Long-term cognitive deficits accompanied by reduced neurogenesis after soman poisoning

Neurotoxicology. 2009 Jan;30(1):72-80. doi: 10.1016/j.neuro.2008.11.010. Epub 2008 Nov 28.

Abstract

To date, treatment of organophosphate (OP) poisoning shows several shortcomings, and OP-victims might suffer from lasting cognitive deficits and sleep-wake disturbances. In the present study, long-term effects of soman poisoning on learning ability, memory and neurogenesis were investigated in rats, treated with the anticholinergic atropine and the oxime HI-6 for reactivation of soman-inhibited acetylcholinesterase. We also investigated whether sub-chronic treatment with the reported neurogenesis enhancer olanzapine would stimulate neurogenesis and possibly normalize the anticipated long-term deleterious effects of soman intoxication. Animals were treated with HI-6 (125 mg/kg i.p.), followed after 30 min by soman (200 microg/kg s.c.) and atropine sulphate (16 mg/kg i.m.) 1 min thereafter. Soman poisoning led to an elevation of extracellular acetylcholine levels to 1500% over baseline values as assessed by striatal microdialysis. Brain acetylcholinesterase was inhibited over 95%. This was accompanied by short recurrent seizures lasting for 40 min. Osmotic minipumps releasing olanzapine (7.5 mg/kg/day) or vehicle were subcutaneously implanted 24 h post-intoxication. After drug delivery for 4 weeks, newborn cells were BrdU labeled. Learning and memory performance were assessed 8 weeks after soman poisoning, followed by analysis of surviving newborn cells (BrdU) and neurogenesis (doublecortin, DCX). Eight weeks after soman-intoxication a significantly impaired learning ability was found that was paralleled by significantly lower numbers of DCX-positive cells but no changes in the number of BrdU-labeled cells. Apparently, the present Olanzapine regime was ineffective. We conclude that soman poisoning has long lasting effects on learning ability, a finding that was accompanied by impaired neurogenesis. Although we confirm a correlation between impaired neurogenesis and cognitive deficits, establishing the true causal relationship between these processes in OP exposed animals awaits future research.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Acetylcholine / analysis*
  • Acetylcholinesterase / blood
  • Acetylcholinesterase / metabolism
  • Animals
  • Atropine / pharmacology
  • Benzodiazepines / pharmacology
  • Cholinesterase Reactivators / pharmacology*
  • Corpus Striatum / chemistry
  • Doublecortin Protein
  • Hippocampus / chemistry
  • Hippocampus / drug effects
  • Male
  • Maze Learning / drug effects*
  • Neurogenesis / drug effects*
  • Olanzapine
  • Oximes
  • Pyridinium Compounds / pharmacology
  • Rats
  • Rats, Sprague-Dawley
  • Seizures / chemically induced
  • Soman / poisoning*

Substances

  • Cholinesterase Reactivators
  • Dcx protein, rat
  • Doublecortin Protein
  • Oximes
  • Pyridinium Compounds
  • Benzodiazepines
  • Atropine
  • Soman
  • Acetylcholinesterase
  • asoxime chloride
  • Olanzapine
  • Acetylcholine