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Tradução referenciada das diretrizes públicas do CHEMM (Chemical Hazards Emergency Medical Management, HHS/ASPR — governo dos EUA). Não é diagnóstico nem prescrição deste portal; doses e nomes de fármacos permanecem como na fonte original, com o link ao lado — confira sempre no original antes de qualquer conduta. As recomendações da fonte não se destinam a uso médico-legal.

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Traduzido de HI-6 - Medical Countermeasures Database (CHEMM, HHS/ASPR — domínio público), fonte capturada em 2026-08-25. Em caso de dúvida, vale o original.

HI-6 — banco de contramedidas médicas

1. Nome do agente terapêutico/dispositivo de defesa química

HI-6dose/fármaco conforme a fonte ↗

2. Área(s) terapêutica(s) de defesa química

Antídoto do envenenamento por agentes nervosos organofosforados, incluindo clorosarin, ciclosarin (GF), R-33 (VR), R-VX, sarin (GB), tabun (GA), VX, clorosoman, soman (GD), e por pesticidas organofosforados.

3. Medicina baseada em evidência para defesa química

A. Resumo

Estrutura

US NLM. ChemIDplus Lite. HI-6dose/fármaco conforme a fonte ↗no original (inglês)

Mecanismo de ação

Soukup O, Krůšek J, Kaniaková M, Kumar UK, Oz M, Jun D, Fusek J, Kuča K, Tobin G. Oxime reactivators and their in vivo and in vitro effects on nicotinic receptors. Physiol Res. 2011;60(4):679-86. [PubMed Citation]no original (inglês)

Soukup O, Kristofikova Z, Jun D, Tambor V, Ripova D, Kuca K. The interaction of standard oxime reactivators with hemicholinium-3 sensitive choline carriers. Toxicol Lett. 2012 Aug 3;212(3):315-9. [PubMed Citation]no original (inglês)

Clement JG, Rosario S, Bessette E, Erhardt N. Soman and sarin inhibition of molecular forms of acetylcholinesterase in mice. Time course of recovery and reactivation by the oxime HI-6. Biochem Pharmacol. 1991 Jul 5;42(2):329-35.dose/fármaco conforme a fonte ↗no original (inglês)

Soukup O, Kumar UK, Proska J, Bratova L, Adem A, Jun D, Fusek J, Kuca K, Tobin G. Environ Toxicol Pharmacol. The effect of oxime reactivators on muscarinic receptors: functional and binding examinations. 2011 May;31(3):364-70. [PubMed Citation]no original (inglês)

Luo C, Chambers C, Pattabiraman N, Tong M, Tipparaju P, Saxena A. Y124 at the peripheral anionic site is important for the reactivation of nerve agent-inhibited acetylcholinesterase by H oximes. Biochem Pharmacol. 2010 Nov 1;80(9):1427-36. [PubMed Citation]no original (inglês)

Luo C, Chambers C, Yang Y, Saxena A. Mechanism for potent reactivation ability of H oximes analyzed by reactivation kinetic studies with cholinesterases from different species. Chem Biol Interact. 2010 Sep 6;187(1-3):185-90. [PubMed Citation]no original (inglês)

Herkert NM, Freude G, Kunz U, Thiermann H, Worek F. Comparative kinetics of organophosphates and oximes with erythrocyte, muscle and brain acetylcholinesterase. Toxicol Lett. 2012 Mar 7;209(2):173-8. [PubMed Citation]no original (inglês)

Luo C, Tong M, Chilukuri N, Brecht K, Maxwell DM, Saxena A. An in vitro comparative study on the reactivation of nerve agent-inhibited guinea pig and human acetylcholinesterases by oximes. Biochemistry. 2007 Oct 23;46(42):11771-9 [PubMed Citation]no original (inglês)

Luo C, Tong M, Maxwell DM, Saxena A. Comparison of oxime reactivation and aging of nerve agent-inhibited monkey and human acetylcholinesterases . Chem Biol Interact. 2008 Sep 25;175(1-3):261-6. [PubMed Citation]no original (inglês)

Aas P. In vitro effects of toxogonin, HI-6 and HLö-7 on the release of [3H]acetylcholine from peripheral cholinergic nerves in rat airway smooth muscle. Eur J Pharmacol. 1996 Apr 22;301(1-3):59-66. [PubMed Citation]dose/fármaco conforme a fonte ↗no original (inglês)

Resumo dos estudos clínicos e não clínicos

Organophosphorous (OP) nerve agents (including soman, sarin, tabun, GF, VX, and Russian VX) and pesticides inhibit acetylcholinesterase (AChE), subsequently causing a toxic accumulation of acetylcholine (ACh) and over-stimulation of cholinergic receptors in the peripheral and central nervous systems. The current antidotal treatment includes a muscarinic ACh receptor antagonist to block the over-stimulation of cholinergic receptors by ACh, an anticonvulsant to protect against seizures, and an oxime to reactivate OP-inhibited AChE. The bis pyridinium oxime HI-6 (asoxime; 1-[[[4-(aminocarbonyl pyridinio] methoxy] methyl]-2-[(hydroxyimino)methyl]-pyridinium dichloride) is currently available for use in defined military settings in Canada, Sweden and the Czech Republic, and is under development in a number of other countries (Lundy et al., 2011). HI-6 is a broad spectrum reactivator of AChE that is inhibited by nerve agents; it has a reactivation potency of 40-79% for Russian VX, sarin and cyclosarin (Kuca et al., 2007). HI-6 has consistently been the most effective reactivator of soman-inhibited AChE when tested in a variety of animal models (blood and tissue), and humans (blood) compared to other oximes, including the currently developed pralidoxime (2-PAM) and obidoxime (Koplovitz and Stewart, 1994; Shih, 1993; Worek et al., 1998; Puu et al., 1986). HI-6 was also more effective at increasing survival following 4 LD 50 soman challenge in guinea pigs than oximes HLo-7 and pyrimidoxime (Lundy et al., 1992). HI-6 is also highly effective against GF (Lundy et al., 1992; Luo et al., 2008) but lacks efficacy against tabun (Koplovitz and Stewart, 1994; Kuca et al., 2007). Atropine dose-dependently increased the effectiveness of HI-6 against soman and tabun; adjunctive treatment with the anticonvulsant diazepam further enhanced the efficacy of HI-6 and atropine against soman (Koplovitz et al., 1995). The toxicities of HI-6 are low with an LD 50 of 400 mg/kg and approximately 615 mg/kg in rhesus monkeys and dogs, respectively. Because of the efficacy and broad spectrum of nerve agent reactivation, efforts to increase the usage and licensing of HI-6 are underway (Lundy, 2011). An HI-6 salt derivative (HI-6 dimethanesulphonate) with increased water solubility, for potential use in an autoinjector, is currently under development and has been shown to have the same reactivation potency in vivo as the currently used HI-6 chloride (Kassa et al., 2007).dose/fármaco conforme a fonte ↗no original (inglês)

B. Link para os estudos clínicos

Adulto

Lundy PM, Hansen AS, Hand BT, Boulet CA. Comparison of several oximes against poisoning by soman, tabun and GF. Toxicology. 1992;72(1):99-105. [PubMed Citation]no original (inglês)

Kusić R, Jovanović D, Randjelović S, Joksović D, Todorovic V, Bosković B, Jokanović M, Vojvodić V. HI-6 in man: efficacy of the oxime in poisoning by organophosphorus insecticides. Hum Exp Toxicol. 1991 Mar;10(2):113-8. [PubMed Citation]dose/fármaco conforme a fonte ↗no original (inglês)

Jovanović D, Randjelović S, Joksović D. A case of unusual suicidal poisoning by the organophosphorus insecticide dimethoate. Hum Exp Toxicol. 1990 Jan;9(1):49-51. [PubMed Citation]no original (inglês)

Revisões clínicas

Lundy PM, Hamilton MG, Sawyer TW, Mikler J. Comparative protective effects of HI-6 and MMB-4 against organophosphorous nerve agent poisoning. Toxicology. 2011 Jul 29;285(3):90-6. [PubMed Citation]dose/fármaco conforme a fonte ↗no original (inglês)

Lundy PM, Raveh L, Amitai G. Development of the bisquaternary oxime HI-6 toward clinical use in the treatment of organophosphate nerve agent poisoning. Toxicol Rev. 2006;25(4):231-43. [PubMed Citation]dose/fármaco conforme a fonte ↗no original (inglês)

