A review of current advances in the detection of organophosphorus chemical warfare agents based biosensor approaches
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Farah Nabila Diauudin | Jahwarhar Izuan Abdul Rashid | Victor Feizal Knight | Wan Md Zin Wan Yunus | Keat Khim Ong | Noor Azilah Mohd Kasim | Norhana Abdul Halim | Siti Aminah Mohd Noor | S. Noor | W. Yunus | V. F. Knight | K. K. Ong | N. A. M. Kasim | N. A. Halim | J. I. A. Rashid
[1] P. Gaviña,et al. Triarylcarbinol functionalized gold nanoparticles for the colorimetric detection of nerve agent simulants , 2014 .
[2] Maria Dinescu,et al. MAPLE Assembled Acetylcholinesterase–Polyethylenimine Hybrid and Multilayered Interfaces for Toxic Gases Detection , 2018, Sensors.
[3] M. Jokanović,et al. Medical treatment of acute poisoning with organophosphorus and carbamate pesticides. , 2009, Toxicology letters.
[4] Jiaqiang Xu,et al. Advances in the chemical sensors for the detection of DMMP — A simulant for nerve agent sarin , 2010 .
[5] G P Glasby,et al. Disposal of chemical weapons in the Baltic Sea. , 1997, The Science of the total environment.
[6] D. Jett. Neurological aspects of chemical terrorism , 2007, Annals of neurology.
[7] N. Murafa,et al. Zirconium Doped Titania: Destruction of Warfare Agents and Photocatalytic Degradation of Orange 2 Dye , 2008 .
[8] L. A. Patil,et al. Detection of dimethyl methyl phosphonate – a simulant of sarin: The highly toxic chemical warfare – using platinum activated nanocrystalline ZnO thick films , 2012, Sensors and Actuators B: Chemical.
[9] Santiago Royo,et al. Chromogenic and fluorogenic reagents for chemical warfare nerve agents' detection. , 2007, Chemical communications.
[10] G. L. Hook,et al. Application of headspace solid-phase microextraction and gas chromatography-mass spectrometry for detection of the chemical warfare agent bis(2-chloroethyl) sulfide in soil. , 2002, Journal of chromatography. A.
[11] J. A. Stone,et al. Peer Reviewed: Ion Mobility Spectrometers in National Defense , 2004 .
[12] Nélio José de Andrade,et al. A colorimetric biosensor for the detection of foodborne bacteria , 2011 .
[13] Yuanjie Su,et al. Acetylcholinesterase-reduced graphene oxide hybrid films for organophosphorus neurotoxin sensing via quartz crystal microbalance , 2016 .
[14] E. M. Jakubowski,et al. Immunomagnetic separation and quantification of butyrylcholinesterase nerve agent adducts in human serum. , 2010, Analytical chemistry.
[15] Andrea E. Holmes,et al. The Identification of Seven Chemical Warfare Mimics Using a Colorimetric Array , 2018, Sensors.
[16] H. Parlakpınar,et al. Chemical warfare agents and treatment strategies , 2018 .
[17] R. Hoffman,et al. Nerve Agents: A Comprehensive Review , 2004, Journal of intensive care medicine.
[18] Catherine Petersen,et al. Nanoparticle-based electrochemical immunosensor for the detection of phosphorylated acetylcholinesterase: an exposure biomarker of organophosphate pesticides and nerve agents. , 2008, Chemistry.
[19] Satoshi Kondo,et al. Field-deployable rapid multiple biosensing system for detection of chemical and biological warfare agents , 2018, Microsystems & Nanoengineering.
[20] Homayoun Najjaran,et al. Microfluidics Integrated Biosensors: A Leading Technology towards Lab-on-a-Chip and Sensing Applications , 2015, Sensors.
[21] D. Koch. Field and Laboratory Application of a Gas Chromatograph Low Thermal Mass Resistively Heated Column System in Detecting Traditional and Non-Traditional Chemical Warfare Agents Using Solid Phase Micro-Extraction , 2005 .
[22] DECONTAMINATION OF DMMP BY ADSORPTION ON ZNO, A COMPUTATIONAL STUDY , 2012 .
[23] Mohammad Ali Mohammad,et al. Surface acoustic wave devices for sensor applications , 2016 .
[24] S. Chauhan,et al. Chemical warfare agents. , 2008, Environmental toxicology and pharmacology.
[25] E. Wang,et al. Nanomaterials with enzyme-like characteristics (nanozymes): next-generation artificial enzymes. , 2013, Chemical Society reviews.
