Self-disinfecting and microbiocide-impregnated surfaces and fabrics: what potential in interrupting the spread of healthcare-associated infection?
暂无分享,去创建一个
[1] K. Oana,et al. Bactericidal activities of woven cotton and nonwoven polypropylene fabrics coated with hydroxyapatite-binding silver/titanium dioxide ceramic nanocomposite “Earth-plus” , 2011, International journal of nanomedicine.
[2] H Humphreys,et al. Is it really clean? An evaluation of the efficacy of four methods for determining hospital cleanliness. , 2009, The Journal of hospital infection.
[3] Ravi S Kane,et al. Antifouling Coatings: Recent Developments in the Design of Surfaces That Prevent Fouling by Proteins, Bacteria, and Marine Organisms , 2011, Advanced materials.
[4] B. Cookson,et al. The Antimicrobial Efficacy of Copper Alloy Furnishing in the Clinical Environment: A Crossover Study , 2012, Infection Control & Hospital Epidemiology.
[5] S. Sattar. Promises and pitfalls of recent advances in chemical means of preventing the spread of nosocomial infections by environmental surfaces. , 2010, American journal of infection control.
[6] Mohan V. Jacob,et al. Efficient surface modification of biomaterial to prevent biofilm formation and the attachment of microorganisms , 2012, Applied Microbiology and Biotechnology.
[7] K. Sepkowitz,et al. Sustained Reduction of Microbial Burden on Common Hospital Surfaces through Introduction of Copper , 2012, Journal of Clinical Microbiology.
[8] C. Keevil,et al. Survival of Clostridium difficile on copper and steel: futuristic options for hospital hygiene. , 2008, The Journal of hospital infection.
[9] A. Dalpke,et al. Inactivation of LPS and RNase A on photocatalytically active surfaces. , 2011, Chemosphere.
[10] D Adams,et al. Role of copper in reducing hospital environment contamination. , 2010, The Journal of hospital infection.
[11] Michael T. Wilson,et al. Efficacy of a Novel Light-Activated Antimicrobial Coating for Disinfecting Hospital Surfaces , 2011, Infection Control & Hospital Epidemiology.
[12] Gadi Borkow,et al. Putting copper into action: copper‐impregnated products with potent biocidal activities , 2004, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[13] S. Benallaoua,et al. Extended-spectrum beta-lactamase characterisation and heavy metal resistance of Enterobacteriaceae strains isolated from hospital environmental surfaces. , 2010, The Journal of hospital infection.
[14] S. Wilks,et al. The survival of Escherichia coli O157 on a range of metal surfaces. , 2005, International journal of food microbiology.
[15] S. Mehtar,et al. Antimicrobial efficacy of copper touch surfaces in reducing environmental bioburden in a South African community healthcare facility. , 2010, The Journal of hospital infection.
[16] R. Salvarezza,et al. Citrate-capped silver nanoparticles showing good bactericidal effect against both planktonic and sessile bacteria and a low cytotoxicity to osteoblastic cells. , 2013, ACS applied materials & interfaces.
[17] P. Morais,et al. Isolation and Characterization of Bacteria Resistant to Metallic Copper Surfaces , 2010, Applied and Environmental Microbiology.
[18] S. Harbarth,et al. The Environment and Healthcare-Acquired Infections: Why Accurate Reporting and Evaluation of Biological Plausibility Are Important , 2013, Infection Control & Hospital Epidemiology.
[19] P. Carling. Methods for assessing the adequacy of practice and improving room disinfection. , 2013, American journal of infection control.
[20] S. Dancer,et al. How do we assess hospital cleaning? A proposal for microbiological standards for surface hygiene in hospitals , 2003, Journal of Hospital Infection.
[21] European Centre for Disease Prevention and Control swine flu guidelines: 'cough hygienically' into your sleeve? , 2010, The Journal of hospital infection.
[22] J. Otter,et al. The Role Played by Contaminated Surfaces in the Transmission of Nosocomial Pathogens , 2011, Infection Control & Hospital Epidemiology.
[23] P. Carling,et al. Improving environmental hygiene in 27 intensive care units to decrease multidrug-resistant bacterial transmission* , 2010, Critical care medicine.
