cellular uptake. , 2012, ACS nano.
[36] Jing Kong,et al. Lateral dimension-dependent antibacterial activity of graphene oxide sheets. , 2012, Langmuir : the ACS journal of surfaces and colloids.
[37] M. Quinn,et al. Cleaning and disinfecting environmental surfaces in health care: Toward an integrated framework for infection and occupational illness prevention. , 2015, American journal of infection control.
[38] Fernão D Magalhães,et al. Graphene-based materials biocompatibility: a review. , 2013, Colloids and surfaces. B, Biointerfaces.
[39] N. Vázquez-Laslop,et al. Molecular Sieve Mechanism of Selective Release of Cytoplasmic Proteins by Osmotically Shocked Escherichia coli , 2001, Journal of bacteriology.
[40] A. L. Koch,et al. Elasticity of the sacculus of Escherichia coli , 1992, Journal of bacteriology.
[41] K. Rice,et al. Molecular Control of Bacterial Death and Lysis , 2008, Microbiology and Molecular Biology Reviews.
[42] T. McIntosh,et al. Hydration force and bilayer deformation: a reevaluation. , 1986, Biochemistry.
[43] V. Parsegian,et al. Measurement of forces between lecithin bilayers , 1976, Nature.
[44] Farid Ahmed,et al. Antimicrobial graphene polymer (PVK-GO) nanocomposite films. , 2011, Chemical communications.
[45] Haiping Fang,et al. Destructive extraction of phospholipids from Escherichia coli membranes by graphene nanosheets. , 2013, Nature nanotechnology.
[46] P. Giesbrecht,et al. Staphylococcal Cell Wall: Morphogenesis and Fatal Variations in the Presence of Penicillin , 1998, Microbiology and Molecular Biology Reviews.
[47] A. Ganguli,et al. Enhanced functionalization of Mn2O3@SiO2 core-shell nanostructures , 2011, Nanoscale research letters.
[48] R. Marquis,et al. Elastic, flexible peptidoglycan and bacterial cell wall properties. , 1994, Trends in microbiology.
[49] L. D. Britt,et al. Immobilizing live Escherichia coli for AFM studies of surface dynamics. , 2014, Ultramicroscopy.
[50] Frederick Sachs,et al. Atomic force microscopy analysis of cell volume regulation. , 2008, Physical review. E, Statistical, nonlinear, and soft matter physics.
[51] J. Andrews,et al. Determination of minimum inhibitory concentrations. , 2001, The Journal of antimicrobial chemotherapy.
[52] R. Folk,et al. Poisson‐Voronoi核形成と成長変形における分域構造の時間発展:一次元と三次元の結果 , 2008 .
[53] V A Parsegian,et al. Osmotic stress, crowding, preferential hydration, and binding: A comparison of perspectives. , 2000, Proceedings of the National Academy of Sciences of the United States of America.
[54] Christian Melander,et al. Combination approaches to combat multidrug-resistant bacteria. , 2013, Trends in biotechnology.
[55] L. Leive. THE BARRIER FUNCTION OF THE GRAM‐NEGATIVE ENVELOPE , 1974, Annals of the New York Academy of Sciences.
[56] Menachem Elimelech,et al. Single-walled carbon nanotubes exhibit strong antimicrobial activity. , 2007, Langmuir : the ACS journal of surfaces and colloids.
[57] Yang Xu,et al. Cytotoxicity effects of graphene and single-wall carbon nanotubes in neural phaeochromocytoma-derived PC12 cells. , 2010, ACS nano.
[58] Menachem Elimelech,et al. Thin-Film Composite Polyamide Membranes Functionalized with Biocidal Graphene Oxide Nanosheets , 2014 .
[59] I. Booth,et al. Managing hypoosmotic stress: aquaporins and mechanosensitive channels in Escherichia coli. , 1999, Current opinion in microbiology.
[60] S. J. Foster,et al. Effect of osmotic shock on tetracycline resistance in Escherichia coli bearing an R-factor. , 1971, The Biochemical journal.
[61] P. Tran,et al. Nanomaterial-based treatments for medical device-associated infections. , 2012, Chemphyschem : a European journal of chemical physics and physical chemistry.