[26] Ying Zhu,et al. The Applications and Features of Liquid Chromatography-Mass Spectrometry in the Analysis of Traditional Chinese Medicine , 2016, Evidence-based complementary and alternative medicine : eCAM.
[27] N. Munro. Toxicity of the Organophosphate Chemical Warfare Agents GA, GB, and VX: Implications for Public Protection. , 1994, Environmental health perspectives.
[28] P. Rez,et al. Calculated infrared spectra of nerve agents and simulants. , 2012, Spectrochimica Acta Part A - Molecular and Biomolecular Spectroscopy.
[29] M. Balali-Mood,et al. Recent Advances in the Treatment of Organophosphorous Poisonings , 2012, Iranian journal of medical sciences.
[30] D. Barr,et al. Quantitation of organophosphorus nerve agent metabolites in human urine using isotope dilution gas chromatography-tandem mass spectrometry. , 2002, Journal of analytical toxicology.
[31] E. M. Jakubowski,et al. Quantification of nerve agent VX-butyrylcholinesterase adduct biomarker from an accidental exposure. , 2008, Journal of analytical toxicology.
[32] Thorsten Wagner,et al. Gas Sensing Fundamentals , 2014 .
[33] Gregory P. Harmer,et al. Detection of chemical warfare agents using nanostructured metal oxide sensors , 2005 .
[34] T. Marrs. Organophosphates: History, Chemistry, Pharmacology , 2001 .
[35] M. Sillanpää,et al. Ion mobility spectrometry and its applications in detection of chemical warfare agents. , 2010, Analytical chemistry.
[36] W. Wilson,et al. Surface Plasmon Resonance and Quartz Crystal Microbalance Methods for Detection of Molecular Interactions , 2011 .
[37] A. J. Webb,et al. Detection of the organophosphorus nerve agent VX and its hydrolysis products in white mustard plants grown in contaminated soil , 2013 .
[38] Miroslav Pohanka,et al. Sarin Assay using Acetylcholinesterases and Electrochemical Sensor Strip , 2009 .
[39] Giovanna Marrazza,et al. Piezoelectric Biosensors for Organophosphate and Carbamate Pesticides: A Review , 2014, Biosensors.
[40] V. Pitschmann,et al. New Carrier Made from Glass Nanofibres for the Colorimetric Biosensor of Cholinesterase Inhibitors , 2018, Biosensors.
[41] C E Kientz,et al. Chromatography and mass spectrometry of chemical warfare agents, toxins and related compounds: state of the art and future prospects. , 1998, Journal of chromatography. A.
[42] Anthony T. Tu,et al. Basic Information on Nerve Gas and the Use of Sarin by Aum Shinrikyo--Plenary Lecture at the Biological Mass Spectrometry Conference,Seto,Aichi,Japan,July 3-6,1995 (BMS特集号) -- (化学物質とその不正使用) , 1996 .
[43] Dan Bizzotto,et al. Beyond Simple Cartoons: Challenges in Characterizing Electrochemical Biosensor Interfaces. , 2018, ACS sensors.
[44] Franz L. Dickert,et al. Surface Acoustic Wave (SAW) for Chemical Sensing Applications of Recognition Layers † , 2017, Sensors.
[45] Ghenadii Korotcenkov,et al. Engineering approaches for the improvement of conductometric gas sensor parameters: Part 1. Improvement of sensor sensitivity and selectivity (short survey) , 2013 .
[46] Fei Wang,et al. Fe3O4 magnetic nanoparticle peroxidase mimetic-based colorimetric assay for the rapid detection of organophosphorus pesticide and nerve agent. , 2013, Analytical chemistry.
[47] Zoraida P. Aguilar,et al. Chemical warfare agent detection: a review of current trends and future perspective. , 2013, Frontiers in bioscience.
[48] S.P. Mohanty,et al. Biosensors: a tutorial review , 2006, IEEE Potentials.
[49] M. Yoon,et al. Advances in Anthrax Detection: Overview of Bioprobes and Biosensors , 2015, Applied Biochemistry and Biotechnology.
[50] Jules L. Hammond,et al. Electrochemical biosensors and nanobiosensors , 2016, Essays in biochemistry.
[51] Mohammed Zourob,et al. Ultra-rapid colorimetric assay for protease detection using magnetic nanoparticle-based biosensors. , 2013, The Analyst.
[52] F. Sidell,et al. Agents of chemical warfare: sulfur mustard. , 1992, Annals of emergency medicine.
