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Toxicology Letters|June 12, 2012
The interaction of standard oxime reactivators with hemicholinium-3 sensitive choline carriersO Soukup, Z Kristofikova, D Jun, et al.Mini Reviews in Medicinal Chemistry|March 5, 2019
Some Possibilities to Study New Prophylactics against Nerve AgentsJ Bajgar, J Kassa, T Kucera, et al.Journal of Applied Toxicology : JAT|February 1, 2007
In vitro oxime reactivation of red blood cell acetylcholinesterase inhibited by methyl-paraoxonG A Petroianu, K Arafat, S M Nurulain, et al.Bratislavske Lekarske Listy|December 25, 2010
Pralidoxime--the gold standard of acetylcholinesterase reactivators--reactivation in vitro efficacyK Kuca, M Hrabinova, O Soukup, et al.Analytical and Bioanalytical Chemistry|September 5, 2007
In vitro and in vivo metabolisms of K-48B Benko, H Kalász, K Ludányi, et al.Molecular Biosystems|July 15, 2016
Assessment of DNA-binding affinity of cholinesterase reactivators and electrophoretic determination of their effect on topoisomerase I and II activityJ Janockova, E Zilecka, J Kasparkova, et al.Journal of Applied Toxicology : JAT|February 17, 2007
Five oximes (K-27, K-48, obidoxime, HI-6 and trimedoxime) in comparison with pralidoxime: survival in rats exposed to methyl-paraoxonG A Petroianu, S M Nurulain, N Nagelkerke, et al.Physiological Research|August 27, 2014
The interaction of quaternary reversible acetylcholinesterase inhibitors with the nicotinic receptorV Sepsova, J Krusek, J Zdarova Karasova, et al.Toxicology Mechanisms and Methods|December 22, 2009
New K-Oximes (K-27 and K-48) in Comparison with Obidoxime (LuH-6), HI-6, Trimedoxime (TMB-4), and Pralidoxime (2-PAM): Survival in Rats Exposed IP to the Organophosphate ParaoxonG A Petroianu, M Y Hasan, S M Nurulain, et al.Journal of Chromatography. A|May 13, 2006
High-performance liquid chromatographic determination of the plasma concentration of K-27, a novel oxime-type cholinesterase reactivatorK Tekes, M Y Hasan, R Sheen, et al.Pageof 5