Bajgar J, Fusek J, Kassa J, Kuca K, Jun D. Chemical aspects of pharmacological prophylaxis against nerve agent poisoning. Curr Med Chem. 2009;16(23):2977-86. [PubMed Citation]no original (inglês)

Thiermann H, Szinicz L, Eyer P, Felgenhauer N, Zilker T, Worek F. Lessons to be learnt from organophosphorus pesticide poisoning for the treatment of nerve agent poisoning. Toxicology. 2007 Apr 20;233(1-3):145-54. [PubMed Citation]no original (inglês)

Antonijevic B, Stojiljkovic MP. Unequal efficacy of pyridinium oximes in acute organophosphate poisoning. Clin Med Res. 2007 Mar;5(1):71-82. [PubMed Citation]no original (inglês)

Shrot S, Markel G, Dushnitsky T, Krivoy A. The possible use of oximes as antidotal therapy in organophosphate-induced brain damage. Neurotoxicology. 2009 Mar;30(2):167-73. [PubMed Citation]no original (inglês)

Kassa J. Review of oximes in the antidotal treatment of poisoning by organophosphorus nerve agents. J Toxicol Clin Toxicol. 2002;40(6):803-16. [PubMed Citation]no original (inglês)

Marrs TC, Rice P, Vale JA. The role of oximes in the treatment of nerve agent poisoning in civilian casualties. Toxicol Rev. 2006;25(4): 297-323. [PubMed Citation]no original (inglês)

C. Link para os estudos não clínicos (por exemplo, em animais)

Estudos em animais adultos

RamaRao G, Afley P, Acharya J, Bhattacharya BK. Efficacy of antidotes (midazolam, atropine and HI-6) on nerve agent induced molecular and neuropathological changes. BMC Neurosci. 2014 Apr 4;15:47. [PubMed Citation].dose/fármaco conforme a fonte ↗no original (inglês)

Pohanka M, Sobotka J, Svobodova H, Stetina R. Sulfur mustard induced oxidative stress and its alteration using asoxime (HI-6). Interdiscip Toxicol. 2013 Dec;6(4):198-202.dose/fármaco conforme a fonte ↗no original (inglês)

Koplivitz I, Stewart JR. A comparison of the efficacy of HI6 and 2-PAM against soman, tabun, sarin, and VX in the rabbit. Toxicol Lett. 1994 Feb 15;70(3):269-79. [PubMed Citation]dose/fármaco conforme a fonte ↗no original (inglês)

Koplovitz I, Menton R, Matthews C, Shutz M, Nalls C, Kelly S. Dose-response effects of atropine and HI-6 treatment of organophosphorus poisoning in guinea pigs. Drug Chem Toxicol. 1995 May-Aug;18(2-3):119-36. [PubMed Citation]dose/fármaco conforme a fonte ↗no original (inglês)

Kassa J, Jun D, Kuca K, Bajgar J. Comparison of reactivating and therapeutic efficacy of two salts of the oxime HI-6 against tabun, soman and cyclosarin in rats. Basic Clin Pharmacol Toxicol. 2007 Nov;101(5):328-32. [PubMed Citation]dose/fármaco conforme a fonte ↗no original (inglês)

Kassa J, Musilek K, Koomlova M, Bajgar J. A comparison of the efficacy of newly developed reversible inhibitors of acetylcholinesterase with commonly used pyridostigmine as pharmacological pre-treatment of soman-poisoned mice. Basic Clin Pharmacol Toxicol. 2012 Apr;110(4):322-6. [PubMed Citation]no original (inglês)

Shih TM. Comparison of several oximes on reactivation of soman-inhibited blood, brain and tissue cholinesterase activity in rats. Arch Toxicol. 1993;67(9):637-46. [PubMed Citation]no original (inglês)

Kassa J, Karasova JZ, Pavlikova R, Misik J, Caisberger F, Bajgar J. The influence of combinations of oximes on the reactivating and therapeutic efficacy of antidotal treatment of tabun poisoning in rats and mice. J Appl Toxicol. 2010 Mar;30(2):120-4. [PubMed Citation]no original (inglês)

Mikler J, Tenn C, Worek F, Reiter G, Thiermann H, Garrett M, Bohnert S, Sawyer TW. Immobilization of Russian VX skin depots by localized cooling: implications for decontamination and medical countermeasures. Toxicol Lett. 2011 Sep 25;206(1):47-53. [PubMed Citation]no original (inglês)

Wetherell J, Price M, Mumford H. A novel approach for medical countermeasures to nerve agent poisoning in the guinea-pig. Neurotoxicology. 2006 Jul;27(4):485-91. [PubMed Citation]no original (inglês)

Göransson-Nyberg A, Cassel G, Jeneskog T, Karlsson L, Larsson R, Lundström M, Persson SA. Treatment of organophosphate poisoning in pigs: antidote administration by a new binary autoinjector. Arch Toxicol. 1995;70(1):20-7. [PubMed Citation]no original (inglês)

Myhrer T, Enger S, Aas P. Determination of anti-convulsant and life-preserving capacities of three types of auto-injector therapies against soman intoxication in rats. Drug Test Anal.Drug Test Anal. 2013 Aug;5(8):693-701. [PubMed Citation]no original (inglês)

Myhrer T, Enger S, Ass P. Efficacy of immediate and subsequent therapies against soman-induced seizures and lethality in rats. Basic Clin Pharmacol Toxicol. 2006 Feb;98(2):184-91. [PubMed Citation]no original (inglês)

Myhrer T, Enger S, Mariussen E, Aas P. Two medical therapies very effective shortly after high levels of soman poisoning in rats, but only one with universal utility. Toxicology 2013 Dec 15;314(2-3):221-8..no original (inglês)

Kassa J, Karasová JZ, Pavlíková R, Caisberger F, Bajgar J. The ability of oxime mixtures to increase the reactivating and therapeutic efficacy of antidotal treatment of cyclosarin poisoning in rats and mice. Acta Medica (Hradec Kralove). 2012;55(1):27-31. [PubMed Citation]no original (inglês)

Pohanka M, Sobotka J, Svobodova H, Stetina R. Investigation of oxidative stress in blood, brain, kidney, and liver after oxime antidote HI-6 application in a mouse experimental model. Drug Chem Toxicol. 2011 Jul;34(3):255-60 [PubMed Citation]dose/fármaco conforme a fonte ↗no original (inglês)

Kassa J, Kunesova G. The benefit of combination of oximes for the neuroprotective efficacy of antidotal treatment of sarin-poisoned rats. Toxicol Mech Methods. 2012 May;22(4):260-7. [PubMed Citation]no original (inglês)

Pohanka M, Novotny L, Zdarova-Karasova J, Bandouchova H, Zemek F, Hrabinova M, Misik J, Kuca K, Bajgar J, Zitka O, Cernei N, Kizek R, Pikula J. Asoxime (HI-6) impact on dogs after one and tenfold therapeutic doses: assessment of adverse effects, distribution, and oxidative stress. Environ Toxicol Pharmacol. 2011 Jul;32(1):75-81. [PubMed Citation]dose/fármaco conforme a fonte ↗no original (inglês)

Myher T, Aas P. Choice of approaches in developing novel medical countermeasures for nerve agent poisoning. Neurotoxicology 2014 May:44C:27-38. [PubMed Citation]no original (inglês)

Gore A, Bloch-Shilderman E, Egoz I, Turetz J, Brandeis R. Efficacy assessment of a combined anticholinergic and oxime treatment against topical sarin-induced miosis and visual impairment in rats. Br J Pharmacol 2014 May;171(9):2364-74.no original (inglês)

Outros estudos não clínicos

Puu G, Artursson E, Bucht G. Reactivation Of Nerve Agent Inhibited Human Acetylcholinesterases by Hi-6 and Obidoxime. Biochem Pharmacol. 1986 May 1;35(9):1505-10. [PubMed Citation].dose/fármaco conforme a fonte ↗no original (inglês)

Worek F, Widmann R, Knopff O, Szinicz L. Reactivating potency of obidoxime, pralidoxime, HI 6 and HLö 7 in human erythrocyte acetylcholinesterase inhibited by highly toxic organophosphorus compounds. Arch Toxicol. 1998 Mar;72(4):237-43. [PubMed Citation]dose/fármaco conforme a fonte ↗no original (inglês)

