The Use of Screen-Printed Electrodes in a Proof of Concept Electrochemical Estimation of Homocysteine and Glutathione in the Presence of Cysteine Using Catechol
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Richard G. Compton | Patricia T. Lee | Denise Lowinsohn | R. Compton | Patricia T. Lee | D. Lowinsohn | Denise Lowinsohn
[1] Mi Lin,et al. Differential Pulse Voltammetric Determination of L-Cysteine After Cyclic Voltammetry in Presence of Catechol with Glassy Carbon Electrode , 2012 .
[2] G Siest,et al. Blood and plasma glutathione measured in healthy subjects by HPLC: relation to sex, aging, biological variables, and life habits. , 1995, Clinical chemistry.
[3] Y V Tcherkas,et al. Simultaneous determination of several amino acids, including homocysteine, cysteine and glutamic acid, in human plasma by isocratic reversed-phase high-performance liquid chromatography with fluorimetric detection. , 2001, Journal of chromatography. A.
[4] R. Compton,et al. Effects of thin-layer diffusion in the electrochemical detection of nicotine on basal plane pyrolytic graphite (BPPG) electrodes modified with layers of multi-walled carbon nanotubes (MWCNT-BPPG) , 2010 .
[5] P. Houzé,et al. Simultaneous determination of total plasma glutathione, homocysteine, cysteinylglycine, and methionine by high‐performance liquid chromatography with electrochemical detection , 2001, Journal of clinical laboratory analysis.
[6] Hu-lin Li,et al. Electrocatalytic and Analytical Responses of 10-Methylphenothiazine Toward Reduced Glutathione , 2000 .
[7] Danila Moscone,et al. Carbon Black‐Modified Screen‐Printed Electrodes as Electroanalytical Tools , 2012 .
[8] S. Mannino,et al. Electrochemical Reduction of Ellman's Reagent : A Novel Selective Detection Protocol for Thiol Compounds , 2007 .
[9] Danila Moscone,et al. Hg2+ detection by measuring thiol groups with a highly sensitive screen-printed electrode modified with a nanostructured carbon black film , 2011 .
[10] W. Dungchai,et al. Selective determination of homocysteine levels in human plasma using a silver nanoparticle-based colorimetric assay. , 2011, Talanta.
[11] J. Richie,et al. The determination of glutathione, cyst(e)ine, and other thiols and disulfides in biological samples using high-performance liquid chromatography with dual electrochemical detection. , 1987, Analytical biochemistry.
[12] J. Raoof,et al. Simultaneous electrochemical determination of glutathione and tryptophan on a nano-TiO2/ferrocene carboxylic acid modified carbon paste electrode , 2009 .
[13] Wilfred Chen,et al. Ormosil Encapsulated Pyrroloquinoline Quinone‐Modified Electrochemical Sensor for Thiols , 2004 .
[14] R. Strongin,et al. Electrochemical detection of glutathione using redox indicators. , 2006, Analytical chemistry.
[15] Liping Guo,et al. Application of electrochemical properties of ordered mesoporous carbon to the determination of glutathione and cysteine. , 2009, Analytical biochemistry.
[16] P. C. White,et al. An electrochemical adaptation of Ellman's test. , 2002, In Analysis.
[17] R. Compton,et al. Cyclic voltammetry on electrode surfaces covered with porous layers: An analysis of electron transfer kinetics at single-walled carbon nanotube modified electrodes , 2008 .
[18] Mehmet Aslanoglu,et al. Voltammetric selectivity conferred by the modification of electrodes using conductive porous layers or films: The oxidation of dopamine on glassy carbon electrodes modified with multiwalled carbon nanotubes , 2010 .
[19] Joseph Wang,et al. Carbon nanotube screen-printed electrochemical sensors. , 2004, The Analyst.
[20] John P. Hart,et al. Chemically modified, carbon-based electrodes and their application as electrochemical sensors for the analysis of biologically important compounds. A review , 1992 .
[21] J. Richie,et al. Status of glutathione and other thiols and disulfides in human plasma. , 2000, Biochemical pharmacology.
[22] D. Rabenstein,et al. Determination of cysteine in plasma and urine and homocysteine in plasma by high-pressure liquid chromatography. , 1978, Analytical biochemistry.
[23] N. Lawrence,et al. ELECTROCHEMICAL DETECTION OF GLUTATHIONE: AN ELECTROCHEMICALLY INITIATED REACTION PATHWAY , 2002 .
[24] T. Inoue,et al. Electrochemical detection of thiols with a coenzyme pyrroloquinoline quinone modified electrode. , 2000, Analytical chemistry.
[25] E. Podell,et al. Elevation of total homocysteine in the serum of patients with cobalamin or folate deficiency detected by capillary gas chromatography-mass spectrometry. , 1988, The Journal of clinical investigation.