[24] K. Bright,et al. Rapid reduction of Staphylococcus aureus populations on stainless steel surfaces by zeolite ceramic coatings containing silver and zinc ions. , 2002, The Journal of hospital infection.
[25] D. W. Sheel,et al. Novel antibacterial silver‐silica surface coatings prepared by chemical vapour deposition for infection control , 2013, Journal of applied microbiology.
[26] S. Shepherd,et al. Effect of negative air ions on the potential for bacterial contamination of plastic medical equipment , 2010, BMC infectious diseases.
[27] Nicholas A. Bokulich,et al. Surface Microbes in the Neonatal Intensive Care Unit: Changes with Routine Cleaning and over Time , 2013, Journal of Clinical Microbiology.
[28] Ravi S Kane,et al. Antistaphylococcal nanocomposite films based on enzyme-nanotube conjugates. , 2010, ACS nano.
[29] C. Salgado,et al. Copper Continuously Limits the Concentration of Bacteria Resident on Bed Rails within the Intensive Care Unit , 2013, Infection Control & Hospital Epidemiology.
[30] A. Freeman,et al. The effect of silver impregnation of surgical scrub suits on surface bacterial contamination , 2012, Veterinary journal.
[31] T. Elliott,et al. Antimicrobial efficacy of copper surfaces against spores and vegetative cells of Clostridium difficile: the germination theory. , 2008, The Journal of antimicrobial chemotherapy.
[32] J. Verran,et al. Potential use of copper as a hygienic surface; problems associated with cumulative soiling and cleaning. , 2007, The Journal of hospital infection.
[33] Shaoyi Jiang,et al. Inhibition of bacterial adhesion and biofilm formation on zwitterionic surfaces. , 2007, Biomaterials.
[34] A. Steele,et al. Photocatalytic disinfection using titanium dioxide: spectrum and mechanism of antimicrobial activity , 2011, Applied Microbiology and Biotechnology.
[35] H Humphreys,et al. Microbial monitoring of the hospital environment: why and how? , 2012, The Journal of hospital infection.
[36] H. Humphreys,et al. Application of copper to prevent and control infection. Where are we now? , 2012, The Journal of hospital infection.
[37] G. Shama,et al. The uses and abuses of rapid bioluminescence-based ATP assays. , 2013, International journal of hygiene and environmental health.
[38] C. Keevil,et al. Potential use of copper surfaces to reduce survival of epidemic meticillin-resistant Staphylococcus aureus in the healthcare environment. , 2006, The Journal of hospital infection.
[39] James F. Schumacher,et al. Impact of engineered surface microtopography on biofilm formation of Staphylococcus aureus , 2007, Biointerphases.
[40] M. Zervos,et al. In vitro evaluation of a novel process for reducing bacterial contamination of environmental surfaces. , 2011, American journal of infection control.
[41] C. Robertson,et al. Finding a benchmark for monitoring hospital cleanliness. , 2011, The Journal of hospital infection.
[42] R. Cunney,et al. Transmission of endemic ST22-MRSA-IV on four acute hospital wards investigated using a combination of spa, dru and pulsed-field gel electrophoresis typing , 2012, European Journal of Clinical Microbiology & Infectious Diseases.
[43] K. Sepkowitz,et al. Copper Surfaces Reduce the Rate of Healthcare-Acquired Infections in the Intensive Care Unit , 2013, Infection Control & Hospital Epidemiology.
[44] J. Pratten,et al. Assessment of the Activity of a Novel Light-Activated Antimicrobial Coating in a Clinical Environment , 2008, Infection Control & Hospital Epidemiology.
[45] Ivan P. Parkin,et al. Antimicrobial surfaces and their potential in reducing the role of the inanimate environment in the incidence of hospital-acquired infections , 2009 .
[46] S. O'Hanlon,et al. A novel bactericidal fabric coating with potent in vitro activity against meticillin-resistant Staphylococcus aureus (MRSA). , 2009, International journal of antimicrobial agents.
[47] F. Malcata,et al. Chitosan: antimicrobial action upon staphylococci after impregnation onto cotton fabric , 2012, Journal of applied microbiology.
[48] Christopher Rensing,et al. Metallic Copper as an Antimicrobial Surface , 2010, Applied and Environmental Microbiology.