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Role of the gut in multiple organ failure: bacterial translocation and permeability changes
1Department of Surgery, UMDNJ-New Jersey Medical School, MSB G-506, 185 South Orange Avenue, Newark, New Jersey, 07103-2714, U.S.A.
Abstract:
It is clear that increased gut permeability and bacterial translocation play a role in multiple organ failure (MOF). Failure of the gut barrier remains central to the hypothesis that toxins escaping from the gut lumen contribute to activation of the host's immune inflammatory defense mechanisms, subsequently leading to the autointoxication and tissue destruction seen in the septic response characteristic of MOF. However, the role of the gut is more than that of a sieve, which simply allows passage of bacteria and endotoxin from the gut lumen to the portal or systemic circulation. It appears, in addition, that the translocation of bacteria and endotoxin may lead to local activation of the immune inflammatory system and the local production of cytokines and other immune inflammatory mediators. These intestinally derived mediators may then exacerbate the systemic inflammatory response and potentially lead to a further increase in gut permeability. A vicious cycle of increased intestinal permeability, leading to toxic mediator release, resulting in a further increase in gut permeability is generated. Additionally, the systemic and local inflammatory cells that become activated in the gut contribute to the systemic response characteristic of the sepsis syndrome and MOF. Thus even if the immune inflammatory system, rather than the gut, is the "motor of" MOF, the gut remains one of the major pistons that turns the motor.
Insights
Increased gut permeability allows toxins to enter circulation, triggering immune responses that cause multiple organ failure (MOF). The gut
Area of Science:
- Gastroenterology
- Immunology
- Critical Care Medicine
Background:
- Gut barrier dysfunction and bacterial translocation are implicated in multiple organ failure (MOF).
- The gut barrier's failure is hypothesized to release toxins, activating immune responses and leading to sepsis.
Purpose of the Study:
- To explore the multifaceted role of the gut in the pathogenesis of MOF.
- To elucidate the mechanisms by which gut-derived factors contribute to systemic inflammation and organ dysfunction.
Main Methods:
- Review of existing literature on gut permeability, bacterial translocation, and MOF.
- Analysis of the interplay between the gut immune system and systemic inflammatory responses.
Main Results:
- Gut permeability allows bacterial and endotoxin translocation, activating local and systemic immune responses.
- Intestinally derived mediators can exacerbate systemic inflammation and further increase gut permeability, creating a vicious cycle.
- Activated inflammatory cells within the gut contribute significantly to the sepsis syndrome and MOF.
Conclusions:
- The gut is not merely a passive barrier but an active participant in MOF development.
- Gut barrier integrity is crucial for preventing the cascade of inflammation and organ failure in sepsis.