Related Experiment Videos
The cell in shock: the origin of multiple organ failure
G Schlag1, H Redl, S Hallström
1Ludwig Boltzmann Institute for Experimental and Clinical Traumatology, Vienna, Austria.
Abstract:
The immediate organ damage seen after multiple trauma and in shock is a typical example of non-bacterial inflammation triggered by activation of various mediators of both the humoral and cellular systems. Anaphylatoxins and the low-flow syndrome during the shock phase account for increased PMN* margination, which in turn causes pulmonary leukostasis and may provoke massive mediator release by PMN (oxygen radicals, proteinases, eicosanoids, PAF etc). This probably leads to severe endothelial cell damage, especially in the lung. Adherence of PMN to the endothelium appears to create the micro-environment where high concentrations of proteolytic enzymes and reactive oxygen radicals exert a deleterious effect on the cell membrane. Endothelial cell membrane injury leads to increased vascular permeability and cell edema. The development of the 'organ in shock' may require a few hours and initially cause minor or no functional impairment at all. Only when shock is severe is there early organ failure, which in this stage may still be an expression of non-bacterial inflammation. Numerous studies have reported the existence of shock-induced cardiodepressant substances in association with various forms of circulatory shock. We have determined a net negative inotropic effect of the low-molecular-weight plasma fraction in severe hypovolemic-traumatic shock and have isolated a cardiodepressant factor (CDF), which by blockade of the calcium inward current has a negative inotropic a chronotropic effect. The intestine as a shock organ appears to range first among the organs involved. The translocation of bacteria from the intestinal tract, the 'intestine in shock' represents the trigger reaction that eventually leads from the 'organ in shock', early organ failure to late (septic) organ failure. Here the most prominent factor is endotoxin (LPS) as a basic mediator of gram-negative bacteria, which also triggers the activation of humoral and cellular systems. The posttraumatic hyperdynamic phase commonly starts on days 3-5 and is mainly caused by bacteremia and/or endotoxemia. Macrophages have a major impact on the late phase of organ failure. At present, the most prominent cellular mediator of the lethal effect of endotoxin is thought to be cachectin, which is identical with the tumor necrotising factor (TNF). TNF is secreted by monocytes/macrophages (MO/MA) in response to LPS. Via macrophage derived cytokines and by LPS there is activation of endothelial cells, with increased adhesiveness for PMN. Both due to this increased adhesiveness and the presence of LPS and cytokines, PMN undergo massive activation, which causes mediator release and tissue damage.(ABSTRACT TRUNCATED AT 400 WORDS)
Insights
This study investigates non-bacterial inflammation in organ damage after trauma and shock. Researchers identified a cardiodepressant factor (CDF) and explored the role of endotoxin (LPS) in leading to septic organ failure.
Area of Science:
- Trauma and Shock Research
- Inflammation and Immunology
- Cardiovascular Physiology
Background:
- Multiple trauma and shock trigger non-bacterial inflammation via humoral and cellular mediators.
- Polymorphonuclear leukocytes (PMN) margination and activation contribute to endothelial cell damage and organ dysfunction.
- The intestine is a critical shock organ, with bacterial translocation and endotoxin (LPS) playing key roles in subsequent organ failure.
Purpose of the Study:
- To elucidate the mechanisms of immediate organ damage in trauma and shock.
- To identify and characterize shock-induced cardiodepressant substances.
- To understand the progression from early organ dysfunction to late septic organ failure.
Main Methods:
- Analysis of mediator activation in trauma and shock.
- Determination of inotropic effects of plasma fractions in hypovolemic-traumatic shock.
- Isolation and characterization of a cardiodepressant factor (CDF).
- Investigation of endotoxin (LPS) and macrophage-derived cytokines in post-traumatic inflammation.
Main Results:
- PMN activation leads to endothelial damage, increased vascular permeability, and organ edema.
- A low-molecular-weight plasma fraction exhibited a negative inotropic effect, and a cardiodepressant factor (CDF) was isolated.
- CDF was found to block the calcium inward current, causing negative inotropic and chronotropic effects.
- Endotoxin (LPS) from bacterial translocation is a key mediator in progressing from early organ shock to septic organ failure.
- Tumor necrosis factor (TNF), secreted by macrophages in response to LPS, is a major mediator of endotoxin's lethal effects.
Conclusions:
- Non-bacterial inflammation is central to immediate organ damage in trauma and shock.
- A novel cardiodepressant factor (CDF) contributes to cardiac dysfunction during shock.
- Bacterial translocation and endotoxin are critical triggers for the transition to septic organ failure.
- Understanding these inflammatory pathways is crucial for managing trauma and shock patients.