Amperometric Biosensors Based on Recombinant Bacterial Laccase CotA for Hydroquinone Determination
暂无分享,去创建一个
Wenming Zhang | Aiyong He | Jiangfeng Ma | Min Jiang | Weiliang Dong | Fengxue Xin | Hao Wu | M. Jiang | Jiangfeng Ma | Jie Zhou | F. Xin | Wenming Zhang | W. Dong | Jie Zhou | Yue Zhang | Ziyao Lv | Yue Zhang | N. Xu | Hao Wu | Ai-yong He | Ziyao Lv | Yan Fang | Ning Xu | Fang Yan
[1] M. A. Carrondo,et al. Crystal Structure of a Bacterial Endospore Coat Component , 2003, Journal of Biological Chemistry.
[2] D. Barceló,et al. Laccase-based biosensors for detection of phenolic compounds , 2015 .
[3] Joseph Wang. Carbon‐Nanotube Based Electrochemical Biosensors: A Review , 2005 .
[4] E. Farinas,et al. Directed evolution of CotA laccase for increased substrate specificity using Bacillus subtilis spores. , 2010, Protein engineering, design & selection : PEDS.
[5] H. Sakuraba,et al. Bilirubin Oxidase Activity of Bacillus subtilis CotA , 2006, Applied and Environmental Microbiology.
[6] A. Castoldi,et al. Direct Analysis of Phenol, Catechol and Hydroquinone in Human Urine by Coupled-Column HPLC with Fluorimetric Detection , 2005 .
[7] M. Jiang,et al. Surface Display of Bacterial Laccase CotA on Escherichia coli Cells and its Application in Industrial Dye Decolorization , 2018, Molecular Biotechnology.
[8] S. Moldoveanu,et al. Gas chromatography/mass spectrometry versus liquid chromatography/fluorescence detection in the analysis of phenols in mainstream cigarette smoke. , 2007, Journal of chromatography. A.
[9] Lan Wang,et al. Electrochemical sensing of catechol using a glassy carbon electrode modified with a composite made from silver nanoparticles, polydopamine, and graphene , 2013, Microchimica Acta.
[10] Anm Fakhruddin,et al. Recent advances in the development of biosensor for phenol: a review , 2012, Reviews in Environmental Science and Bio/Technology.
[11] Andrew D. Griffiths,et al. Immobilization of CotA, an extremophilic laccase from Bacillus subtilis, on glassy carbon electrodes for biofuel cell applications , 2011 .
[12] J. Fei,et al. Reversible Switched pH‐Responsive Hydroquinone Electrochemical Sensor Based on Composite Film of Polystyrene‐ b ‐Poly (Acrylic Acid) and Graphene Oxide , 2018, Electroanalysis.
[13] U. Jadhav,et al. Biodegradation of disperse textile dye Brown 3REL by newly isolated Bacillus sp. VUS , 2008, Journal of applied microbiology.
[14] W. Schuhmann,et al. The Thermophilic CotA Laccase from Bacillus subtilis: Bioelectrocatalytic Evaluation of O2 Reduction in the Direct and Mediated Electron Transfer Regime , 2011 .
[15] Ram Chandra,et al. Properties of bacterial laccases and their application in bioremediation of industrial wastes. , 2015, Environmental science. Processes & impacts.
[16] J. Ihssen,et al. Bacillus pumilus laccase: a heat stable enzyme with a wide substrate spectrum , 2011, BMC biotechnology.
[17] Chong Zhang,et al. Heterologous production of a temperature and pH-stable laccase from Bacillus vallismortis fmb-103 in Escherichia coli and its application , 2017 .
[18] E. Loffredo,et al. Biodecontamination of water from bisphenol A using ligninolytic fungi and the modulation role of humic acids. , 2012, Ecotoxicology and environmental safety.
[19] N. Durán,et al. Effects of fungal laccase immobilization procedures for the development of a biosensor for phenol compounds. , 2001, Talanta.
[20] Carlos Ricardo Soccol,et al. Downstream process development in biotechnological itaconic acid manufacturing , 2016, Applied Microbiology and Biotechnology.
[21] F. Pariente,et al. Laccase biosensors based on different enzyme immobilization strategies for phenolic compounds determination. , 2013, Talanta.
[22] Manuela M. Pereira,et al. Proximal mutations at the type 1 copper site of CotA laccase: spectroscopic, redox, kinetic and structural characterization of I494A and L386A mutants. , 2008, The Biochemical journal.
[23] P. Baldrian. Fungal laccases - occurrence and properties. , 2006, FEMS microbiology reviews.
[24] R. Antiochia,et al. Electrochemical Characterization of Graphene and MWCNT Screen-Printed Electrodes Modified with AuNPs for Laccase Biosensor Development , 2015, Nanomaterials.
[25] A. Danchin,et al. CotA of Bacillus subtilis Is a Copper-Dependent Laccase , 2001, Journal of bacteriology.
[26] A. Mulchandani,et al. Electrochemical properties of seamless three-dimensional carbon nanotubes-grown graphene modified with horseradish peroxidase. , 2016, Bioelectrochemistry.
[27] A. Griffiths,et al. Membraneless glucose/O2 microfluidic biofuel cells using covalently bound enzymes. , 2013, Chemical communications.
[28] Qingji Xie,et al. Biofuel cell and phenolic biosensor based on acid-resistant laccase-glutaraldehyde functionalized chitosan-multiwalled carbon nanotubes nanocomposite film. , 2009, Biosensors & bioelectronics.
[29] Dawei Li,et al. NiCu Alloy Nanoparticle-Loaded Carbon Nanofibers for Phenolic Biosensor Applications , 2015, Sensors.
[30] O. Chailapakul,et al. Flow injection amperometric sensor with a carbon nanotube modified screen printed electrode for determination of hydroquinone. , 2016, Talanta.
[31] V. Faraco,et al. Laccases: a never-ending story , 2010, Cellular and Molecular Life Sciences.
[32] Xingjiu Huang,et al. Electropolymerized surface ion imprinting films on a gold nanoparticles/single-wall carbon nanotube nanohybrids modified glassy carbon electrode for electrochemical detection of trace mercury(II) in water. , 2012, Analytica chimica acta.
[33] Q. Wei,et al. Biosensor based on bacterial cellulose-Au nanoparticles electrode modified with laccase for hydroquinone detection , 2016 .
[34] Chunzhong Li,et al. Electrocatalytic Oxidation of Glucose by the Glucose Oxidase Immobilized in Graphene‐Au‐Nafion Biocomposite , 2010 .
[35] T. Lundell,et al. Thermotolerant and thermostable laccases , 2009, Biotechnology Letters.
[36] Chen-Zhong Li,et al. Membraneless enzymatic biofuel cells based on graphene nanosheets. , 2010, Biosensors & bioelectronics.