Penicillin Detection by Tobacco Mosaic Virus-Assisted Colorimetric Biosensors
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Michael J. Schöning | Arshak Poghossian | Christina Wege | M. Schöning | A. Poghossian | C. Wege | Claudia Koch | Claudia Koch
[1] Rimo Xi,et al. Review: Current Development of Immunoassay for Analyzing Veterinary Drug Residue in Foods and Food Products , 2011 .
[2] A. Fleming,et al. On the antibacterial action of cultures of a penicillium, with special reference to their use in the isolation of B. influenzæ , 1929 .
[3] R. J. Henry,et al. Studies on penicillinase; manometric method of assaying penicillinase and penicillin, kinetics of the penicillin-penicillinase reaction, and the effects of inhibitors on penicillinase. , 1947, The Journal of biological chemistry.
[4] E. Katchalski‐Katzir,et al. Immobilized enzymes--learning from past successes and failures. , 1993, Trends in biotechnology.
[5] S. Chapman. Tobamovirus isolation and RNA extraction. , 1998, Methods in molecular biology.
[6] Michael Petz,et al. Recent applications of surface plasmon resonance biosensors for analyzing residues and contaminants in food , 2009 .
[7] R. Ghodssi,et al. Integration of genetically modified virus-like-particles with an optical resonator for selective bio-detection , 2015, Nanotechnology.
[8] M. Rapallini,et al. Screening methods for the detection of antibiotic residues in slaughter animals: comparison of the European Union Four-Plate Test, the Nouws Antibiotic Test and the Premi®Test (applied to muscle and kidney) , 2011, Food additives & contaminants. Part A, Chemistry, analysis, control, exposure & risk assessment.
[9] Jacques Degelaen,et al. Determination of beta-lactams in milk using a surface plasmon resonance-based biosensor. , 2004, Journal of agricultural and food chemistry.
[10] Quantum dot-engineered M13 virus layer-by-layer composite films for highly selective and sensitive turn-on TNT sensors. , 2013, Chemical communications.
[11] Maria Del Pilar Taboada Sotomayor,et al. β-Lactamase-based biosensor for the electrochemical determination of benzylpenicillin in milk , 2015 .
[12] B. Ratna,et al. Virus hybrids as nanomaterials for biotechnology. , 2010, Current opinion in biotechnology.
[13] J. Mcevoy. Contamination of animal feedingstuffs as a cause of residues in food: a review of regulatory aspects, incidence and control , 2002 .
[14] C. Thornsberry,et al. Ampicillin Resistance in Haemophilus influenzae as Determined by a Rapid Test for Beta-Lactamase Production , 1974, Antimicrobial Agents and Chemotherapy.
[15] Fabian J. Eber,et al. TMV nanorods with programmed longitudinal domains of differently addressable coat proteins. , 2013, Nanoscale.
[16] P. Nordmann,et al. Rapid Detection of Extended-Spectrum-β-Lactamase-Producing Enterobacteriaceae , 2012, Journal of Clinical Microbiology.
[17] K. Yeo,et al. Simple method for detecting penicillinase-producing Neisseria gonorrhoeae and Staphylococcus aureus. , 1981, The British journal of venereal diseases.
[18] Wei Xia,et al. Immunosensor for trace penicillin G detection in milk based on supported bilayer lipid membrane modified with gold nanoparticles. , 2015, Journal of biotechnology.
[19] R. J. Henry,et al. Studies on Penicillinase , 1947, Journal of bacteriology.
[20] U. K. Laemmli,et al. Cleavage of Structural Proteins during the Assembly of the Head of Bacteriophage T4 , 1970, Nature.
[21] F. Ricci,et al. A review on novel developments and applications of immunosensors in food analysis. , 2007, Analytica chimica acta.
[22] A. L. Lim,et al. Comparison of methods for the detection of penicillinase-producing Neisseria gonorrhoeae. , 1980, The British journal of venereal diseases.
[23] Jacques Degelaen,et al. Analysis of β-Lactam Antibiotics Using a Microbial Receptor Protein-based Biosensor Assay , 2002 .
[24] William Putzbach,et al. Immobilization Techniques in the Fabrication of Nanomaterial-Based Electrochemical Biosensors: A Review , 2013, Sensors.
