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Updated: Apr 22, 2026

Modeling Hypoxia/Reoxygenation Injury in Proximal Tubular Epithelial Cells
Published on: November 21, 2025
TRPM2 mediates ischemic kidney injury and oxidant stress through RAC1
Abstract:
Ischemia is a leading cause of acute kidney injury. Kidney ischemia is associated with loss of cellular ion homeostasis; however, the pathways that underlie ion homeostasis dysfunction are poorly understood. Here, we evaluated the nonselective cation channel transient receptor potential melastatin 2 (TRPM2) in a murine model of kidney ischemia/reperfusion (I/R) injury. TRPM2-deficient mice were resistant to ischemic injury, as reflected by improved kidney function, reduced histologic damage, suppression of proapoptotic pathways, and reduced inflammation. Moreover, pharmacologic TRPM2 inhibition was also protective against I/R injury. TRPM2 was localized mainly in kidney proximal tubule epithelial cells, and studies in chimeric mice indicated that the effects of TRPM2 are due to expression in parenchymal cells rather than hematopoietic cells. TRPM2-deficient mice had less oxidative stress and lower levels of NADPH oxidase activity after ischemia. While RAC1 is a component of the NADPH oxidase complex, its relation to TRPM2 and kidney ischemic injury is unknown. Following kidney ischemia, TRPM2 promoted RAC1 activation, with active RAC1 physically interacting with TRPM2 and increasing TRPM2 expression at the cell membrane. Finally, inhibition of RAC1 reduced oxidant stress and ischemic injury in vivo. These results demonstrate that TRPM2-dependent RAC1 activation increases oxidant stress and suggest that therapeutic approaches targeting TRPM2 and/or RAC1 may be effective in reducing ischemic kidney injury.
Insights
Targeting the TRPM2 channel and RAC1 may protect kidneys from ischemia/reperfusion injury. TRPM2-deficient mice showed resistance to kidney damage, reduced oxidative stress, and inflammation, highlighting TRPM2
Area of Science:
- Nephrology
- Molecular Biology
- Cell Biology
Background:
- Kidney ischemia/reperfusion (I/R) injury is a major cause of acute kidney injury.
- Dysfunctional cellular ion homeostasis underlies kidney ischemia, but the specific pathways are unclear.
- The role of the nonselective cation channel transient receptor potential melastatin 2 (TRPM2) in kidney I/R injury is not well understood.
Purpose of the Study:
- To investigate the role of TRPM2 in kidney I/R injury.
- To explore the relationship between TRPM2, RAC1, and oxidative stress in kidney ischemia.
Main Methods:
- Utilized TRPM2-deficient mice and pharmacologic TRPM2 inhibition in a murine model of kidney I/R injury.
- Examined kidney function, histology, apoptosis, inflammation, and oxidative stress markers.
- Investigated TRPM2 localization in kidney cells and its interaction with RAC1.
Main Results:
- TRPM2-deficient mice exhibited significant resistance to kidney I/R injury, with improved function and reduced damage.
- TRPM2 deficiency suppressed proapoptotic pathways and inflammation, and lowered oxidative stress and NADPH oxidase activity.
- TRPM2 promoted RAC1 activation and membrane expression following ischemia, and RAC1 inhibition reduced injury.
Conclusions:
- TRPM2 plays a critical role in mediating kidney I/R injury by increasing oxidative stress through RAC1 activation.
- TRPM2 expression in parenchymal kidney cells, not hematopoietic cells, drives the injury.
- Targeting TRPM2 and/or RAC1 presents a potential therapeutic strategy for mitigating ischemic kidney injury.
Related Concept Videos
Acute Kidney Injury II: Pathophysiology
Acute Kidney Injury I: Introduction

