Percutaneous toxicity of anticoagulant warfarin in rats

Milena Kataranovski1, Ivana Mirkov, Jelena Vrankovic

  • 1Department of Ecology, Institute for Biological Research "S. Stankovic," Belgrade, Serbia. milena@ibiss.bg.ac.yu

Insights

Percutaneous exposure to warfarin, an anticoagulant rodenticide, affects granulocytes beyond blood clotting. This study reveals skin absorption can trigger immune cell responses, indicating broader toxicological impacts.

Area of Science:

  • Toxicology
  • Immunology
  • Dermatology

Background:

  • Anticoagulant rodenticides (ARs) primarily cause coagulopathy via skin exposure.
  • Limited data exists on non-hemostatic biological effects of ARs absorbed through the skin.

Purpose of the Study:

  • To evaluate the percutaneous toxicity of warfarin, focusing on its effects on peripheral blood granulocytes in rats.
  • To investigate immune cell responses beyond hemostasis following dermal exposure to warfarin.

Main Methods:

  • Warfarin was applied epicutaneously to rats for three consecutive days.
  • Prothrombin time, granulocyte counts, MTT reduction assay (metabolic viability), and NBT reduction assay (respiratory burst) were measured.
  • Plasma from treated rats was used to assess its effect on naïve granulocytes.

Main Results:

  • Percutaneous warfarin application confirmed systemic absorption and induced coagulopathy (increased prothrombin time).
  • Warfarin increased granulocyte numbers and metabolic viability, with higher doses activating and priming granulocytes.
  • Plasma from warfarin-treated rats enhanced granulocyte respiratory burst activity, suggesting soluble mediators are involved.

Conclusions:

  • Dermal exposure to warfarin elicits significant granulocyte activation and priming, independent of its anticoagulant effects.
  • Soluble mediators in circulation appear to mediate these immune responses.
  • This study highlights potential non-hemostatic toxicological effects of anticoagulant rodenticides absorbed through the skin.

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