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The present status of research in burn toxins
Abstract:
Modern intensive care combined with current improvements in the specific, systemic and local therapy of burns has delayed the mortal effects of severe burns. Nor has there been any significant improvement in this mortality during the last decade. The occurrence of uncontrollable infection and sepsis due to gram-negative bacteria or fungi as the basic cause of death was not a satisfactory explanation. So, progress should only be expected from a new concept in burn treatment. This new concept should be to view the burn disease as being caused by toxic factors induced by thermal injury to the skin. Electron-microscope studies in mice and rats have revealed similar mitochondrial alterations in hepatocytes after either a sublethal controlled burn injury or an intraperitoneal application of an equivalent dose, of a cutaneous burn toxin. The intraperitoneal injection of different amounts of the burn toxin indicated, that the extent of the mitochondrial changes correlated directly with the dose of toxin. Investigations of liver metabolism suggested an inhibition of the oxygenation chain. The incubation of isolated liver cells together with the burn toxin demonstrated by scanning electron microscopy a direct cytotoxic effect of the burn toxin. In animal tests the pathogenic effect of the burn toxin could be prevented by treatment with an antitoxic IgG generated in sheep. The fatal sepsis of severely burned patients is the consequence of a decreased host defence against infections, which is caused by a primary and general toxic alteration of the whole organism. One important aspect of treatment should therefore be the elimination of burn toxins. To achieve this management should include primary excision of the burns, local application of nonabsorbable protein-complex-binding substances and specific passive immunotherapy with an antitoxic IgG.
Insights
Severe burns cause toxic factors that impair host defense, leading to fatal sepsis. New burn treatments must focus on eliminating these toxins through excision, binding agents, and antitoxin immunotherapy.
Area of Science:
- Toxicology
- Burn Medicine
- Immunology
Background:
- Despite advances in burn care, mortality from severe burns remains high.
- Infection and sepsis are common causes of death, but not fully explained by current understanding.
- A new therapeutic concept is needed, focusing on the systemic toxic effects of burns.
Purpose of the Study:
- To investigate the role of toxic factors in burn disease.
- To identify the cellular and metabolic effects of burn-induced toxins.
- To evaluate potential antitoxin therapies for severe burns.
Main Methods:
- Electron microscopy to examine mitochondrial alterations in hepatocytes.
- In vivo and in vitro studies using a purified cutaneous burn toxin.
- Animal models treated with antitoxic IgG for efficacy assessment.
Main Results:
- Burn toxins induce mitochondrial damage in liver cells, dose-dependently.
- Toxins inhibit the liver's oxygenation chain and have direct cytotoxic effects.
- Antitoxic IgG treatment prevented the pathogenic effects of burn toxins in animal tests.
Conclusions:
- Severe burns cause systemic toxicity, impairing host defense and leading to sepsis.
- Eliminating burn toxins is a crucial therapeutic strategy.
- Treatment should involve burn excision, local toxin binding, and passive immunotherapy.