Jun D, Kuca K, Hronek M, Opletal L. Effect of some acetylcholinesterase reactivators on human platelet aggregation in vitro . J Appl Toxicol. 2006 May-Jun;26(3):258-61 [PubMed Citation]no original (inglês)

Jun D, Musilova L, Kuca K, Kassa J. Potency of several oximes to reactivate human acetylcholinesterase and butyrylcholinesterase inhibited by paraoxon in vitro. Chem Biol Interact. 2008 Sep 25;175(1-3):421-4. [PubMed Citation]no original (inglês)

Jun, D, Musilova L, Musilek K, Kuca K. In vitro ability of currently available oximes to reactivate organophosphate pesticide-inhibited human acetylcholinesterase and butyrylcholinesterase. Int J Mol Sci. 2011;12(3):2077-2087. [PubMed Citation]no original (inglês)

Worek F, Aurbek N, Koller M, Becker C, Eyer P, Thiermann H. Kinetic analysis of reactivation and aging of human acetylcholinesterase inhibited by different phosphoramidates. Biochem Pharmacol. 2007 Jun 1;73(11):1807-1817. [PubMed Citation]no original (inglês)

Kuca K, Jun D, Cabal J, Hrabinova M, Bartosova L, Opletalova V. Russian VX: inhibition and reactivation of acetylcholinesterase compared with VX agent. Basic Clin Pharmacol Toxicol. 2006 Apr;98(4):389-94. [PubMed Citation]no original (inglês)

Svobodova H, Jost P, Stetina R. Cytotoxicity and genotoxicity evaluation of antidote oxime HI-6 tested on eight cell lines of human and rodent origin. Gen Physiol Biophys. 2012 Mar;31(1):77-84. [PubMed Citation]dose/fármaco conforme a fonte ↗no original (inglês)

Kuca K, Jun D, Bajgar J. Currently used cholinesterase reactivators against nerve agent intoxication: comparison of their effectivity in vitro. Drug Chem Toxicol. 2007;30(1):31-40. [PubMed Citation]no original (inglês)

Kuca, K, Kassa J. Oximes-induced reactivation of rat brain acetylcholinesterase inhibited by VX agent. Hum Exp Toxicol. 2004 Apr;23(4):167-71. [PubMed Citation]no original (inglês)

Kuca K, Cabal J, Jun D, Kassa J, Bartosová L, Kunesová G. In vitro reactivation potency of some acetylcholinesterase reactivators against sarin- and cyclosarin-induced inhibitions. J Appl Toxicol. 2005 Jul-Aug;25(4):296-300. [PubMed Citation]no original (inglês)

Kuca K, Cabal J, Kassa J, Jun D, Hrabinova M. In vitro potency of H oximes (HI-6, HLo-7), the oxime BI-6, and currently used oximes (pralidoxime, obidoxime, trimedoxime) to reactivate nerve agent-inhibited rat brain acetylcholinesterase. J Toxicol Environ Health A. 2006 Aug;69(15):1431-1440. [PubMed Citation]dose/fármaco conforme a fonte ↗no original (inglês)

Bartosova L, Kuca K, Jun D, Kunesova G. Bispyridinium oximes as antidotal treatment of cyclosarin poisoning-in vitro and in vivo testing. Int J Toxicol. 2005 Nov-Dec;24(6):399-402. [PubMed Citation]no original (inglês)

Fišar Z , Hroudová J , Korábe čný J , Musílek K , Kuča K . In vitro effects of acetylcholinesterase reactivators on monoamine oxidase activity. Curr Med Chem. 2009;16(17):176-180. [PubMed Citation]no original (inglês)

Reddy VK, Deshpande SS, Cintra WM, Scoble GT, Albuquerque EX. Effectiveness of oximes 2-PAM and HI-6 in recovery of muscle function depressed by organophosphate agents in the rat hemidiaphragm: an in vitro study. Fundam Appl Toxicol. 1991 Nov;17(4):746-60. [PubMed Citation]dose/fármaco conforme a fonte ↗no original (inglês)

Revisões não clínicas

Kassa J, Musilek K, Karasova JZ, Kuca K, Bajgar J. Two possibilities how to increase the efficacy of antidotal treatment of nerve agent poisonings. Mini Rev Med Chem. 2012 Jan;12(1):24-34. [PubMed Citation]no original (inglês)

Mercey G, Verdelet T, Renou J, Kliachyna M, Baati R, Nachon F, Jean L, Renard PY. Reactivators of acetylcholinesterase inhibited by organophosphorus nerve agents. Acc Chem Res. 2012 May 15;45(5):756-66. [PubMed Citation]no original (inglês)

Jokanović M, Prostran M. Pyridinium oximes as cholinesterase reactivators. Structure-activity relationship and efficacy in the treatment of poisoning with organophosphorus compounds. Curr Med Chem. 2009;16(17):2177-88. [PubMed Citation]no original (inglês)

Jokanović M, Stojiljković MP. Current understanding of the application of pyridinium oximes as cholinesterase reactivators in treatment of organophosphate poisoning. Eur J Pharmacol. 2006 Dec 28;553(1-3):10-7. [PubMed Citation]no original (inglês)

4. Dados farmacocinéticos e toxicocinéticos

Adulto

Clement JG, Bailey DG, Madill HD, Tran LT, Spence JD. The acetylcholinesterase oxime reactivator HI-6 in man: pharmacokinetics and tolerability in combination with atropine. Biopharm Drug Dispos. 1995 Jul;16(5):415-25. [PubMed Citation]dose/fármaco conforme a fonte ↗no original (inglês)

Jovanovic D, Maksimovic M, Joksovic D, Kovacevic V. Oral forms of the oxime HI-6: a study of pharmacokinetics and tolerance after administration to healthy volunteers. Vet Hum Toxicol. 1990 Oct;32(5):419-21. [PubMed Citation]dose/fármaco conforme a fonte ↗no original (inglês)

Kusić R, Bosković B, Vojvodić V, Jovanović D. HI-6 in man: blood levels, urinary excretion, and tolerance after intramuscular administration of the oxime to healthy volunteers. Fundam Appl Toxicol. 1985 Dec;5(6 Pt 2):S89-97 [PubMed Citation]dose/fármaco conforme a fonte ↗no original (inglês)

Animais

Baggot JD, Buckpitt A, Johnson D, Brennan P, Chung H. Bioavailability and disposition kinetics of HI-6 in Beagle dogs. Biopharm Drug Dispos. 1993 Mar;14(2):93-105. [PubMed Citation]dose/fármaco conforme a fonte ↗no original (inglês)

Lundy PM, Hill I, Lecavalier P, Hamilton MG, Vair C, Davidson C, Weatherby KL, Berger BJ. The pharmacokinetics and pharmacodynamics of two HI-6 salts in swine and efficacy in the treatment of GF and soman poisoning. Toxicology. 2005 Mar 30;208(3):399-409. [PubMed Citation]dose/fármaco conforme a fonte ↗no original (inglês)

Clement JG, Simons KJ, Briggs CJ. Effect of poisoning by soman (pinacolyl methylphosphonofluoridate) on the serum half-life of the cholinesterase reactivator HI-6 in mice. Biopharm Drug Dispos. 1988 Mar-Apr;9(2):177-86. [PubMed Citation]dose/fármaco conforme a fonte ↗no original (inglês)

Milic B, Maksimovic M, Nedelijkovic M. Trimedoxime and HI-6: kinetic comparison after intravenous administration to mice. Pharmacol Toxicol. 1996 Apr;78(4):269-72. [PubMed Citation]dose/fármaco conforme a fonte ↗no original (inglês)

Nyberg AG, Cassel G, Jeneskog T, Karlsson L, Larsson R, Lundström M, Palmer L, Persson SA. Pharmacokinetics of HI-6 and atropine in anaesthetized pigs after administration by a new autoinjector. Biopharm Drug Dispos. 1995 Nov;16(8):635-51. [PubMed Ciation]dose/fármaco conforme a fonte ↗no original (inglês)

Moore DH, Hayward IJ, Tucker FS, Lukey B. HI-6 and 2-PAM in sheep: pharmacokinetics and effects on muscle tissue following intramuscular injection. Biopharm Drug Dispos. 1991 Apr;12(3):223-32. [PubMed Citation]dose/fármaco conforme a fonte ↗no original (inglês)