[26] Heyou Han,et al. Electrochemical determination of thiols at single-wall carbon nanotubes and PQQ modified electrodes. , 2005, Frontiers in bioscience : a journal and virtual library.
[27] R. Compton,et al. Electrochemical Detection of NADH, Cysteine, or Glutathione Using a Caffeic Acid Modified Glassy Carbon Electrode , 2013 .
[28] M. Mazloum‐Ardakani,et al. Selective and Simultaneous Voltammetric Determination of Glutathione, Uric Acid and Penicillamine by a Modified Carbon Nanotube Paste Electrode , 2013 .
[29] Jyh-Myng Zen,et al. Disposable electrochemical sensors: A mini review , 2014 .
[30] P. C. White,et al. Electrochemically Driven Derivatisation-Detection of Cysteine , 2001 .
[31] P. Ueland,et al. Determination of the in vivo redox status of cysteine, cysteinylglycine, homocysteine, and glutathione in human plasma. , 1992, Analytical biochemistry.
[32] D. Spitz,et al. Analysis of glutathione, glutathione disulfide, cysteine, homocysteine, and other biological thiols by high-performance liquid chromatography following derivatization by n-(1-pyrenyl)maleimide. , 1995, Analytical biochemistry.
[33] Kristopher R. Ward,et al. Electrochemical Detection of Glutathione Using a Poly(caffeic acid) Nanocarbon Composite Modified Electrode , 2014 .
[34] Richard B. Brown,et al. Screen printing: a technology for the batch fabrication of integrated chemical-sensor arrays , 1995 .
[35] R. Compton,et al. Electrochemical determination of glutathione: a review. , 2012, The Analyst.
[36] R. Adams,et al. Determination of reduced glutathione in guinea pig and rat tissue by HPLC with electrochemical detection. , 1978, Life sciences.
[37] T. Toyo’oka,et al. Recent advances in separation and detection methods for thiol compounds in biological samples. , 2009, Journal of chromatography. B, Analytical technologies in the biomedical and life sciences.
[38] M. Stanton,et al. Homocysteine and cardiovascular disease , 2011 .
[39] C. Cha,et al. Electrochemical determination of reduced glutathione (GSH) by applying the powder microelectrode technique , 2006 .
[40] Richard G. Compton,et al. Electrochemical Determination of Thiols: A Perspective , 2002 .
[41] D. Nematollahi,et al. Selective electrochemical determination of homocysteine in the presence of cysteine and glutathione , 2014 .
[42] Dennis C. Johnson,et al. Pulsed electrochemical detection of cysteine, cystine, methionine, and glutathione at gold electrodes following their separation by liquid chromatography , 1993 .
[43] L. Mao,et al. Rational attachment of synthetic triptycene orthoquinone onto carbon nanotubes for electrocatalysis and sensitive detection of thiols. , 2005, Analytical chemistry.
[44] F. Carvalho,et al. Glutathione and cysteine measurement in biological samples by HPLC with a glassy carbon working detector. , 1994, Biomedical chromatography : BMC.
[45] R. Compton,et al. The selective electrochemical detection of homocysteine in the presence of glutathione, cysteine, and ascorbic acid using carbon electrodes. , 2014, The Analyst.
[46] R. Compton,et al. Mass transport to and within porous electrodes. Linear sweep voltammetry and the effects of pore size: The prediction of double peaks for a single electrode process , 2012, Russian Journal of Electrochemistry.
[47] B. Hultberg,et al. The cell-damaging effects of low amounts of homocysteine and copper ions in human cell line cultures are caused by oxidative stress. , 1997, Toxicology.
[48] P. C. White,et al. Electrochemically initiated 1,4 additions: a versatile route to the determination of thiols , 2001 .
[49] Dean P. Jones,et al. Redox state of glutathione in human plasma. , 2000, Free radical biology & medicine.
[50] R. Compton,et al. Electroanalytical Exploitation of Nitroso Phenyl Modified Carbon-Thiol Interactions: Application to the Low Voltage Determination of Thiols , 2007 .
[51] B. Fanburg,et al. Regulation of cellular glutathione. , 1989, The American journal of physiology.
[52] G. Federici,et al. Fully automated assay for total homocysteine, cysteine, cysteinylglycine, glutathione, cysteamine, and 2-mercaptopropionylglycine in plasma and urine. , 1998, Clinical chemistry.
[53] S. Threlfell,et al. Electroanalytical exploitation of quinone-thiol interactions: application to the selective determination of cysteine. , 2001, The Analyst.
[54] R. Głowacki,et al. Analysis of urine for cysteine, cysteinylglycine, and homocysteine by high-performance liquid chromatography , 2006, Analytical and bioanalytical chemistry.