Interactions of cyclodextrins and their derivatives with toxic organophosphorus compounds
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W. Erb | G. Gouhier | S. Balieu | F. Estour | S. Letort
[1] D. Noort,et al. Elimination kinetics and molecular reaction mechanisms of cyclosarin (GF) by an oxime substituted β-cyclodextrin derivative in vitro. , 2015, Toxicology letters.
[2] Bill Bynum,et al. Lancet , 2015, The Lancet.
[3] Na Wang,et al. An ultra-sensitive acetylcholinesterase biosensor based on reduced graphene oxide-Au nanoparticles-β-cyclodextrin/Prussian blue-chitosan nanocomposites for organophosphorus pesticides detection. , 2015, Biosensors & bioelectronics.
[4] D. Mathiron,et al. The first 2(IB),3(IA)-heterodifunctionalized β-cyclodextrin derivatives as artificial enzymes. , 2015, Chemical communications.
[5] F. Worek,et al. Effectiveness of a substituted β-cyclodextrin to prevent cyclosarin toxicity in vivo. , 2014, Toxicology letters.
[6] G. Garcia,et al. Biophysical aspects of cyclodextrin interaction with paraoxon , 2014, Magnetic resonance in chemistry : MRC.
[7] F. Worek,et al. Detoxification of alkyl methylphosphonofluoridates by an oxime-substituted β-cyclodextrin--an in vitro structure-activity study. , 2014, Toxicology letters.
[8] S. Müller,et al. Elimination pathways of cyclosarin (GF) mediated by β-cyclodextrin in vitro: pharmacokinetic and toxicokinetic aspects. , 2013, Toxicology letters.
[9] Luzian Porwol,et al. Tabun scavengers based on hydroxamic acid containing cyclodextrins. , 2013, Chemical communications.
[10] S. Müller,et al. Functionalized cyclodextrins bearing an alpha nucleophile--a promising way to degrade nerve agents. , 2013, Chemico-biological interactions.
[11] S. Müller,et al. New modified β-cyclodextrin derivatives as detoxifying agents of chemical warfare agents (I). Synthesis and preliminary screening: evaluation of the detoxification using a half-quantitative enzymatic assay. , 2013, Toxicology letters.
[12] S. Müller,et al. New modified β-cyclodextrin derivatives as detoxifying agents of chemical warfare agents (II). In vitro detoxification of cyclosarin (GF): general screening and toxicokinetic aspects of OP scavengers. , 2013, Toxicology letters.
[13] S. Bourne,et al. Permethylated β-cyclodextrin/pesticide complexes: X-ray structures and thermogravimetric assessment of kinetic parameters for complex dissociation , 2013, Journal of Inclusion Phenomena and Macrocyclic Chemistry.
[14] S. Bourne,et al. Inclusion of the insecticide fenitrothion in dimethylated-β-cyclodextrin: unusual guest disorder in the solid state and efficient retardation of the hydrolysis rate of the complexed guest in alkaline solution , 2013, Beilstein journal of organic chemistry.
[15] Luzian Porwol,et al. Detoxification of tabun at physiological pH mediated by substituted β-cyclodextrin and glucose derivatives containing oxime groups. , 2012, Toxicology.
[16] Kuppusamy Kanagaraj,et al. Highly selective fluorescent sensing of fenitrothion using per-6-amino-β-cyclodextrin:Eu(III) complex. , 2012, Biosensors & bioelectronics.
[17] F. Worek,et al. Highly efficient cyclosarin degradation mediated by a β-cyclodextrin derivative containing an oxime-derived substituent , 2011, Beilstein journal of organic chemistry.
[18] Kibong Kim,et al. Destruction and detection of chemical warfare agents. , 2011, Chemical reviews.
[19] P. Renard,et al. Optimized strategies to synthesize β-cyclodextrin-oxime conjugates as a new generation of organophosphate scavengers. , 2011, Organic & biomolecular chemistry.
