Restoration of nerve agent impaired neuromuscular transmission in rat diaphragm by bispyridinium non-oximes – Structure-activity relationships

Organophosphate (OP) poisoning is currently treated with atropine, oximes and benzodiazepines. The nicotinic signs, i.e., respiratory impairment, can only be targeted indirectly via the use of oximes as reactivators of OP-inhibited acetylcholinesterase. Hence, compounds selectively targeting nicotin...

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Veröffentlicht in:Toxicology (Amsterdam) 2024-03, Vol.503, p.153741-153741, Article 153741
Hauptverfasser: Amend, Niko, Timperley, Christopher M., Bird, Mike, Green, A. Christopher, Worek, Franz, Seeger, Thomas
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Sprache:eng
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Zusammenfassung:Organophosphate (OP) poisoning is currently treated with atropine, oximes and benzodiazepines. The nicotinic signs, i.e., respiratory impairment, can only be targeted indirectly via the use of oximes as reactivators of OP-inhibited acetylcholinesterase. Hence, compounds selectively targeting nicotinic acetylcholine receptors (nAChRs) might fundamentally improve current treatment options. The bispyridinium compound MB327 has previously shown some therapeutic effect against nerve agents in vitro and in vivo. Nevertheless, compound optimization was deemed necessary, due to limitations (e.g., toxicity and efficacy). The current study investigated a series of 4-tert-butyl bispyridinium compounds and of corresponding bispyridinium compounds without substituents in a rat diaphragm model using an indirect field stimulation technique. The length of the respective linker influenced the ability of the bispyridinium compounds to restore muscle function in rat hemidiaphragms. The current data show structure-activity relationships for a series of bispyridinium compounds and provide insight for future structure-based molecular modeling. •Bispyridinium non-oximes were able to restore muscle function in rat diaphragms.•Structure-activity relationships for a series of bispyridinium compounds were shown.•A potential insight was gained for future structure-based molecular modeling.
ISSN:0300-483X
1879-3185
DOI:10.1016/j.tox.2024.153741