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Updated: Aug 16, 2025

Assessment of Mitochondrial Functions and Cell Viability in Renal Cells Overexpressing Protein Kinase C Isozymes
Published on: January 7, 2013
Tubular β-catenin alleviates mitochondrial dysfunction and cell death in acute kidney injury
Hongyu Li1, Joseph C K Leung1, Wai Han Yiu1
1Division of Nephrology, Department of Medicine, The University of Hong Kong, Hong Kong, China.
Abstract:
Mitochondria take part in a network of intracellular processes that regulate homeostasis. Defects in mitochondrial function are key pathophysiological changes during AKI. Although Wnt/β-catenin signaling mediates mitochondrial dysfunction in chronic kidney fibrosis, little is known of the influence of β-catenin on mitochondrial function in AKI. To decipher this interaction, we generated an inducible mouse model of tubule-specific β-catenin overexpression (TubCat), and a model of tubule-specific β-catenin depletion (TubcatKO), and induced septic AKI in these mice with lipopolysaccharide (LPS) and aseptic AKI with bilateral ischemia-reperfusion. In both AKI models, tubular β-catenin stabilization in TubCat animals significantly reduced BUN/serum creatinine, tubular damage (NGAL-positive tubules), apoptosis (TUNEL-positive cells) and necroptosis (phosphorylation of MLKL and RIP3) through activating AKT phosphorylation and p53 suppression; enhanced mitochondrial biogenesis (increased PGC-1α and NRF1) and restored mitochondrial mass (increased TIM23) to re-establish mitochondrial homeostasis (increased fusion markers OPA1, MFN2, and decreased fission protein DRP1) through the FOXO3/PGC-1α signaling cascade. Conversely, kidney function loss and histological damage, tubular cell death, and mitochondrial dysfunction were all aggravated in TubCatKO mice. Mechanistically, β-catenin transfection maintained mitochondrial mass and activated PGC-1α via FOXO3 in LPS-exposed HK-2 cells. Collectively, these findings provide evidence that tubular β-catenin mitigates cell death and restores mitochondrial homeostasis in AKI through the common mechanisms associated with activation of AKT/p53 and FOXO3/PGC-1α signaling pathways.
Insights
Tubular beta-catenin protects against acute kidney injury (AKI) by preserving mitochondrial function and reducing cell death. Overexpression improved kidney outcomes, while depletion worsened them, highlighting beta-catenin
Area of Science:
- Nephrology
- Mitochondrial Biology
- Molecular Medicine
Background:
- Mitochondrial dysfunction is central to acute kidney injury (AKI) pathophysiology.
- The role of Wnt/β-catenin signaling in mitochondrial function during AKI remains unclear, despite its known involvement in kidney fibrosis.
Purpose of the Study:
- To investigate the influence of tubular β-catenin on mitochondrial function and cell death in AKI.
- To elucidate the molecular mechanisms by which β-catenin impacts kidney injury and recovery.
Main Methods:
- Generated inducible mouse models with tubule-specific β-catenin overexpression (TubCat) and depletion (TubcatKO).
- Induced septic AKI (lipopolysaccharide) and aseptic AKI (ischemia-reperfusion) in these models.
- Utilized cell culture (HK-2 cells) to confirm mechanistic findings.
Main Results:
- Tubular β-catenin stabilization in TubCat mice significantly reduced AKI markers (BUN, creatinine, tubular damage, apoptosis, necroptosis).
- β-catenin overexpression enhanced mitochondrial biogenesis and restored homeostasis by modulating fusion/fission dynamics via FOXO3/PGC-1α.
- TubcatKO mice exhibited aggravated kidney dysfunction, damage, and mitochondrial defects.
Conclusions:
- Tubular β-catenin acts as a protective factor against AKI, mitigating cell death and restoring mitochondrial homeostasis.
- β-catenin exerts its protective effects through activation of AKT/p53 and FOXO3/PGC-1α signaling pathways.
- Targeting tubular β-catenin may offer a therapeutic strategy for AKI.
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