[20] S. Menuel,et al. Unusual inversion phenomenon of β-cyclodextrin dimers in water. , 2011, Chemistry.
[21] Z. Talebpour,et al. Enantiomeric discrimination and quantification of the chiral organophosphorus pesticide fenamiphos in aqueous samples by a novel and selective ³¹P nuclear magnetic resonance spectroscopic method using cyclodextrins as chiral selector. , 2011, Journal of agricultural and food chemistry.
[22] S. Bourne,et al. Effect of cyclodextrins on the reactivity of fenitrothion. , 2011, Carbohydrate research.
[23] S. Müller,et al. In vitro detoxification of cyclosarin (GF) by modified cyclodextrins. , 2011, Toxicology letters.
[24] M. Blum,et al. Formation of pyrophosphate-like adducts from nerve agents sarin, soman and cyclosarin in phosphate buffer: implications for analytical and toxicological investigations. , 2011, Toxicology letters.
[25] N. Greig,et al. Why so few drugs for Alzheimer's disease? Are methods failing drugs? , 2010, Current Alzheimer research.
[26] C. V. Hooidonk,et al. Model studies for enzyme inhibition. Part II: The stereospecific reaction of isopropyl p-nitrophenyl methylphosphonate with α-cyclodextrin in aqueous alkaline media† , 2010 .
[27] C. V. Hooidonk,et al. Stereospecific reaction of isopropyl methylphosphonofluoridate (sarin) with α‐cyclodextrin: A model for enzyme inhibition , 2010 .
[28] Ming Yang,et al. Diisobutylaluminium Hydride (DIBAL-H) Promoted Secondary Rim Regioselective Demethylations of Permethylated β-Cyclodextrin: A Mechanistic Proposal , 2010 .
[29] P. Masson,et al. Butyrylcholinesterase for protection from organophosphorus poisons: catalytic complexities and hysteretic behavior. , 2010, Archives of biochemistry and biophysics.
[30] S. Müller,et al. Detoxification of nerve agents by a substituted beta-cyclodextrin: application of a modified biological assay. , 2009, Toxicology.
[31] E. Castro,et al. Comparative analysis of complexation of pesticides (fenitrothion, methylparathion, parathion) and their carboxylic ester analogues by β-cyclodextrin. Theoretical semiempirical calculations , 2009 .
[32] P. Masson,et al. Regioselective access to 3I-O-substituted-beta-cyclodextrin derivatives. , 2009, Chemical communications.
[33] M. Fortea,et al. Preparation and characterization of the inclusion complex of chlorpyrifos in cyclodextrins to improve insecticide formulations. , 2008, Journal of agricultural and food chemistry.
[34] Lumei Wang,et al. Preparation, stabilization, and bioefficacy of beta-cyclodextrin inclusion compounds of chloramidophos. , 2008, Journal of agricultural and food chemistry.
[35] David Gunnell,et al. The global distribution of fatal pesticide self-poisoning: Systematic review , 2007, BMC public health.
[36] Christoph Weder,et al. Fluorescent sensors for the detection of chemical warfare agents. , 2007, Chemistry.
[37] S. Bhosale,et al. β-Cyclodextrin as a Catalyst in Organic Synthesis , 2007 .
[38] Kefeng Zeng,et al. A wireless magnetoelastic biosensor for the direct detection of organophosphorus pesticides. , 2007, The Analyst.
[39] S. Ramakrishna,et al. Functionalized polymer nanofibre membranes for protection from chemical warfare stimulants , 2006 .
[40] P. Masson,et al. Improved access to 2-O-monobenzyl ethers of beta-cyclodextrin as precursors of catalysts for organophosphoryl esters hydrolysis. , 2006, Carbohydrate research.
[41] G. Vanloon,et al. Complexation of diazinon, an organophosphorus pesticide, with α-, β-, and γ-cyclodextrin NMR and computational studies , 2006 .
[42] H. Maekawa,et al. Enantioselective Oxidation of Sulfides Catalyzed by Chiral MoV and CuII Complexes of Catechol-Appended β-Cyclodextrin Derivatives in Water , 2006 .