[53] Sum Huan Ng,et al. Microfluidics biosensor chip with integrated screen-printed electrodes for amperometric detection of nerve agent , 2014 .
[54] Young Je Yoo,et al. A novel organophosphorus hydrolase-based biosensor using mesoporous carbons and carbon black for the detection of organophosphate nerve agents. , 2010, Biosensors & bioelectronics.
[55] M. Rapp,et al. Surface Acoustic Wave (SAW) Biosensor Chip System - a Promising Alternative for Biomedical Applications , 2009 .
[56] Gary A. Eiceman,et al. Ion Mobility Spectrometry in Analytical Chemistry , 1990 .
[57] N. Yusof,et al. The development of silicon nanowire as sensing material and its applications , 2013 .
[58] A. Weinbroum. Pathophysiological and clinical aspects of combat anticholinesterase poisoning. , 2004, British medical bulletin.
[59] J. Sussman,et al. Crystal structures of aged phosphonylated acetylcholinesterase: nerve agent reaction products at the atomic level. , 1999, Biochemistry.
[60] Sandeep Singh,et al. Biosensors based on electrochemical lactate detection: A comprehensive review , 2015, Biochemistry and biophysics reports.
[61] Preeda Prakrankamanant. Quartz crystal microbalance biosensors: prospects for point-of-care diagnostics. , 2014, Journal of the Medical Association of Thailand = Chotmaihet thangphaet.
[62] K. Kehe,et al. Quantification of hydrolysis of toxic organophosphates and organophosphonates by diisopropyl fluorophosphatase from Loligo vulgaris by in situ Fourier transform infrared spectroscopy. , 2009, Analytical biochemistry.
[63] E. Śliwka,et al. Analysis of the Precursors, Simulants and Degradation Products of Chemical Warfare Agents , 2018, Critical reviews in analytical chemistry.
[64] Yi Lu,et al. A colorimetric lead biosensor using DNAzyme-directed assembly of gold nanoparticles. , 2003, Journal of the American Chemical Society.
[65] Danila Moscone,et al. Fast, sensitive and cost-effective detection of nerve agents in the gas phase using a portable instrument and an electrochemical biosensor , 2007, Analytical and bioanalytical chemistry.
[66] C. A. Valdez,et al. Analysis of chemical warfare agents by gas chromatography-mass spectrometry: methods for their direct detection and derivatization approaches for the analysis of their degradation products , 2018 .
[67] Jacek Namieśnik,et al. Ion mobility spectrometry: Current status and application for chemical warfare agents detection , 2016 .
[68] Robert C. Haddon,et al. A Disposable Biosensor for Organophosphorus Nerve Agents Based on Carbon Nanotubes Modified Thick Film Strip Electrode , 2005 .
[69] C. Seger. Usage and limitations of liquid chromatography-tandem mass spectrometry (LC–MS/MS) in clinical routine laboratories , 2012, Wiener Medizinische Wochenschrift.
[70] Stephen E. Reichenbach,et al. Chemical warfare agent detection in complex environments with comprehensive two-dimensional gas chromatography , 2003, SPIE Defense + Commercial Sensing.
[71] Bhairab Mondal,et al. Highly Sensitive Colorimetric Biosensor for Staphylococcal Enterotoxin B by a Label-Free Aptamer and Gold Nanoparticles , 2018, Front. Microbiol..
[72] R. Mishra,et al. Food Safety Analysis Using Electrochemical Biosensors , 2018, Foods.
[73] Snehadrinarayan Khatua,et al. Organoiridium(III) Complexes as Luminescence Color Switching Probes for Selective Detection of Nerve Agent Simulant in Solution and Vapor Phase. , 2019, Inorganic chemistry.
[74] D. Mawhinney,et al. The determination of organophosphonate nerve agent metabolites in human urine by hydrophilic interaction liquid chromatography tandem mass spectrometry. , 2007, Journal of chromatography. B, Analytical technologies in the biomedical and life sciences.
[75] Kazuya Takahashi,et al. Development of portable mass spectrometer with electron cyclotron resonance ion source for detection of chemical warfare agents in air. , 2014, Spectrochimica acta. Part A, Molecular and biomolecular spectroscopy.
[76] Kibong Kim,et al. Destruction and detection of chemical warfare agents. , 2011, Chemical reviews.
[77] Yadong Jiang,et al. A new polysiloxane coating on QCM sensor for DMMP vapor detection , 2009 .
