Toxicokinetics and tolerance of a high energy material 3,4,5-trinitropyrazole (TNP) in mice

Toxicol Appl Pharmacol. 2018 Sep 15:355:103-111. doi: 10.1016/j.taap.2018.06.023. Epub 2018 Jun 26.

Abstract

The high-energy compound 3,4,5-trinitropyrazole (TNP) was developed as an alternative to other less energetic and more sensitive explosive materials, in particular 1-methyl-2,4,6-trinitrobenzene (TNT). However, the level of toxicity of TNP remains understudied. Here using an in vivo CD1 mouse model, we mimicked an acute exposure (24 h) to TNP, given either orally or intravenously, and determined the maximum administrable doses (190 mg/kg and 11 mg/kg, respectively), as well as the lethal dose for 50% (LD50) of female or male mice (390 mg/kg for both) treated intravenously with TNP alone. Several metabolites including nitroso-dinitro-pyrazole, hydroxylamino-dinitro-pyrazole, hydroxyl-dinitro-pyrazole and amino-dinitro-pyrazole were identified in urine. TNP is quickly metabolized and eliminated via urine as two main amino-dinitro-pyrazole metabolites. A comparison of the transcriptomic effects of TNP and TNT after 10 days exposure enabled us to demonstrate no major induction of transcripts involved both in cell death mechanisms (apoptosis, necrosis, autophagy) and physiological pathways (glycolysis, ATP production). Finally, subchronic exposure to TNP was replicated in female mice, fed 16.8-52.8 mg/kg/day of TNP for one month, to study the impact on cellular functions. Although blood TNP levels remained high, a lower rate of TNP accumulation in the liver and lungs were observed than during an acute exposure. Conversely, cellular stress functions explored using the RT2 Profiler™ PCR Array Mouse Molecular Toxicology PathwayFinder remained unaltered after this chronic exposure. These findings demonstrate that TNP can be rapidly eliminated in vivo without accumulating in vital organs.

Keywords: 3,4,5-Trinitropyrazole; Explosives molecules; High energy materials (HEM); Metabolism; Pharmacokinetics; Pyrazoles.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Adenosine Triphosphate / biosynthesis
  • Animals
  • Apoptosis / drug effects
  • Autophagy / drug effects
  • Biotransformation
  • Explosive Agents / pharmacokinetics
  • Explosive Agents / toxicity*
  • Female
  • Glycolysis / drug effects
  • Lethal Dose 50
  • Male
  • Mice
  • Necrosis
  • Pyrazoles / toxicity
  • Tissue Distribution
  • Transcriptome / drug effects

Substances

  • Explosive Agents
  • Pyrazoles
  • Adenosine Triphosphate