Lundy PM, Hand BT, Broxup BR, Yipchuck G, Hamilton MG. Distribution of the bispyridinium oxime [14C] HI-6 in male and female rats. Arch Toxicol. 1990;64(5):377-82. [PubMed Citation]dose/fármaco conforme a fonte ↗no original (inglês)

Lukey BJ, Woodard CL, Clark CR, McCluskey MP. HI-6 pharmacokinetics in rabbits after intravenous and intramuscular administration. J Pharm Pharmacol. 1992 Aug;44(8):690-2. [PubMed Citation]dose/fármaco conforme a fonte ↗no original (inglês)

Joosen MJ, van der Schans MJ, van Dijk CG, Kuijpers WC, Wortelboer HM, van Helden HP. Increasing oxime efficacy by blood-brain barrier modulation. Toxicol Lett. 2011 Sep 25;206(1):67-71. [PubMed Citation]no original (inglês)

Maksimović M, Jovanović D, Kovacević V, Bokonjić D. Oral kinetics and bioavailability of the cholinesterase reactivator HI-6 after administration of 2 different formulations of tablets to dogs. Toxicol Lett. 1987 Nov;39(1):85-91. [PubMed Citation]dose/fármaco conforme a fonte ↗no original (inglês)

5. Indicações e posologia atualmente aprovadas pela FDA/EUA

Autorização de uso emergencial (FDA/CDC)

Nenhuma Autorização de Uso Emergencial para o HI-6 foi emitida pela Food and Drug Administration sob a seção 564 do Federal Food, Drug and Cosmetic Act (FD&C Act) (21 U.S.C. 360bbb-3), alterado pelo Project Bioshield Act of 2004 (Public Law 108-276).dose/fármaco conforme a fonte ↗

[DHHS/FDA; Emergency Preparedness and Response - Counterterrorism and Emerging Threats (01/12/2011)]

6. Formulações disponíveis atualmente / prazo de validade

Prazo de validade

Estabilidade

Schlager JW, Dolzine TW, Stewart JR, Wannarka GL, Shih ML. Operational evaluation of three commercial configurations of atropine/HI-6 wet/dry autoinjectors. Pharm Res. 1991 Sep;8(9):1191-4. [PubMed Citation]dose/fármaco conforme a fonte ↗no original (inglês)

Bogan R, Worek F, Koller M, Klaubert B. Photostability of antidotal oxime HI-6, impact on drug development. Drug Test Anal. 2012 Mar-Apr;4(3-4):208-14. [PubMed Citation]dose/fármaco conforme a fonte ↗no original (inglês)

Eyer P, Hagedorn I, Ladstetter B. Study on the stability of the oxime HI 6 in aqueous solution. Arch Toxicol. 1988;62(2-3):224-6. [PubMed Citation]no original (inglês)

7. Utilização e posologia off-label atuais

8. Via de administração / monitorização

Stojiljković MP, Jokanović M. Pyridinium oximes: rationale for their selection as causal antidotes against organophosphate poisonings and current solutions for auto-injectors. Arh Hig Rada Toksikol. 2006 Dec;57(4):435-43. [PubMed Citation]no original (inglês)

Thiermann H, Spohrer U, Klimmek R, Eyer P. Operational evaluation of wet / dry autoinjectors containing atropine in solution and powdered HI 6 or HLO 7. International Journal of Pharmaceutics. 1994: 109: 35-43.dose/fármaco conforme a fonte ↗no original (inglês)

9. Efeitos adversos

Marrs TC, Maynard RL, Sidell FR, eds. Chemical Warfare Agents Toxicology and Treatment, 2 nd Edition. West Sussex, England: John Wiley & Sons Ltd, 2007 p.305-329no original (inglês)

10. Contraindicação(ões)

11. Estudos clínicos em andamento

12. Estudos não clínicos em andamento

Current treatment of acute pesticide or organophosphate (OP) poisoning includes a combined administration of a cholinesterase reactivator (oxime), a muscarinic receptor antagonist (atropine) and an anticonvulsant (diazepam). Since the oxime does not penetrate the blood brain barrier (BBS), removal of excessive accumulation of acetylcholine (ACh) is not accomplished by acetylcholinesterase (AChE). Pesticides and OPs are significant terrorist threats to civilian populations. The chemical agent sarin was used in the Tokyo subway terrorist event in 1995 and resulted in long-term neuronal sequelae. Clearly, a new formulation of oxime is required to improve CNS therapy. Because of their chemical structure, the positively charged small molecule oximes do not penetrate the BBB and therefore can not treat pesticide- and OP- induced toxicity in the brain. The long term goal is to transport oxime (2-PAM, MMB-4) quickly and non-invasively into the CNS. CNS-penetrating oxime therapy will reactivate the brain AChE in a timely manner, reduce the requirement for anticonvulsant drug regimens, and improve the long term recovery of the exposed individual by reducing or eliminating CNS neuronal damage, (a) The investigators will synthesize and evaluate more lipoidal forms (pro-oximes), that can be converted to their active (charged) form in the brain, (b) In addition, the investigators will develop carrier(s) of oximes that will come from a class of FDA approved/phase 1 trial Pharmaceuticals that pass the BBB... including Stealth liposomes, nanoparticles, or cyclodextrins. (c) Two additional advantages to the carriers: should permit a sustained delivery of oxime into the systemic circulation through the skin (via skin patch) and prolong the circulatory time of the oxime(s), which are rapidly cleared by the renal system (T1/2<2 hr). (d) For formulations that are successful in in vitro BBB tissue culture and pig skin penetration models, the investigators will determine reactivation kinetics of the encapsulated oximes with pesticide- and OP-inhibited AChE and BuChE, the release rates of the oxime from the carrier in the peripheral and CNS of animal model (guinea pig), and the pharmacokinetics of the pro-oxime and oxime carrier and distribution in diaphragm, blood, and brain, (d) The most efficacious formulation will be validated in a status epilepticus guinea pig model as a therapy for CNS chemical agent OP-induced toxicity of DFP, GB, GD, and VX using EEC radiotelemetry probe techniques. This program will address an important and potential threat to civilian populations, for post-exposure CNS treatment in response to exposure to chemical threat agents. Further, the outcome of this work could provide a non-invasive means of administrating appropriate therapeutics for deleterious effects of OP poisoning, directly relevant to emergency and preparedness response to chemical threats for Public Health.dose/fármaco conforme a fonte ↗no original (inglês)

RePORTER. NIH. Next generation oxime therapeutic for chemical agent inhibited CNS (brain) ChEs.no original (inglês)

A major problem in chemical countermeasure discovery is the potential emergence of novel agents for which there are no known antidotes or post exposure therapies. Classic countermeasures have often been discovered only serendipitously or have taken years to develop. As novel chemical threats emerge (in the form of novel chemical warfare agents or environmental pollutants), the speed with which we are able to understand and counteract each threat will determine the magnitude of its societal impact. One promising approach for rapidly identifying and manipulating the molecular pathways underlying the response to any chemical threat is the use of phenotype-based chemical screens. Models can be developed in which specific toxicants result in reproducible phenotypes in cells or whole organisms. By subjecting these models to high-throughput screening (HTS), small molecules could be identified that reverse the phenotype through a variety of novel mechanisms. Small molecules discovered by these screens would be excellent lead compounds for novel countermeasures and powerful tools for dissecting toxicity pathways, which may in turn point to additional countermeasure targets. In this application, the investigators outline a process for rapid development of in vivo organophosphate toxicity models and their use in discovery of novel organophosphate countermeasures. Although the investigators expect the proposed project will lead directly to development of novel organophosphate countermeasures, they also expect it to serve as a model for rapid countermeasure development that can be applied broadly to other existing and emerging chemical threats. Specifically, the investigators propose: Aim 1. To develop and validate in vivo assays for organophosphate toxicity in the zebrafish. They will seek to identify physiological responses that are surrogates for known human responses to organophosphates and that can be scaled for high throughput in vivo screening. Aim 2. To scale these novel assays for automated high-throughput screening in multiwell plates. The investigators will develop assays for organophosphate toxicity that can be performed automatically in 96-well format. Aim 3. To identify novel compounds that counteract the effects of prior organophosphate exposure. High-throughput screening will identify compounds that facilitate recovery from organophosphate exposureno original (inglês)