[78] J Wang,et al. Capillary electrophoresis microchips for separation and detection of organophosphate nerve agents. , 2001, Analytical chemistry.
[79] Wen Wang,et al. Selective Surface Acoustic Wave-Based Organophosphorus Sensor Employing a Host-Guest Self-Assembly Monolayer of β-Cyclodextrin Derivative , 2015, Sensors.
[80] Fukuto Tr. Mechanism of action of organophosphorus and carbamate insecticides. , 1990 .
[81] A Mulchandani,et al. Biosensor for direct determination of organophosphate nerve agents. 1. Potentiometric enzyme electrode. , 1999, Biosensors & bioelectronics.
[82] E. Clarkson,et al. In vivo skin absorption and distribution of the nerve agent VX (O–ethyl–S–[2(diisopropylamino)ethyl] methylphosphonothioate) in the domestic white pig , 2005, Human & experimental toxicology.
[83] V. Pitschmann,et al. Modified Biosensor for Cholinesterase Inhibitors with Guinea Green B as the Color Indicator , 2018, Biosensors.
[84] Alphus D. Wilson,et al. Applications and Advances in Electronic-Nose Technologies , 2009, Sensors.
[85] F. J. Dein,et al. Animals as sentinels of chemical terrorism agents: An evidence-based review , 2008, Clinical toxicology.
[86] Vikas Dhull,et al. Preparation of Electrochemical Biosensor for Detection of Organophosphorus Pesticides , 2014, International journal of analytical chemistry.
[87] Soo Chool Lee,et al. The development of SnO2-based recoverable gas sensors for the detection of DMMP , 2009 .
[88] E. Greenbaum,et al. Stand-off tissue-based biosensors for the detection of chemical warfare agents using photosynthetic fluorescence induction. , 2001, Biosensors & bioelectronics.
[89] Wen-Chao Yang,et al. Cholinesterases and Engineered Mutants for the Detection of Organophosphorus Pesticide Residues , 2018, Sensors.
[90] Bastian E. Rapp,et al. Surface acoustic wave biosensors: a review , 2008, Analytical and bioanalytical chemistry.
[91] K. Marx,et al. Quartz crystal microbalance: a useful tool for studying thin polymer films and complex biomolecular systems at the solution-surface interface. , 2003, Biomacromolecules.
[92] Dan Du,et al. Nanomaterial-enhanced paper-based biosensors , 2014 .
[93] Vivek Kumar,et al. BIOSENSORS: PRINCIPLE, TYPES AND APPLICATIONS , 2017 .
[94] Andrea E. Holmes,et al. Colorimetric Sensor Arrays for the Detection and Identification of Chemical Weapons and Explosives , 2016, Critical reviews in analytical chemistry.
[95] R. Black. History and perspectives of bioanalytical methods for chemical warfare agent detection. , 2010, Journal of chromatography. B, Analytical technologies in the biomedical and life sciences.
[96] Dennis B. Miller,et al. Detection of chemical warfare agent simulants and hydrolysis products in biological samples by paper spray mass spectrometry. , 2017, The Analyst.
[97] Guodong Liu,et al. Electrochemical sensor for organophosphate pesticides and nerve agents using zirconia nanoparticles as selective sorbents. , 2005, Analytical chemistry.
[98] K. K. Singh,et al. Two-Dimensional Materials for Sensing: Graphene and Beyond , 2015 .
[99] Nicole Jaffrezic-Renault,et al. New trends in biosensors for organophosphorus pesticides , 2001 .
[100] Loren L Looger,et al. Computational design of receptors for an organophosphate surrogate of the nerve agent soman. , 2004, Proceedings of the National Academy of Sciences of the United States of America.
[101] J. Chan,et al. An Overview of Chemical Warfare Agents , 2002 .
[102] Guangzhong Xie,et al. Simple biosensing method to detect DMMP based on QCM transducer and acetylcholine esterase sensitive film , 2017 .
[103] Miroslav Pohanka,et al. Colorimetric dipstick for assay of organophosphate pesticides and nerve agents represented by paraoxon, sarin and VX. , 2010, Talanta.
[104] G. Liu,et al. Detection of Sarin with a Fluorinated Polymer-coated Quartz Crystal Microbalance Sensor , 2007 .
[105] H. Hill,et al. Detection of aqueous phase chemical warfare agent degradation products by negative mode ion mobility time-of-flight mass spectrometry [IM(tof)MS] , 2006, Journal of the American Society for Mass Spectrometry.