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Updated: Sep 28, 2025

Pseudofracture: An Acute Peripheral Tissue Trauma Model
Published on: April 18, 2011
Pathogenesis of Multiple Organ Failure: The Impact of Systemic Damage to Plasma Membranes
Andrey V Kozlov1,2,3, Johannes Grillari1,2,4
1Ludwig Boltzmann Institute for Traumatology, The Research Center in Cooperation With AUVA, LBG, Vienna, Austria.
Abstract:
Multiple organ failure (MOF) is the major cause of morbidity and mortality in intensive care patients, but the mechanisms causing this severe syndrome are still poorly understood. Inflammatory response, tissue hypoxia, immune and cellular metabolic dysregulations, and endothelial and microvascular dysfunction are the main features of MOF, but the exact mechanisms leading to MOF are still unclear. Recent progress in the membrane research suggests that cellular plasma membranes play an important role in key functions of diverse organs. Exploration of mechanisms contributing to plasma membrane damage and repair suggest that these processes can be the missing link in the development of MOF. Elevated levels of extracellular phospholipases, reactive oxygen and nitrogen species, pore-forming proteins (PFPs), and dysregulation of osmotic homeostasis occurring upon systemic inflammatory response are the major extracellular inducers of plasma membrane damage, which may simultaneously operate in different organs causing their profound dysfunction. Hypoxia activates similar processes, but they predominantly occur within the cells targeting intracellular membrane compartments and ultimately causing cell death. To combat the plasma membrane damage cells have developed several repair mechanisms, such as exocytosis, shedding, and protein-driven membrane remodeling. Analysis of knowledge on these mechanisms reveals that systemic damage to plasma membranes may be associated with potentially reversible MOF, which can be quickly recovered, if pathological stimuli are eliminated. Alternatively, it can be transformed in a non-resolving phase, if repair mechanisms are not sufficient to deal with a large damage or if the damage is extended to intracellular compartments essential for vital cellular functions.
Insights
Cellular plasma membrane damage and repair mechanisms are key to understanding multiple organ failure (MOF). Investigating these processes offers new insights into MOF development and potential treatments for intensive care patients.
Area of Science:
- Cell Biology
- Pathophysiology
- Intensive Care Medicine
Background:
- Multiple organ failure (MOF) is a primary cause of death in intensive care units, yet its underlying mechanisms remain largely unknown.
- Key features of MOF include inflammation, hypoxia, metabolic dysregulation, and endothelial dysfunction.
- Emerging research highlights the critical role of cellular plasma membranes in organ function and MOF pathogenesis.
Purpose of the Study:
- To explore the mechanisms of plasma membrane damage and repair as a potential link in the development of MOF.
- To elucidate how extracellular and intracellular factors contribute to plasma membrane injury in MOF.
- To understand the cellular repair mechanisms and their implications for MOF reversibility.
Main Methods:
- Review and analysis of existing literature on plasma membrane damage and repair processes.
- Investigation of extracellular inducers like phospholipases, reactive oxygen species, and pore-forming proteins.
- Examination of intracellular effects of hypoxia on membrane compartments and cellular integrity.
Main Results:
- Systemic inflammatory response triggers extracellular factors that damage plasma membranes across multiple organs.
- Hypoxia induces intracellular membrane damage, leading to cell death.
- Cells possess repair mechanisms (exocytosis, shedding, remodeling) to counteract plasma membrane damage.
Conclusions:
- Plasma membrane damage and repair are critical, potentially overlooked, factors in MOF.
- MOF may be reversible if damage is limited and repair mechanisms are effective.
- Failure of repair mechanisms or extensive intracellular damage can lead to non-resolving MOF.
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