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Updated: Jul 5, 2026

Modeling Hypoxia/Reoxygenation Injury in Proximal Tubular Epithelial Cells
Published on: November 21, 2025
Renal hypoxia and dysoxia after reperfusion of the ischemic kidney
Matthieu Legrand1, Egbert G Mik, Tanja Johannes
1Department of Physiology, Academic Medical Center, University of Amsterdam, Amsterdam, The Netherlands. m.m.legrand@amc.nl
Abstract:
Ischemia is the most common cause of acute renal failure. Ischemic-induced renal tissue hypoxia is thought to be a major component in the development of acute renal failure in promoting the initial tubular damage. Renal oxygenation originates from a balance between oxygen supply and consumption. Recent investigations have provided new insights into alterations in oxygenation pathways in the ischemic kidney. These findings have identified a central role of microvascular dysfunction related to an imbalance between vasoconstrictors and vasodilators, endothelial damage and endothelium-leukocyte interactions, leading to decreased renal oxygen supply. Reduced microcirculatory oxygen supply may be associated with altered cellular oxygen consumption (dysoxia), because of mitochondrial dysfunction and activity of alternative oxygen-consuming pathways. Alterations in oxygen utilization and/or supply might therefore contribute to the occurrence of organ dysfunction. This view places oxygen pathways' alterations as a potential central player in the pathogenesis of acute kidney injury. Both in regulation of oxygen supply and consumption, nitric oxide seems to play a pivotal role. Furthermore, recent studies suggest that, following acute ischemic renal injury, persistent tissue hypoxia contributes to the development of chronic renal dysfunction. Adaptative mechanisms to renal hypoxia may be ineffective in more severe cases and lead to the development of chronic renal failure following ischemia-reperfusion. This paper is aimed at reviewing the current insights into oxygen transport pathways, from oxygen supply to oxygen consumption in the kidney and from the adaptation mechanisms to renal hypoxia. Their role in the development of ischemia-induced renal damage and ischemic acute renal failure are discussed.
Insights
Ischemia causes acute renal failure by disrupting kidney oxygen supply and consumption, leading to tubular damage. Persistent hypoxia after injury can result in chronic kidney dysfunction.
Area of Science:
- Nephrology
- Physiology
- Pathophysiology
Background:
- Ischemia is a primary cause of acute renal failure, with hypoxia contributing to tubular damage.
- Renal oxygenation depends on the balance between oxygen supply and consumption.
Purpose of the Study:
- To review current insights into renal oxygen transport pathways in ischemia.
- To discuss the role of oxygen supply and consumption alterations in acute kidney injury and chronic renal failure.
Main Methods:
- Review of recent investigations into renal oxygenation pathways.
- Analysis of microvascular dysfunction, cellular oxygen consumption, and nitric oxide's role.
Main Results:
- Microvascular dysfunction (vasoconstrictor/vasodilator imbalance, endothelial damage) impairs renal oxygen supply.
- Mitochondrial dysfunction and alternative pathways contribute to altered oxygen consumption (dysoxia).
- Nitric oxide plays a key role in regulating oxygen supply and consumption.
Conclusions:
- Alterations in renal oxygen pathways are central to acute kidney injury pathogenesis.
- Persistent hypoxia post-ischemia contributes to chronic renal dysfunction.
- Ineffective adaptation to severe hypoxia can lead to chronic renal failure.
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