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Published on: June 14, 2024
[Mitochondrial dysfunction during sepsis, impact and possible regulating role of hypoxia-inducible factor-1alpha]
T Regueira1, M Andresen, S Djafarzadeh
1Departamento de Medicina Intensiva, Pontificia Universidad Católica de Chile, Santiago, Chile. regueira@med.puc.cl
Abstract:
There is a direct correlation between the development of the multiple organ dysfunction syndrome (MODS) and the elevated mortality associated with sepsis. The mechanisms responsible for MODS development are being studied, however, the main efforts regarding MODS evaluation have focused on oxygen delivery optimization and on the modulation of the characteristic inflammatory cascade of sepsis, all with negative results. Recent studies have shown that there is development of tissue acidosis, even when there are normal oxygen conditions and limited presence of tissue cellular necrosis or apoptosis, which would indicate that cellular energetic dysfunction may be a central element in MODS pathogenesis. Mitochondrias are the main source of cellular energy, central regulators of cell death and the main source for reactive oxygen species. Several mechanisms contribute to mitochondrial dysfunction during sepsis, that is blockage of pyruvate entry into the Krebs cycle, oxidative phosphorylation substrate use in other enzymatic complexes, enzymatic complex inhibition and membrane damage mediated by oxidative stress, and reduction in mitochondrial content. Hypoxia-inducible factor-1alpha (HIF-1alpha) is a nuclear transcription factor with a central role in the regulation of cellular oxygen homeostasis. Its induction under hypoxic conditions is associated to the expression of hundreds of genes that coordinate the optimization of cellular oxygen delivery and the cellular energy metabolism. HIF-1alpha can also be stabilized under normoxic condition during inflammation and this activation seems to be associated with a prominent pro-inflammatory profile, with lymphocytes dysfunction, and to a reduction in cellular oxygen consumption. Further studies should establish a role for HIF-1alpha as a therapeutic target.
Insights
Sepsis-induced multiple organ dysfunction syndrome (MODS) may stem from cellular energy deficits, not just inflammation or oxygen levels. Hypoxia-inducible factor-1alpha (HIF-1alpha) activation during sepsis might worsen this dysfunction.
Area of Science:
- Biochemistry
- Cellular Biology
- Pathophysiology
Context:
- Sepsis is a leading cause of multiple organ dysfunction syndrome (MODS), characterized by high mortality.
- Current therapeutic strategies for MODS focus on oxygen delivery and inflammatory modulation, yielding limited success.
- Emerging evidence suggests cellular energetic dysfunction, particularly mitochondrial impairment, plays a critical role in MODS pathogenesis.
Purpose:
- To explore the role of cellular energetic dysfunction in MODS development during sepsis.
- To investigate the mechanisms of mitochondrial dysfunction in sepsis.
- To examine the potential involvement of Hypoxia-inducible factor-1alpha (HIF-1alpha) in sepsis-induced MODS.
Summary:
- MODS development in sepsis is linked to cellular acidosis and mitochondrial dysfunction, even under normal oxygen conditions.
- Mitochondrial dysfunction during sepsis involves impaired pyruvate metabolism, altered oxidative phosphorylation, and oxidative stress-induced damage.
- Hypoxia-inducible factor-1alpha (HIF-1alpha), a regulator of oxygen homeostasis, can be activated during sepsis, potentially contributing to inflammation and reduced cellular oxygen consumption.
Impact:
- Highlights cellular energetic dysfunction as a key factor in MODS, shifting focus from traditional inflammatory pathways.
- Identifies mitochondrial dysfunction as a critical target for therapeutic intervention in sepsis.
- Suggests HIF-1alpha as a potential therapeutic target for managing sepsis-induced MODS.
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