[43] M. Froment,et al. Synthesis of 2-substituted beta-cyclodextrin derivatives with a hydrolytic activity against the organophosphorylester paraoxon. , 2005, European journal of medicinal chemistry.
[44] D. Gunnell,et al. Suicide by intentional ingestion of pesticides: a continuing tragedy in developing countries. , 2003, International journal of epidemiology.
[45] R. Rossi,et al. Effect of cyclodextrin on the hydrolysis of the pesticide fenitrothion [O,O‐dimethyl O‐(3‐methyl‐4‐nitrophenyl)phosphorothioate] , 2002 .
[46] B. Wagner,et al. Cyclodextrin-, UV-, and high pH-induced fluorescence enhancement of the pesticide azinphos-methyl: Applications to its trace analysis , 2002 .
[47] C. Evans. Bisphosphonates modulate the effect of macrophage-like cells on osteoblast. , 2002, The international journal of biochemistry & cell biology.
[48] D. Samuel,et al. Adefovir therapy for HBV infection after liver transplantation (LT) , 2002 .
[49] E. Schiff,et al. Adefovir dipivoxil (ADV) for the treatment of lamivudine resistant HBV (LAM-R) in post liver transplant (post-OLT) patients , 2002 .
[50] A. Bois. Treatment of advanced ovarian cancer. , 2001 .
[51] M. Wolf. Dose intensive chemotherapy in small cell lung cancer. , 2001, Lung cancer.
[52] E. Clercq. Antiviral drugs: current state of the art. , 2001, Journal of clinical virology : the official publication of the Pan American Society for Clinical Virology.
[53] J. Gilman,et al. Nanotechnology , 2001 .
[54] M. Kamiya,et al. Effects of cyclodextrins on photodegradation of organophosphorus pesticides in humic water. , 2001, Chemosphere.
[55] P. Ascierto,et al. Cisplatin, dacarbazine, and fotemustine plus interferon α in patients with advanced malignant melanoma , 2000 .
[56] A. Heck,et al. Stability of thioTEPA and its metabolites, TEPA, monochloroTEPA and thioTEPA-mercapturate, in plasma and urine. , 2000, International journal of pharmaceutics.
[57] M. Kamiya,et al. Cyclodextrin inclusion: catalytic effects on the degradation of organophosphorus pesticides in neutral aqueous solution. , 1999, Chemosphere.
[58] A. Nagler,et al. The role of thiotepa in allogeneic stem cell transplantation in patients with leukemia. , 1999, Leukemia research.
[59] M. Binder,et al. Treatment of metastatic malignant melanoma with dacarbazine plus fotemustine. , 1998, European journal of cancer.
[60] Keiko Takahashi,et al. Organic Reactions Mediated by Cyclodextrins. , 1998, Chemical reviews.
[61] R. Breslow,et al. Biomimetic Reactions Catalyzed by Cyclodextrins and Their Derivatives. , 1998, Chemical reviews.
[62] J. Aaron,et al. Cyclodextrin-enhanced fluorescence and photochemically-induced fluorescence determination of five aromatic pesticides in water , 1998 .
[63] S. Deiana,et al. A molecular modelling study of the interaction between β-cyclodextrin and the organophosphorothioate pesticide parathion , 1998, Glycoconjugate Journal.
[64] G. Mancia,et al. Treatment of heart failure with fosinopril: an angiotensin converting enzyme inhibitor with a dual and compensatory route of excretion. , 1997, American journal of hypertension.
[65] V. Stella,et al. Prodrugs of phosphates, phosphonates, and phosphinates , 1996 .
[66] T. Parrón,et al. Increased risk of suicide with exposure to pesticides in an intensive agricultural area. A 12-year retrospective study. , 1996, Forensic science international.
[67] A Iliadis,et al. Pharmacokinetics and pharmacodynamics of nitrosourea fotemustine: a French cancer centre multicentric study. , 1996, European journal of cancer.
