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Published on: June 15, 2019
The Metabolic Basis of Immune Dysfunction Following Sepsis and Trauma
Margaret A McBride1, Allison M Owen2, Cody L Stothers1
1Department of Pathology, Microbiology and Immunology, Vanderbilt University Medical Center, Nashville, TN, United States.
Abstract:
Critically ill, severely injured and high-risk surgical patients are vulnerable to secondary infections during hospitalization and after hospital discharge. Studies show that the mitochondrial function and oxidative metabolism of monocytes and macrophages are impaired during sepsis. Alternatively, treatment with microbe-derived ligands, such as monophosphoryl lipid A (MPLA), peptidoglycan, or β-glucan, that interact with toll-like receptors and other pattern recognition receptors on leukocytes induces a state of innate immune memory that confers broad-spectrum resistance to infection with common hospital-acquired pathogens. Priming of macrophages with MPLA, CPG oligodeoxynucleotides (CpG ODN), or β-glucan induces a macrophage metabolic phenotype characterized by mitochondrial biogenesis and increased oxidative metabolism in parallel with increased glycolysis, cell size and granularity, augmented phagocytosis, heightened respiratory burst functions, and more effective killing of microbes. The mitochondrion is a bioenergetic organelle that not only contributes to energy supply, biosynthesis, and cellular redox functions but serves as a platform for regulating innate immunological functions such as production of reactive oxygen species (ROS) and regulatory intermediates. This review will define current knowledge of leukocyte metabolic dysfunction during and after sepsis and trauma. We will further discuss therapeutic strategies that target leukocyte mitochondrial function and might have value in preventing or reversing sepsis- and trauma-induced immune dysfunction.
Insights
Critically ill patients are prone to infections due to impaired immune cell metabolism. Treatments targeting mitochondrial function can restore immune memory and enhance resistance to hospital-acquired infections.
Area of Science:
- Immunology
- Cellular Metabolism
- Infectious Disease
Background:
- Critically ill, injured, and surgical patients face high risks of secondary infections.
- Sepsis and trauma impair mitochondrial function and oxidative metabolism in monocytes and macrophages.
- Leukocyte dysfunction contributes to vulnerability to hospital-acquired pathogens.
Purpose of the Study:
- To review leukocyte metabolic dysfunction in sepsis and trauma.
- To discuss therapeutic strategies targeting leukocyte mitochondrial function.
- To explore methods for preventing or reversing sepsis- and trauma-induced immune dysfunction.
Main Methods:
- Literature review of studies on leukocyte metabolism and immune memory.
- Analysis of the role of microbe-derived ligands (e.g., MPLA, β-glucan) and toll-like receptor agonists (e.g., CpG ODN).
- Examination of macrophage metabolic reprogramming and functional outcomes.
Main Results:
- Microbe-derived ligands induce innate immune memory, conferring broad-spectrum infection resistance.
- Macrophage priming with ligands results in enhanced mitochondrial biogenesis, oxidative metabolism, and glycolysis.
- This metabolic reprogramming augments phagocytosis, respiratory burst, and microbial killing.
Conclusions:
- Leukocyte mitochondrial dysfunction is a key feature of sepsis and trauma.
- Therapeutic strategies targeting mitochondrial function hold promise for immune restoration.
- Restoring innate immune memory may prevent or reverse infection susceptibility in vulnerable patients.
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