[62] Young Jik Kwon,et al. "Nanoantibiotics": a new paradigm for treating infectious diseases using nanomaterials in the antibiotics resistant era. , 2011, Journal of controlled release : official journal of the Controlled Release Society.
[63] Andreas Janshoff,et al. Membrane stiffness of animal cells challenged by osmotic stress. , 2006, Small.
[64] Y. Anraku,et al. On the nature of the changes induced in Escherichia coli by osmotic shock. , 1967, Journal of Biological Chemistry.
[65] Xiaogang Qu,et al. Graphene quantum dots-band-aids used for wound disinfection. , 2014, ACS nano.
[66] J. Oxford,et al. Treatment of epidemic and pandemic influenza with neuraminidase and M2 proton channel inhibitors. , 2003, Clinical microbiology and infection : the official publication of the European Society of Clinical Microbiology and Infectious Diseases.
[67] Chunhai Fan,et al. Graphene-based antibacterial paper. , 2010, ACS nano.
[68] D. Dryden,et al. Mechanosensitive channels and bacterial cell wall integrity: does life end with a bang or a whimper? , 2014, Journal of The Royal Society Interface.
[69] R. Avci,et al. Bacteria survive multiple puncturings of their cell walls. , 2009, Langmuir : the ACS journal of surfaces and colloids.
[70] A. Herrmann,et al. Water-Mediated Effects of PEG on Membrane Properties and Fusion , 1988 .
[71] Li Wei,et al. Sharper and faster "nano darts" kill more bacteria: a study of antibacterial activity of individually dispersed pristine single-walled carbon nanotube. , 2009, ACS nano.
[72] R. Hancock,et al. Agar and broth dilution methods to determine the minimal inhibitory concentration (MIC) of antimicrobial substances , 2008, Nature Protocols.
[73] Omid Akhavan,et al. Toxicity of graphene and graphene oxide nanowalls against bacteria. , 2010, ACS nano.
[74] Simon V. Avery,et al. Microbial cell individuality and the underlying sources of heterogeneity , 2006, Nature Reviews Microbiology.
[75] A. Zehnder,et al. Adsorption of bacterial surface polysaccharides on mineral oxides is mediated by hydrogen bonds , 1997 .
[76] Liju Yang,et al. Antimicrobial activity of single-walled carbon nanotubes: length effect. , 2010, Langmuir : the ACS journal of surfaces and colloids.
[77] Yong-Chien Ling,et al. Graphene-based photothermal agent for rapid and effective killing of bacteria. , 2013, ACS nano.
[78] Heyou Han,et al. Graphene oxide exhibits broad-spectrum antimicrobial activity against bacterial phytopathogens and fungal conidia by intertwining and membrane perturbation. , 2014, Nanoscale.
[79] Haiqing Dong,et al. Engineering of a novel pluronic F127/graphene nanohybrid for pH responsive drug delivery. , 2012, Journal of biomedical materials research. Part A.
[80] Sang-Jae Kim,et al. Antibacterial Activity of Graphene Oxide Nanosheets , 2012 .
[81] H. Sahl,et al. Susceptibility of bacterial, eukaryotic and artificial membranes to the disruptive action of the cationic peptides Pep 5 and nisin , 1986 .
[82] Z. Chai,et al. Broad-spectrum antibacterial activity of carbon nanotubes to human gut bacteria. , 2013, Small.
[83] Ying Liu,et al. The triggering of apoptosis in macrophages by pristine graphene through the MAPK and TGF-beta signaling pathways. , 2012, Biomaterials.
[84] Menachem Elimelech,et al. Role of Cell Surface Lipopolysaccharides in Escherichia coli K12 adhesion and transport. , 2004, Langmuir : the ACS journal of surfaces and colloids.
[85] B. Ryall,et al. Culture History and Population Heterogeneity as Determinants of Bacterial Adaptation: the Adaptomics of a Single Environmental Transition , 2012, Microbiology and Molecular Reviews.
[86] K. Arnold,et al. Molecular Mechanisms of Membrane Fusion , 1988, Springer US.
[87] Kai Yang,et al. Behavior and toxicity of graphene and its functionalized derivatives in biological systems. , 2013, Small.