[25] K. Sapsford,et al. Molecular electronics based nanosensors on a viral scaffold. , 2011, Biosensors & bioelectronics.
[26] Michael J. Schöning,et al. Tobacco mosaic virus as enzyme nanocarrier for electrochemical biosensors , 2017 .
[27] R. Wise,et al. A comparison of three rapid methods for the detection of beta-lactamase activity in Haemophilus influenzae. , 1977, Journal of clinical pathology.
[28] Jin-Woo Oh,et al. M-13 bacteriophage based structural color sensor for detecting antibiotics , 2017 .
[29] R. Stevanato,et al. Enzyme immobilization: an update , 2013, Journal of chemical biology.
[30] Damià Barceló,et al. Analytical methodologies for the detection of β-lactam antibiotics in milk and feed samples , 2009 .
[31] Rimo Xi,et al. Preparation of anti-pefloxacin antibody and development of an indirect competitive enzyme-linked immunosorbent assay for detection of pefloxacin residue in chicken liver. , 2009, Journal of agricultural and food chemistry.
[32] Fidel Toldrá,et al. Methods for rapid detection of chemical and veterinary drug residues in animal foods , 2006 .
[33] Jian Wang,et al. A low detection limit penicillin biosensor based on single graphene nanosheets preadsorbed with hematein/ionic liquids/penicillinase. , 2014, Materials science & engineering. C, Materials for biological applications.
[34] Brian C. Benicewicz,et al. Tobacco mosaic virus based thin film sensor for detection of volatile organic compounds , 2010 .
[35] W. Knoll,et al. Enzyme-polyelectrolyte multilayer assemblies on reduced graphene oxide field-effect transistors for biosensing applications. , 2017, Biosensors & bioelectronics.
[36] P. Ryu,et al. Public Health Risks: Chemical and Antibiotic Residues - Review - , 2001 .
[37] L. Silver,et al. What is an "ideal" antibiotic? Discovery challenges and path forward. , 2017, Biochemical pharmacology.
[38] C. L. Ventola. The antibiotic resistance crisis: part 1: causes and threats. , 2015, P & T : a peer-reviewed journal for formulary management.
[39] M. Marco,et al. Current bioanalytical methods for detection of penicillins , 2012, Analytical and Bioanalytical Chemistry.
[40] Arshak Poghossian,et al. Penicillin biosensor based on a capacitive field-effect structure functionalized with a dendrimer/carbon nanotube multilayer. , 2009, Biosensors & bioelectronics.
[41] Michael J. Schöning,et al. An ISFET-based penicillin sensor with high sensitivity, low detection limit and long lifetime , 2001 .
[42] Silvana Andreescu,et al. Functional nanostructures for enzyme based biosensors: properties, fabrication and applications. , 2016, Journal of materials chemistry. B.
[43] M. Schöning,et al. Recent advances in biologically sensitive field-effect transistors (BioFETs). , 2002, The Analyst.
[44] M. Webber,et al. Molecular mechanisms of antibiotic resistance , 2014, Nature Reviews Microbiology.
[45] A. Samuni. A direct spectrophotometric assay and determination of Michaelis constants for the beta-lactamase reaction. , 1975, Analytical biochemistry.
[46] S. Ansari,et al. Potential applications of enzymes immobilized on/in nano materials: A review. , 2012, Biotechnology advances.
[47] A. Fleming. Classics in infectious diseases: on the antibacterial action of cultures of a penicillium, with special reference to their use in the isolation of B. influenzae by Alexander Fleming, Reprinted from the British Journal of Experimental Pathology 10:226-236, 1929. , 1980, Reviews of infectious diseases.
[48] Christopher T. Walsh,et al. Antibiotics for Emerging Pathogens , 2009, Science.
[49] Reza Ghodssi,et al. An electrochemical sensor for selective TNT sensing based on Tobacco mosaic virus-like particle binding agents. , 2014, Chemical communications.
[50] M. Pikkemaat,et al. Microbial screening methods for detection of antibiotic residues in slaughter animals , 2009, Analytical and bioanalytical chemistry.
[51] Natasa Jovanović,et al. [Mechanisms of bacterial resistance to antibiotics]. , 2008, Medicinski pregled.
[52] A. Besmehn,et al. Penicillin detection with nanocrystalline‐diamond field‐effect sensor , 2008 .