RePORTER. NIH. Rapid development of in vivo models for countermeasure discovery: organophosphate.no original (inglês)

The proposed project is directed to improving prophylaxis and therapy for organophosphate nerve agent organophosphate exposure through the design of mutant human acetylcholinesterases (AChEs), novel oximes and related reactivating nucleophiles. This strategy of oxime-assisted catalysis modifies AChE such that, when placed in the circulation, the oxime and AChE become a catalytic, rather than a stoichiometric, scavenger of organophosphates. Proof of principle has already been established for hydrolysis of a series of organophosphates, and the investigators will refine AChE mutations and oxime structure to enhance catalytic rates for hydrolysis and retention in plasma space. Since oxime therapy, 2-PAM and HI-6, also reactivates inhibited AChE at the target site and the therapeutic benefits of long term oxime therapy have become fully appreciated recently, the investigators propose to design new reactivators based on contemporary knowledge of AChE structure to which they and other groups have contributed to over the past two decades. This approach considers impaction of the active center gorge and angle of access of the oxime as limiting constraints in the design strategy. Moreover, the /research/ groups have applied a novel freeze-frame, click chemistry to the development of reactivating agents using AChE-phosphonate conjugates as the template for synthesis of the triazoles. In addition to oxime assisted catalysis in plasma, new oximes and other nucleophiles will be developed as novel reactivating agents at the target site. This chemistry also enjoys the advantage of combinatorial screening for medium to high throughput in the synthesis-screening paradigm. Nucleophiles and nucleophile AChE combinations will be optimized for enhancing therapeutic efficacy to the particular offending organophosphate. Hence, the investigators approach will both augment catalytic scavenging of organophosphates in the circulation and enhance reactivation at the target tissues.dose/fármaco conforme a fonte ↗no original (inglês)

RePORTER. NIH. Oxime-assisted catalysis of organophosphates and reactivation of AChE.no original (inglês)

Organophosphorus (OP) chemical warfare agents, such as sarin and soman, are acutely toxic compounds that act by inhibiting the activity of the enzyme acetylcholinesterase (AChE) at nerve-nerve and neuromuscular junctions in the central and peripheral nervous systems, respectively. Inhibition of the enzyme occurs by phosphylation of the active site serine nucleophile that is normally involved in catalysis. Prompt administration of oximes can lead to dephosphylation of the phosphyl-AChE adduct and hence is an antidote strategy. However, and particularly with the chemical warfare agent soman, the initial phosphyl-AChE adduct undergoes a dealkylation reaction that leads to what is called the aged adduct, for which there is no known antidote. This application proposes to address this perplexing problem by synthesis and evaluation of AChE ligands that can bind in the active site of the aged enzyme adduct, and subsequently serve as methyl transfer agents to realkylate the aged enzyme. This in turn will resurrect the susceptibility of the adduct to nucleophilic dephosphylation by oximes and hence lead to recovery of enzyme activity. Success in this endeavor should therefore open the door to the development of efficacious drugs for antidote therapy against currently intractable OP chemical warfare agents. PUBLIC HEALTH RELEVANCE: This application endeavors to synthesize and evaluate ligands of the enzyme acetylcholinesterase that can serve as antidotes against organophosphorus (OP) chemical warfare agents. This work is motivated by the concern that terrorist organizations may aspire to inflict mass casualties by use of these agents. It is anticipated that as OP agent antidote therapy improves, the health and security risks that these agents pose to our society will be ameliorated.no original (inglês)

RePORTER. NIH. Synthesis of methylating ligands that reactivate aged acetylcholinesterase.no original (inglês)

The principal aim of this study is to optimize the efficient and affordable butyrylcholinesterase (BChE) based catalytic scavenger system developed in vitro for treatment of acute organophosphate (OP) intoxication. Currently used oxime and atropine combination therapy is inefficient for treatment of higher exposure OP poisoning due to constant acetylcholinesterase (AChE) reinhibition by excess OP. Novel approaches in therapy based on BChE as stoichiometric scavenger appear prohibitively expensive with a four figure price tag per single application. Conversion of BChE from stoichiometric to catalytic scavenger by combining it with an oxime reactivator has been hampered by lack of efficient BChE reactivators. In the investigators preliminary studies they were able to identify a novel class of superior specific BChE reactivators of distinct nontraditional structural scaffold. The proposed study deals with optimization of this novel class of reactivators using six step optimization iterative cycle that include detailed kinetic characterization of both reactivation and OP hydrolytic properties of oxime/BChE catalytic scavenger systems in buffer medium, extracorporeal human blood and in vivo in mouse animal model. Results of preliminary studies indicate that BChE in combination with optimized oxime reactivators should completely and rapidly, in a several minute timeframe, hydrolyze OPs in plasma space following exposure to an order of magnitude higher than LD50 OP doses at a fraction of cost of currently developed BChE based stoichiometric scavenger system. The proposed optimized catalytic scavenger system technology will thus enable an effective treatment of large OP intoxicated populations and serve as deterrent to the use of OP based nerve agents as terrorist or combat weapons in closed ventilation systems. PUBLIC HEALTH RELEVANCE: This project will develop optimized, efficient and affordable butyrylcholinesterase based catalytic scavenger system for rapid degradation of toxicants in the plasma space of patients exposed to OP agents.dose/fármaco conforme a fonte ↗no original (inglês)

RePORTER. NIH. Optimization of nonpyridinium oximes for BChE hydrolysis of OPs in plasma.no original (inglês)

13. Estudos necessários para a indicação clínica de defesa química

Summary of the NIAID Expert Panel Review on Medical Chemical Defense Research , March 19, 2003, Bethesda, MD (NIH/NIAID)no original (inglês)

14. Estudos necessários para indicações clínicas fora da defesa química

15. Questões éticas relacionadas aos estudos

16. Situação regulatória global

EUA

Medical Countermeasures Against Chemical Threats: Nervous System, Potential Medical Countermeasures (NIAID)no original (inglês)

UE

EMEA/CPMP Guidance Document on the Use of Medicinal Products for the Treatment of Patients Exposed to Terrorist Attacks with Chemical Agents (April 2003) (EMA)no original (inglês)

Outros

Sweetman SC (ed). Martindale, The Complete Drug Reference. London: Pharmaceutical Press (2009) p.1438no original (inglês)

17. Outras informações potencialmente úteis

Kuca K, Cabal J, Jun D, Hrabinova M. In vitro evaluation of acetylcholinesterase reactivators as potential antidotes against tabun nerve agent poisonings. Drug Chem Toxicol. 2006;29(4):443-9. [PubMed Citation]no original (inglês)

Bartling A, Worek F, Szinicz L, Thiermann H. Enzyme-kinetic investigation of different sarin analogues reacting with human acetylcholinesterase and butyrylcholinesterase. Toxicology. 2007 Apr 20;233(1-3):166-72. [PubMed Citation]no original (inglês)

Worek F, Aurbek N, Wetherell J, Pearce P, Mann T, Thiermann H. Inhibition, reactivation and aging kinetics of highly toxic organophosphorus compounds: pig versus minipig acetylcholinesterase. Toxicology. 2008 Feb 3;244(1):35-41. [PubMed Citation]no original (inglês)

Pejchal J, Osterreicher J, Kuca K, Jun D, Bajgar J, Kassa J. The influence of acetylcholinesterase reactivators on selected hepatic functions in rats. Basic Clin Pharmacol Toxicol. 2008 Aug;103(2):119-23. [PubMed Citation]no original (inglês)

Maxwell DM, Brecht KM, Sweeney RE. A common mechanism for resistance to oxime reactivation of acetylcholinesterase inhibited by organophosphorus compounds. Chem Biol Interact.2013 Mar 25;203(1):72-6. [PubMed Citation]no original (inglês)

Dadparvar M, Wagner S, Wien S, Kufleitner J, Worek F, von Briesen H, Kreuter J. HI 6 human serum albumin nanoparticles--development and transport over an in vitro blood-brain barrier model. Toxicol Lett. 2011 Sep 25;206(1):60-6. [PubMed Citation]no original (inglês)

US NLM. ChemIDplus Lite. HI-6dose/fármaco conforme a fonte ↗no original (inglês)

