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Modeling Hypoxia/Reoxygenation Injury in Proximal Tubular Epithelial Cells
Published on: November 21, 2025
Nonapoptotic cell death in acute kidney injury and transplantation
1Clinic for Nephrology and Hypertension and Georges-Köhler-Haus for Biomedical Research and Transplantation, Christian-Albrechts-University, Kiel, Germany.
Abstract:
Acute tubular necrosis causes a loss of renal function, which clinically presents as acute kidney failure (AKI). The biochemical signaling pathways that trigger necrosis have been investigated in detail over the past 5 years. It is now clear that necrosis (regulated necrosis, RN) represents a genetically driven process that contributes to the pathophysiology of AKI. RN pathways such as necroptosis, ferroptosis, parthanatos, and mitochondrial permeability transition-induced regulated necrosis (MPT-RN) may be mechanistically distinct, and the relative contributions to overall organ damage during AKI in living organisms largely remain elusive. In a synchronized manner, some necrotic programs induce the breakdown of tubular segments and multicellular functional units, whereas others are limited to killing single cells in the tubular compartment. Importantly, the means by which a renal cell dies may have implications for the subsequent inflammatory response. In this review, the recent advances in the field of renal cell death in AKI and key enzymes that might serve as novel therapeutic targets will be discussed. As a consequence of the interference with RN, the immunogenicity of dying cells in AKI in renal transplants will be diminished, rendering inhibitors of RN indirect immunosuppressive agents.
Insights
Regulated necrosis (RN) pathways contribute to acute kidney injury (AKI). Targeting these pathways may reduce kidney damage and inflammation, offering new therapeutic strategies for AKI.
Area of Science:
- Nephrology
- Molecular Biology
- Immunology
Background:
- Acute kidney injury (AKI) is often caused by acute tubular necrosis.
- Regulated necrosis (RN) is a genetically driven process implicated in AKI pathophysiology.
- Distinct RN pathways (e.g., necroptosis, ferroptosis) contribute to kidney damage through varied mechanisms.
Purpose of the Study:
- To review recent advances in understanding renal cell death in AKI.
- To identify key enzymes in RN pathways as potential therapeutic targets.
- To explore the implications of cell death mechanisms on inflammatory responses in AKI.
Main Methods:
- Literature review of recent research on regulated necrosis in AKI.
- Analysis of biochemical signaling pathways involved in renal cell death.
- Discussion of potential therapeutic targets and their immunomodulatory effects.
Main Results:
- Multiple RN pathways contribute to AKI, with distinct roles in tubular damage.
- The mode of renal cell death influences the subsequent inflammatory response.
- Inhibiting RN may diminish the immunogenicity of dying cells in renal transplants.
Conclusions:
- Understanding distinct RN pathways is crucial for AKI pathophysiology.
- Targeting key enzymes in RN pathways offers novel therapeutic potential for AKI.
- Interference with RN could provide indirect immunosuppression in renal transplantation.
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