[53] Y. Ye,et al. Enzyme-based sensing of glucose using a glassy carbon electrode modified with a one-pot synthesized nanocomposite consisting of chitosan, reduced graphene oxide and gold nanoparticles , 2015, Microchimica Acta.
[54] Banahalli R Ratna,et al. Toward single molecule detection of staphylococcal enterotoxin B: mobile sandwich immunoassay on gliding microtubules. , 2008, Analytical chemistry.
[55] Yolanda Picó,et al. Progress in analysis of residual antibacterials in food , 2007 .
[56] A. Saz,et al. STAPHYLOCOCCAL PENICILLINASE I , 1961, Journal of bacteriology.
[57] Peter Krolla-Sidenstein,et al. Modified TMV Particles as Beneficial Scaffolds to Present Sensor Enzymes , 2015, Front. Plant Sci..
[58] K. Haenen,et al. Nanocrystalline-diamond thin films with high pH and penicillin sensitivity prepared on a capacitive Si-SiO2 structure , 2009 .
[59] Chuanbin Mao,et al. Virus-based chemical and biological sensing. , 2009, Angewandte Chemie.
[60] I. Capek. Viral nanoparticles, noble metal decorated viruses and their nanoconjugates. , 2015, Advances in colloid and interface science.
[61] W. J. Perkins,et al. A MICROPHOTOMETRIC METHOD FOR THE ESTIMATION OF PENICILLINASE IN SINGLE BACTERIA. , 1964, Journal of General Microbiology.
[62] Thomas Schimmel,et al. Novel roles for well-known players: from tobacco mosaic virus pests to enzymatically active assemblies , 2016, Beilstein journal of nanotechnology.
[63] Roberto Fernandez-Lafuente,et al. Improvement of enzyme activity, stability and selectivity via immobilization techniques , 2007 .
[64] John E. Johnson,et al. A cowpea mosaic virus nanoscaffold for multiplexed antibody conjugation: application as an immunoassay tracer. , 2006, Biosensors & bioelectronics.
[65] Manish Kumar Tiwari,et al. From Protein Engineering to Immobilization: Promising Strategies for the Upgrade of Industrial Enzymes , 2013, International journal of molecular sciences.
[66] Narsingh R. Nirala,et al. Colorimetric detection of cholesterol based on enzyme modified gold nanoparticles. , 2018, Spectrochimica acta. Part A, Molecular and biomolecular spectroscopy.
[67] Reza Ghodssi,et al. Capillary Microfluidics-Assembled Virus-like Particle Bionanoreceptor Interfaces for Label-Free Biosensing. , 2017, ACS applied materials & interfaces.
[68] T. J. Lucas. An evaluation of 12 methods for the demonstration of penicillinase. , 1979, Journal of clinical pathology.
[69] Young Keun Kim,et al. A highly sensitive and selective diagnostic assay based on virus nanoparticles. , 2009, Nature nanotechnology.
[70] S. Cosnier,et al. Nanomaterials for biosensing applications: a review , 2014, Front. Chem..
[71] N. Citri. Two antigenically different states of active penicillinase. , 1958, Biochimica et biophysica acta.
[72] Ming Ma,et al. An amperometric penicillin biosensor with enhanced sensitivity based on co-immobilization of carbon nanotubes, hematein, and beta-lactamase on glassy carbon electrode. , 2010, Analytica chimica acta.
[73] Wilfred Chen,et al. Protein Nanoparticles as Multifunctional Biocatalysts and Health Assessment Sensors. , 2016, Current opinion in chemical engineering.
[74] Sumitra Datta,et al. Enzyme immobilization: an overview on techniques and support materials , 2012, 3 Biotech.
[75] Alexander Hexemer,et al. Biomimetic virus-based colourimetric sensors , 2014, Nature Communications.
[76] R. Suman,et al. Comparative Study of Three β Lactamase Test Methods in Staphylococcus aureus Isolated from Two Nepalese Hospitals , 2014 .
[77] Ángel Maquieira,et al. Fast screening methods to detect antibiotic residues in food samples , 2010 .
[78] Banahalli R. Ratna,et al. Cowpea mosaic virus nanoscaffold as signal enhancement for DNA microarrays. , 2009, Biosensors & bioelectronics.