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Modeling Hypoxia/Reoxygenation Injury in Proximal Tubular Epithelial Cells
Published on: November 21, 2025
Morg1 heterozygous deficiency ameliorates hypoxia-induced acute renal injury
Ivonne Loeffler1, Gunter Wolf2
1Department of Internal Medicine III, University Hospital Jena, Jena, Germany.
Abstract:
Acute kidney injury is a common complication of critically ill patients and may occur as a result of various factors and coexisting previous illnesses. Some pathophysiological responses seen in critical illness can be similar to the human physiological response to extreme environmental challenges, such as hypoxia from reduced oxygen availability at high altitudes (systemic hypoxia). Due to oxygen deficiency, mammalian cells activate the transcriptional factor hypoxia-inducible factor (HIF); its degradation is regulated by prolyl hydroxylase 3 (PHD3) in interaction with the scaffold protein MAPK organizer 1 (Morg1). While homozygous Morg1(-/-) mice are embryonically lethal, the kidneys of heterozygous Morg1(+/-) mice reveal elevated HIF protein levels and increased serum erythropoietin compared with wild-type Morg1(+/+) mice. In this study, we exposed wild-type and Morg1(+/-) mice to 10% oxygen in a hypoxic chamber for 3 days. This reduced oxygen concentration leads to a deterioration of renal function, an increase in renal inflammation, and significantly more tubular damage and apoptosis in the kidneys of wild-type (Morg1(+/+)) mice. In sharp contrast, Morg1(+/-) kidneys were protected against systemic hypoxia. They show significantly less renal lesions, reduced or no inflammation, and less tubular damage and apoptosis. Thus short-term systemic and subsequently renal hypoxia which may occur in many patients in the intensive care unit induces in wild-type mice renal injury, which is ameliorated by Morg1 deficiency. Our findings suggest that therapeutical manipulation of Morg1 may be an interesting novel target to prevent hypoxia-associated renal damage.
Insights
Morg1 deficiency protects kidneys from hypoxia-induced injury. Heterozygous Morg1(+/-) mice showed reduced renal damage and inflammation under hypoxic conditions compared to wild-type mice, suggesting Morg1 as a potential therapeutic target.
Area of Science:
- Nephrology
- Physiology
- Molecular Biology
Background:
- Acute kidney injury (AKI) is common in critically ill patients.
- Critical illness can induce systemic hypoxia, mimicking high-altitude conditions.
- Hypoxia-inducible factor (HIF) activation is regulated by PHD3 and scaffold protein Morg1.
Purpose of the Study:
- To investigate the role of Morg1 in renal response to systemic hypoxia.
- To determine if Morg1 deficiency protects against hypoxia-induced kidney injury.
Main Methods:
- Exposure of wild-type (Morg1(+/+)) and heterozygous (Morg1(+/-)) mice to 10% oxygen for 3 days.
- Assessment of renal function, inflammation, tubular damage, and apoptosis.
Main Results:
- Wild-type mice exhibited deteriorated renal function, increased inflammation, tubular damage, and apoptosis under hypoxia.
- Morg1(+/-) mice showed significant protection against hypoxia, with less renal lesions, inflammation, and damage.
- Morg1 deficiency ameliorated hypoxia-associated renal injury in mice.
Conclusions:
- Short-term systemic hypoxia induces renal injury in wild-type mice.
- Morg1 deficiency protects kidneys against hypoxia-associated damage.
- Therapeutic targeting of Morg1 may prevent AKI in critically ill patients.
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