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Published on: June 15, 2019
Reactive oxygen species, antiproteases, and cytokines in sepsis
1Lehrstuhl Biochemische Pharmakologie, Universität Konstanz.
Abstract:
Although the shock syndrome is recognized as a form of "mediator poisoning", a plethora of details is hardly converging into a coherent concept of chronological and molecular order. As a model for organ failure in septic shock, three alternative experimental approaches with a common pathology are presented: When galactosamine-sensitized mice receive either lipopolysaccharide or leukotriene D4 or tumor necrosis factor alpha they develop fulminant hepatitis within few hours with a lethal outcome within one day. Detailed pharmacological intervention studies allow to conclude that endotoxin-induced leukotriene D4 release induces a transient ischemia by the known vasoconstrictive action of this eicosanoid. A following reperfusion/reoxygenation phase gives rise to superoxide formation which inactivates alpha 1 proteinase inhibitor. Thus a serine protease becomes active which is responsible for the processing of a monocytic tumor necrosis factor alpha precursor to be released into the circulation after proteolytic cleavage. By this sequence the final central mediator of shock and sepsis becomes systematically abundant. The concept arising from these studies reconciles previously known findings and provides a link between the role of reactive oxygen species in inflammation, the balance of proteases and antiproteases in the extracellular space and the release of the cytokine tumor necrosis factor in sepsis and shock.
Insights
Septic shock involves mediator poisoning. This study reveals endotoxin triggers leukotriene D4, causing ischemia, then superoxide formation, activating proteases that release tumor necrosis factor alpha, leading to organ failure.
Area of Science:
- Pathophysiology
- Molecular Biology
- Immunology
Background:
- Shock syndrome is a complex mediator poisoning.
- The precise chronological and molecular mechanisms remain unclear.
- Organ failure in septic shock requires a coherent conceptual model.
Purpose of the Study:
- To elucidate the molecular sequence leading to organ failure in septic shock.
- To establish a chronological order of mediator release and action.
- To link reactive oxygen species, protease/antiprotease balance, and cytokine release in sepsis.
Main Methods:
- Utilized galactosamine-sensitized mice as a model for septic shock.
- Administered lipopolysaccharide, leukotriene D4, or tumor necrosis factor alpha.
- Conducted detailed pharmacological intervention studies.
Main Results:
- Endotoxin-induced leukotriene D4 release caused transient ischemia.
- Reperfusion/reoxygenation led to superoxide formation, inactivating alpha 1 proteinase inhibitor.
- Active serine protease processed tumor necrosis factor alpha precursor, increasing its circulation.
Conclusions:
- A sequential pathway links endotoxin to lethal hepatitis and organ failure.
- This pathway involves leukotriene D4, ischemia, reactive oxygen species, protease imbalance, and tumor necrosis factor alpha.
- Provides a unified concept for shock and sepsis mediator dynamics.
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