[68] D. Salmon-Céron,et al. Pharmacology and clinical use of foscarnet. , 1995, International journal of antimicrobial agents.
[69] M. Bragadin,et al. Anticholinesterasic drugs: tacrine but not physostigmine, accumulates in acidic compartments of the cells. , 1995, Biochimica et biophysica acta.
[70] M. Kamiya,et al. Inclusion effects of β-cyclodextrins on the hydrolysis of organophosphorus pesticides , 1995 .
[71] M. Kamiya,et al. Studies on the susceptibility to alkaline hydrolysis of inclusion complexes of organophosphorothioate pesticides with β‐cyclodextrins , 1994 .
[72] M. Kamiya,et al. Inclusion effects of cyclodextrins on photodegradation rates of parathion and paraoxon in aquatic medium , 1994 .
[73] E. Antoniadou-Vyza,et al. .gamma.-Cyclodextrin inclusion complex of a new organophosphorus insecticide. Determination of stability constant with HPLC , 1994 .
[74] J. Bland,et al. Preparation and characterization of cyclodextrin complexes of the insecticides aldicarb and sulprofos , 1993 .
[75] M. Makino,et al. Catalytic properties of cyclodextrins on the hydrolysis of parathion and paraoxon in aquatic medium containing humic acids , 1992 .
[76] H. J. Silva,et al. Does pralidoxime affect outcome of management in acute organophosphorus poisoning? , 1992, The Lancet.
[77] I. Crombie. Suicide among men in the highlands of Scotland. , 1991, BMJ.
[78] M. Namer,et al. Final report of the french multicenter phase II study of the nitrosourea fotemustine in 153 evaluable patients with disseminated malignant melanoma including patients with cerebral metastases , 1990, Cancer.
[79] E. Anslyn,et al. Proton inventory of a bifunctional ribonuclease model , 1989 .
[80] H. Benschop,et al. Nerve agent stereoisomers: analysis, isolation and toxicology , 1988 .
[81] S. Saint-André,et al. Inactivation of sarin and soman by cyclodextrins in vitro , 1987, Experientia.
[82] S. Saint-André,et al. Interaction of soman with β-cyclodextrin , 1986 .
[83] Günter Helmchen,et al. Basic Principles of the CIP-System and Proposals for a Revision† , 1982 .
[84] H. Fleisch,et al. Diphosphonates Inhibit Formation of Calcium Phosphate Crystals in vitro and Pathological Calcification in vivo , 1969, Science.
[85] H. Fleisch,et al. Diphosphonates Inhibit Hydroxyapatite Dissolution in vitro and Bone Resorption in Tissue Culture and in vivo , 1969, Science.
[86] Vladimir Prelog,et al. Specification of Molecular Chirality , 1966 .
[87] S. Kharb. Toxicology , 1936 .
[88] J. Paul. BMC public health. , 2012, World health & population.
[89] K. Teranishi. Practicable regiospecific bifunctionalization on the secondary face of α- and β-cyclodextrins , 2000 .
[90] Y. L. Loukas,et al. Inclusion complexes and stability studies of an organophosphorous insecticide with cyclodextrins: spectrophotometric and kinetic determination of stability constant , 1995 .
[91] M. Kamiya,et al. Cyclodextrin inclusion effects on photodegradation rates of organophosphorus pesticides , 1995 .
[92] J. Cabal. Hydrolytic Reactions of Methylfluorophosphonates with Cyclodextrins , 1995 .
[93] H. Hansen,et al. Lung cancer. , 1990, Cancer chemotherapy and biological response modifiers.
[94] S. Saint-André,et al. [Inactivation of soman by beta-cyclodextrin]. , 1985, Comptes rendus de l'Academie des sciences. Serie III, Sciences de la vie.
[95] C. V. Hooidonk. Model studies for enzyme inhibition. Part V: Reactions of organophosphorus compounds with α-cyclodextrin. A quantitative approach of model activity and stereospecificity† , 1972 .