18. Publicações

Aas P. In vitro effects of toxogonin, HI-6 and HLö-7 on the release of [3H]acetylcholine from peripheral cholinergic nerves in rat airway smooth muscle. Eur J Pharmacol. 1996 Apr 22;301(1-3):59-66. [PubMed Citation]dose/fármaco conforme a fonte ↗no original (inglês)

Baggot JD, Buckpitt A, Johnson D, Brennan P, Chung H. Bioavailability and disposition kinetics of HI-6 in Beagle dogs. Biopharm Drug Dispos. 1993 Mar;14(2):93-105. [PubMed Citation]dose/fármaco conforme a fonte ↗no original (inglês)

Bartling A, Worek F, Szinicz L, Thiermann H. Enzyme-kinetic investigation of different sarin analogues reacting with human acetylcholinesterase and butyrylcholinesterase. Toxicology. 2007 Apr 20;233(1-3):166-72. [PubMed Citation]no original (inglês)

Bartosova L, Kuca K, Jun D, Kunesova G. Bispyridinium oximes as antidotal treatment of cyclosarin poisoning-in vitro and in vivo testing. Int J Toxicol. 2005 Nov-Dec;24(6):399-402. [PubMed Citation]no original (inglês)

Bajgar J, Fusek J, Kassa J, Kuca K, Jun D. Chemical aspects of pharmacological prophylaxis against nerve agent poisoning. Curr Med Chem. 2009;16(23):2977-86. [PubMed Citation]no original (inglês)

Bogan R, Worek F, Koller M, Klaubert B. Photostability of antidotal oxime HI-6, impact on drug development. Drug Test Anal. 2012 Mar-Apr;4(3-4):208-14. [PubMed Citation]dose/fármaco conforme a fonte ↗no original (inglês)

Clement JG, Simons KJ, Briggs CJ. Effect of poisoning by soman (pinacolyl methylphosphonofluoridate) on the serum half-life of the cholinesterase reactivator HI-6 in mice. Biopharm Drug Dispos. 1988 Mar-Apr;9(2):177-86. [PubMed Citation]dose/fármaco conforme a fonte ↗no original (inglês)

Clement JG, Rosario S, Bessette E, Erhardt N. Soman and sarin inhibition of molecular forms of acetylcholinesterase in mice. Time course of recovery and reactivation by the oxime HI-6. Biochem Pharmacol. 1991 Jul 5;42(2):329-35.dose/fármaco conforme a fonte ↗no original (inglês)

Clement JG, Bailey DG, Madill HD, Tran LT, Spence JD. The acetylcholinesterase oxime reactivator HI-6 in man: pharmacokinetics and tolerability in combination with atropine. Biopharm Drug Dispos. 1995 Jul;16(5):415-25. [PubMed Citation]dose/fármaco conforme a fonte ↗no original (inglês)

Dadparvar M, Wagner S, Wien S, Kufleitner J, Worek F, von Briesen H, Kreuter J. HI 6 human serum albumin nanoparticles--development and transport over an in vitro blood-brain barrier model. Toxicol Lett. 2011 Sep 25;206(1):60-6. [PubMed Citation]no original (inglês)

[DHHS/FDA; Emergency Preparedness and Response- Counterterrorism and Emerging Threats (12/01/2011)]no original (inglês)

EMEA/CPMP Guidance Document on the Use of Medicinal Products for the Treatment of Patients Exposed to Terrorist Attacks with Chemical Agents (April 2003) (EMA)no original (inglês)

Eyer P, Hagedorn I, Ladstetter B. Study on the stability of the oxime HI 6 in aqueous solution. Arch Toxicol. 1988;62(2-3):224-6. [PubMed Citation]no original (inglês)

Fišar Z , Hroudová J , Korábe čný J , Musílek K , Kuča K . In vitro effects of acetylcholinesterase reactivators on monoamine oxidase activity. Curr Med Chem. 2009;16(17):176-180. [PubMed Citation]no original (inglês)

Göransson-Nyberg A, Cassel G, Jeneskog T, Karlsson L, Larsson R, Lundstrom M, Perrson SA. Treatment of organophosphate poisoning in pigs: antidote administration by a new binary autoinjector. Arch Toxicol. 1995;70(1):20-7. [PubMed Citation]no original (inglês)

Gore A, Bloch-Shilderman E, Egoz I, Turetz J, Brandeis R. Efficacy assessment of a combined anticholinergic and oxime treatment against topical sarin-induced miosis and visual impairment in rats. Br J Pharmacol 2014 May;171(9):2364-74. [PubMed Citation]no original (inglês)

Herkert NM, Freude G, Kunz U, Thiermann H, Worek F. Comparative kinetics of organophosphates and oximes with erythrocyte, muscle and brain acetylcholinesterase. Toxicol Lett. 2012 Mar 7;209(2):173-8. [PubMed Citation]no original (inglês)

Joosen MJ, van der Schans MJ, van Dijk CG, Kuijpers WC, Wortelboer HM, van Helden HP. Increasing oxime efficacy by blood-brain barrier modulation. Toxicol Lett. 2011 Sep 25;206(1):67-71. [PubMed Citation]no original (inglês)

Jovanović D, Randjelović S, Joksović D. A case of unusual suicidal poisoning by the organophosphorus insecticide dimethoate. Hum Exp Toxicol. 1990 Jan;9(1):49-51. [PubMed Citation]no original (inglês)

Jovanovic D, Maksimovic M, Joksovic D, Kovacevic V. Oral forms of the oxime HI-6: a study of pharmacokinetics and tolerance after administration to healthy volunteers. Vet Hum Toxicol. 1990 Oct;32(5):419-21. [PubMed Citation]dose/fármaco conforme a fonte ↗no original (inglês)

Jokanović M, Stojiljković MP. Current understanding of the application of pyridinium oximes as cholinesterase reactivators in treatment of organophosphate poisoning. Eur J Pharmacol. 2006 Dec 28;553(1-3):10-7. [PubMed Citation]no original (inglês)

Jokanović M, Prostran M. Pyridinium oximes as cholinesterase reactivators. Structure-activity relationship and efficacy in the treatment of poisoning with organophosphorus compounds. Curr Med Chem. 2009;16(17):2177-88. [PubMed Citation]no original (inglês)

Jun D, Kuca K, Hronek M, Opletal L. Effect of some acetylcholinesterase reactivators on human platelet aggregation in vitro. J Appl Toxicol. 2006 May-Jun;26(3):258-61 [PubMed Citation]no original (inglês)

Jun D, Musilova L, Kuca K, Kassa J. Potency of several oximes to reactivate human acetylcholinesterase and butyrylcholinesterase inhibited by paraoxon in vitro. Chem Biol Interact. 2008 Sep 25;175(1-3):421-4. [PubMed Citation]no original (inglês)

Jun, D, Musilova L, Musilek K, Kuca K. In vitro ability of currently available oximes to reactivate organophosphate pesticide-inhibited human acetylcholinesterase and butyrylcholinesterase. Int J Mol Sci. 2011;12(3):2077-2087. [PubMed Citation]no original (inglês)

Kassa J. Review of oximes in the antidotal treatment of poisoning by organophosphorus nerve agents. J Toxicol Clin Toxicol. 2002;40(6):803-16. [PubMed Citation]no original (inglês)

Kassa J, Jun D, Kuca K, Bajgar J. Comparison of reactivating and therapeutic efficacy of two salts of the oxime HI-6 against tabun, soman and cyclosarin in rats. Basic Clin Pharmacol Toxicol. 2007 Nov;101(5):328-32. [PubMed Citation]dose/fármaco conforme a fonte ↗no original (inglês)

Kassa J, Karasova JZ, Pavlikova R, Misik J, Caisberger F, Bajgar J. The influence of combinations of oximes on the reactivating and therapeutic efficacy of antidotal treatment of tabun poisoning in rats and mice. J Appl Toxicol. 2010 Mar;30(2):120-4. [PubMed Citation]no original (inglês)

Kassa J, Kunesova G. The benefit of combination of oximes for the neuroprotective efficacy of antidotal treatment of sarin-poisoned rats. Toxicol Mech Methods. 2012 May;22(4):260-7. [PubMed Citation]no original (inglês)

Kassa J, Musilek K, Karasova JZ, Kuca K, Bajgar J. Two possibilities how to increase the efficacy of antidotal treatment of nerve agent poisonings. Mini Rev Med Chem. 2012 Jan;12(1):24-34. [PubMed Citation]no original (inglês)

Kassa J, Karasová JZ, Pavlíková R, Caisberger F, Bajgar J. The ability of oxime mixtures to increase the reactivating and therapeutic efficacy of antidotal treatment of cyclosarin poisoning in rats and mice. Acta Medica (Hradec Kralove). 2012;55(1):27-31. [PubMed Citation]no original (inglês)

Kassa J, Musilek K, Koomlova M, Bajgar J. A comparison of the efficacy of newly developed reversible inhibitors of acetylcholinesterase with commonly used pyridostigmine as pharmacological pre-treatment of soman-poisoned mice. Basic Clin Pharmacol Toxicol. 2012 Apr;110(4):322-6. [PubMed Citation]no original (inglês)

Koplivitz I, Stewart JR. A comparison of the efficacy of HI6 and 2-PAM against soman, tabun, sarin, and VX in the rabbit. Toxicol Lett. 1994 Feb 15;70(3):269-79. [PubMed Citation]dose/fármaco conforme a fonte ↗no original (inglês)

Koplovitz I, Menton R, Matthews C, Shutz M, Nalls C, Kelly S. Dose-response effects of atropine and HI-6 treatment of organophosphorus poisoning in guinea pigs. Drug Chem Toxicol. 1995 May-Aug;18(2-3):119-36. [PubMed Citation]dose/fármaco conforme a fonte ↗no original (inglês)

Kuca, K, Kassa J. Oximes-induced reactivation of rat brain acetylcholinesterase inhibited by VX agent. Hum Exp Toxicol. 2004 Apr;23(4):167-71. [PubMed Citation]no original (inglês)

Kuca K, Cabal J, Jun D, Kassa J, Bartosová L, Kunesová G . In vitro reactivation potency of some acetylcholinesterase reactivators against sarin- and cyclosarin-induced inhibitions. J Appl Toxicol. 2005 Jul-Aug;25(4):296-300. [PubMed Citation]no original (inglês)

Kuca K, Cabal J, Kassa J, Jun D, Hrabinova M. In vitro potency of H oximes (HI-6, HLo-7), the oxime BI-6, and currently used oximes (pralidoxime, obidoxime, trimedoxime) to reactivate nerve agent-inhibited rat brain acetylcholinesterase. J Toxicol Environ Health A. 2006 Aug;69(15):1431-1440. [PubMed Citation]dose/fármaco conforme a fonte ↗no original (inglês)

Kuca K, Jun D, Cabal J, Hrabinova M, Bartosova L, Opletalova V. Russian VX: inhibition and reactivation of acetylcholinesterase compared with VX agent. Basic Clin Pharmacol Toxicol. 2006 Apr;98(4):389-94. [PubMed Citation]no original (inglês)

Kuca K, Jun D, Bajgar J. Currently used cholinesterase reactivators against nerve agent intoxication: comparison of their effectivity in vitro. Drug Chem Toxicol. 2007;30(1):31-40. [PubMed Citation]no original (inglês)

Kuca K, Cabal J, Jun D, Hrabinova M. In vitro evaluation of acetylcholinesterase reactivators as potential antidotes against tabun nerve agent poisonings. Drug Chem Toxicol. 2006;29(4):443-9. [PubMed Citation]no original (inglês)

Kusić R, Bosković B, Vojvodić V, Jovanović D. HI-6 in man: blood levels, urinary excretion, and tolerance after intramuscular administration of the oxime to healthy volunteers. Fundam Appl Toxicol. 1985 Dec;5(6 Pt 2):S89-97 [PubMed Citation]dose/fármaco conforme a fonte ↗no original (inglês)

Kusić R, Jovanović D, Randjelović S, Joksović D, Todorovic V, Bosković B, Jokanović M, Vojvodić V. HI-6 in man: efficacy of the oxime in poisoning by organophosphorus insecticides. Hum Exp Toxicol. 1991 Mar;10(2):113-8. [PubMed Citation]dose/fármaco conforme a fonte ↗no original (inglês)

Lukey BJ, Woodard CL, Clark CR, McCluskey MP. HI-6 pharmacokinetics in rabbits after intravenous and intramuscular administration. J Pharm Pharmacol. 1992 Aug;44(8):690-2. [PubMed Citation]dose/fármaco conforme a fonte ↗no original (inglês)

Lundy PM, Hand BT, Broxup BR, Yipchuck G, Hamilton MG. Distribution of the bispyridinium oxime [14C] HI-6 in male and female rats. Arch Toxicol. 1990;64(5):377-82. [PubMed Citation]dose/fármaco conforme a fonte ↗no original (inglês)

Lundy PM, Hansen AS, Hand BT, Boulet CA. Comparison of several oximes against poisoning by soman, tabun and GF. Toxicology. 1992;72(1):99-105. [PubMed Citation]no original (inglês)

Lundy PM, Hill I, Lecavalier P, Hamilton MG, Vair C, Davidson C, Weatherby KL, Berger BJ. The pharmacokinetics and pharmacodynamics of two HI-6 salts in swine and efficacy in the treatment of GF and soman poisoning. Toxicology. 2005 Mar 30;208(3):399-409. [PubMed Citation]dose/fármaco conforme a fonte ↗no original (inglês)

Lundy PM, Raveh L, Amitai G. Development of the bisquaternary oxime HI-6 toward clinical use in the treatment of organophosphate nerve agent poisoning. Toxicol Rev. 2006;25(4):231-43. [PubMed Citation]dose/fármaco conforme a fonte ↗no original (inglês)

Lundy PM, Hamilton MG, Sawyer TW, Mikler J. Comparative protective effects of HI-6 and MMB-4 against organophosphorous nerve agent poisoning. Toxicology 2011 Jul 29;285(3):90-6. [PubMed Citation]dose/fármaco conforme a fonte ↗no original (inglês)

Luo C, Tong M, Chilukuri N, Brecht K, Maxwell DM, Saxena A. An in vitro comparative study on the reactivation of nerve agent-inhibited guinea pig and human acetylcholinesterases by oximes. Biochemistry. 2007 Oct 23;46(42):11771-9 [PubMed Citation]no original (inglês)

Luo C, Tong M, Maxwell DM, Saxena A. Comparison of oxime reactivation and aging of nerve agent-inhibited monkey and human acetylcholinesterases . Chem Biol Interact. 2008 Sep 25;175(1-3):261-6. [PubMed Citation]no original (inglês)

Luo C, Chambers C, Pattabiraman N, Tong M, Tipparaju P, Saxena A. Y124 at the peripheral anionic site is important for the reactivation of nerve agent-inhibited acetylcholinesterase by H oximes. Biochem Pharmacol. 2010 Nov 1;80(9):1427-36. [PubMed Citation]no original (inglês)

Luo C, Chambers C, Yang Y, Saxena A. Mechanism for potent reactivation ability of H oximes analyzed by reactivation kinetic studies with cholinesterases from different species. Chem Biol Interact. 2010 Sep 6;187(1-3):185-90. [PubMed Citation]no original (inglês)

Maksimović M, Jovanović D, Kovacević V, Bokonjić D. Oral kinetics and bioavailability of the cholinesterase reactivator HI-6 after administration of 2 different formulations of tablets to dogs. Toxicol Lett. 1987 Nov;39(1):85-91. [PubMed Citation]dose/fármaco conforme a fonte ↗no original (inglês)

Marrs TC, Rice P, Vale JA. The role of oximes in the treatment of nerve agent poisoning in civilian casualties. Toxicol Rev. 2006;25(4): 297-323. [PubMed Citation]no original (inglês)

Marrs TC, Maynard RL, Sidell FR, eds. Chemical Warfare Agents Toxicology and Treatment, 2 nd Edition. West Sussex, England: John Wiley & Sons Ltd, 2007 p.305-329no original (inglês)

Maxwell DM, Brecht KM, Sweeney RE. A common mechanism for resistance to oxime reactivation of acetylcholinesterase inhibited by organophosphorus compounds. Chem Biol Interact.2013 Mar 25;203(1):72-6. [PubMed Citation]no original (inglês)

Medical Countermeasures Against Chemical Threats: Nervous System, Potential Medical Countermeasures (NIAID)no original (inglês)

Mercey G, Verdelet T, Renou J, Kliachyna M, Baati R, Nachon F, Jean L, Renard PY. Reactivators of acetylcholinesterase inhibited by organophosphorus nerve agents. Acc Chem Res. 2012 May 15;45(5):756-66. [PubMed Citation]no original (inglês)

Mikler J, Tenn C, Worek F, Reiter G, Thiermann H, Garrett M, Bohnert S, Sawyer TW. Immobilization of Russian VX skin depots by localized cooling: implications for decontamination and medical countermeasures. Toxicol Lett. 2011 Sep 25;206(1):47-53. [PubMed Citation]no original (inglês)

Milic B, Maksimovic M, Nedelijkovic M. Trimedoxime and HI-6: kinetic comparison after intravenous administration to mice. Pharmacol Toxicol. 1996 Apr;78(4):269-72. [PubMed Citation]dose/fármaco conforme a fonte ↗no original (inglês)

Moore DH, Hayward IJ, Tucker FS, Lukey B. HI-6 and 2-PAM in sheep: pharmacokinetics and effects on muscle tissue following intramuscular injection. Biopharm Drug Dispos. 1991 Apr;12(3):223-32. [PubMed Citation]dose/fármaco conforme a fonte ↗no original (inglês)

Myhrer T, Enger S, Ass P. Efficacy of immediate and subsequent therapies against soman-induced seizures and lethality in rats. Basic Clin Pharmacol Toxicol. 2006 Feb;98(2):184-91. [PubMed Citation]no original (inglês)

Myhrer T, Enger S, Aas P. Determination of anti-convulsant and life-preserving capacities of three types of auto-injector therapies against soman intoxication in rats. Drug Test Anal.Drug Test Anal. 2013 Aug;5(8):693-701. [PubMed Citation]no original (inglês)

Myhrer T, Enger S, Mariussen E, Aas P. Two medical therapies very effective shortly after high levels of soman poisoning in rats, but only one with universal utility. Toxicology 2013 Dec 15;314(2-3):221-8. [PubMed Citation]no original (inglês)

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Pejchal J, Osterreicher J, Kuca K, Jun D, Bajgar J, Kassa J. The influence of acetylcholinesterase reactivators on selected hepatic functions in rats. Basic Clin Pharmacol Toxicol. 2008 Aug;103(2):119-23. [PubMed Citation]no original (inglês)

Pohanka M, Sobotka J, Svobodova H, Stetina R. Sulfur mustard induced oxidative stress and its alteration using asoxime (HI-6). Interdiscip Toxicol. 2013 Dec;6(4):198-202.dose/fármaco conforme a fonte ↗no original (inglês)

Pohanka M, Sobotka J, Svobodova H, Stetina R. Investigation of oxidative stress in blood, brain, kidney, and liver after oxime antidote HI-6 application in a mouse experimental model. Drug Chem Toxicol. 2011 Jul;34(3):255-60 [PubMed Citation]dose/fármaco conforme a fonte ↗no original (inglês)

Pohanka M, Novotny L, Zdarova-Karasova J, Bandouchova H, Zemek F, Hrabinova M, Misik J, Kuca K, Bajgar J, Zitka O, Cernei N, Kizek R, Pikula J. Asoxime (HI-6) impact on dogs after one and tenfold therapeutic doses: assessment of adverse effects, distribution, and oxidative stress. Environ Toxicol Pharmacol. 2011 Jul;32(1):75-81. [PubMed Citation]dose/fármaco conforme a fonte ↗no original (inglês)

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RePORTER. NIH. Next generation oxime therapeutic for chemical agent inhibited CNS (brain) ChEs.no original (inglês)

RePORTER. NIH. Optimization of nonpyridinium oximes for BChE hydrolysis of OPs in plasma.no original (inglês)

RePORTER. NIH. Oxime-assisted catalysis of organophosphates and reactivation of AChE.no original (inglês)

RePORTER. NIH. Rapid development of in vivo models for countermeasure discovery: organophosphate.no original (inglês)

RePORTER. NIH. Synthesis of methylating ligands that reactivate aged acetylcholinesterase.no original (inglês)

Schlager JW, Dolzine TW, Stewart JR, Wannarka GL, Shih ML. Operational evaluation of three commercial configurations of atropine/HI-6 wet/dry autoinjectors. Pharm Res. 1991 Sep;8(9):1191-4. [PubMed Citation]dose/fármaco conforme a fonte ↗no original (inglês)

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Soukup O, Krůšek J, Kaniaková M, Kumar UK, Oz M, Jun D, Fusek J, Kuča K, Tobin G. Oxime reactivators and their in vivo and in vitro effects on nicotinic receptors. Physiol Res. 2011;60(4):679-86. [PubMed Citation]no original (inglês)

Soukup O, Kumar UK, Proska J, Bratova L, Adem A, Jun D, Fusek J, Kuca K, Tobin G. Environ Toxicol Pharmacol. The effect of oxime reactivators on muscarinic receptors: functional and binding examinations. 2011 May;31(3):364-70. [PubMed Citation]no original (inglês)

Soukup O, Kristofikova Z, Jun D, Tambor V, Ripova D, Kuca K. The interaction of standard oxime reactivators with hemicholinium-3 sensitive choline carriers. Toxicol Lett. 2012 Aug 3;212(3):315-9. [PubMed Citation]no original (inglês)

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Summary of the NIAID Expert Panel Review on Medical Chemical Defense Research , March 19, 2003, Bethesda, MD (NIH/NIAID)no original (inglês)

Svobodova H, Jost P, Stetina R. Cytotoxicity and genotoxicity evaluation of antidote oxime HI-6 tested on eight cell lines of human and rodent origin. Gen Physiol Biophys. 2012 Mar;31(1):77-84. [PubMed Citation]dose/fármaco conforme a fonte ↗no original (inglês)

Sweetman SC (ed). Martindale, The Complete Drug Reference. London: Pharmaceutical Press (2009) p.1456no original (inglês)

Thiermann H, Spohrer U, Klimmek R, Eyer P. Operational evaluation of wet / dry autoinjectors containing atropine in solution and powdered HI 6 or HLO 7. International Journal of Pharmaceutics. 1994: 109: 35-43.dose/fármaco conforme a fonte ↗no original (inglês)

Thiermann H, Szinicz L, Eyer P, Felgenhauer N, Zilker T, Worek F. Lessons to be learnt from organophosphorus pesticide poisoning for the treatment of nerve agent poisoning. Toxicology. 2007 Apr 20;233(1-3):145-54. [PubMed Citation]no original (inglês)

US NLM. ChemIDplus Lite. HI-6dose/fármaco conforme a fonte ↗no original (inglês)

Wetherell J, Price M, Mumford H. A novel approach for medical countermeasures to nerve agent poisoning in the guinea-pig. Neurotoxicology. 2006 Jul;27(4):485-91. [PubMed Citation]no original (inglês)

Worek F, Widmann R, Knopff O, Szinicz L. Reactivating potency of obidoxime, pralidoxime, HI 6 and HLö 7 in human erythrocyte acetylcholinesterase inhibited by highly toxic organophosphorus compounds. Arch Toxicol. 1998 Mar;72(4):237-43. [PubMed Citation]dose/fármaco conforme a fonte ↗no original (inglês)

Worek F, Aurbek N, Koller M, Becker C, Eyer P, Thiermann H. Kinetic analysis of reactivation and aging of human acetylcholinesterase inhibited by different phosphoramidates. Biochem Pharmacol. 2007 Jun 1;73(11):1807-1817. [PubMed Citation]no original (inglês)

Worek F, Aurbek N, Wetherell J, Pearce P, Mann T, Thiermann H. Inhibition, reactivation and aging kinetics of highly toxic organophosphorus compounds: pig versus minipig acetylcholinesterase. Toxicology. 2008 Feb 3;244(1):35-41. [PubMed Citation]no original (inglês)

19. Sites

NIH CounterACT Program (HHS/NIH)no original (inglês)

NIH RePORTER (HHS/NIH)no original (inglês)

ClinicalTrials.gov (HHS/NIH)no original (inglês)

PubMed (HHS/NIH)no original (inglês)

DailyMed (HHS/NIH)no original (inglês)

Record last updated 9/18/2014no original (inglês)