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Updated: Feb 28, 2026

Assessment of Mitochondrial Fission/Fusion Dynamics in Kidney Proximal Tubular Cells
Published on: November 14, 2025
Role of mitofusin 2 in the renal stress response
Jonathan M Gall1, Zhiyong Wang, Marc Liesa
1Renal Section, Boston Medical Center, Boston, Massachusetts, United States of America. ygall@bu.edu
Abstract:
The role of mitofusin 2 (MFN2), a key regulator of mitochondrial morphology and function in the renal stress response is unknown. To assess its role, the MFN2 floxed gene was conditionally deleted in the kidney of mice (MFN2 cKO) by Pax2 promoter driven Cre expression (Pax2Cre). MFN2 cKO caused severe mitochondrial fragmentation in renal epithelial cells that are critical for normal kidney tubular function. However, despite a small (20%) decrease in nephron number, newborn cKO pups had organ or tubular function that did not differ from littermate Cre-negative pups. MFN2 deficiency in proximal tubule epithelial cells in primary culture induced mitochondrial fragmentation but did not significantly alter ATP turnover, maximal mitochondrial oxidative reserve capacity, or the low level of oxygen consumption during cyanide exposure. MFN2 deficiency also did not increase apoptosis of tubule epithelial cells under non-stress conditions. In contrast, metabolic stress caused by ATP depletion exacerbated mitochondrial outer membrane injury and increased apoptosis by 80% in MFN2 deficient vs. control cells. Despite similar stress-induced Bax 6A7 epitope exposure in MFN2 deficient and control cells, MFN2 deficiency significantly increased mitochondrial Bax accumulation and was associated with greater release of both apoptosis inducing factor and cytochrome c. In conclusion, MFN2 deficiency in the kidney causes mitochondrial fragmentation but does not affect kidney or tubular function during development or under non-stress conditions. However, MFN2 deficiency exacerbates renal epithelial cell injury by promoting Bax-mediated mitochondrial outer membrane injury and apoptosis.
Insights
Mitofusin 2 (MFN2) deficiency causes mitochondrial fragmentation in kidney cells but does not impact kidney function during development or under normal conditions. However, MFN2 deficiency worsens cell injury and apoptosis during metabolic stress.
Area of Science:
- Cell Biology
- Renal Physiology
- Mitochondrial Dynamics
Background:
- Mitofusin 2 (MFN2) is crucial for mitochondrial structure and function.
- Its specific role in the kidney's response to stress remains unclear.
Purpose of the Study:
- To investigate the function of MFN2 in renal epithelial cells, particularly under stress conditions.
- To determine the impact of MFN2 deficiency on kidney development and function.
Main Methods:
- Conditional knockout (cKO) of the MFN2 gene in mouse kidneys using Pax2Cre.
- Assessment of mitochondrial morphology, cell viability, apoptosis, and mitochondrial function in MFN2-deficient cells.
- Induction of metabolic stress via ATP depletion.
Main Results:
- MFN2 deficiency led to severe mitochondrial fragmentation in renal epithelial cells.
- No significant difference in kidney or tubular function was observed in newborn MFN2 cKO mice compared to controls.
- Under metabolic stress, MFN2-deficient cells showed increased mitochondrial outer membrane injury and apoptosis (80% higher).
- MFN2 deficiency enhanced Bax accumulation in mitochondria and increased the release of apoptosis-inducing factor and cytochrome c.
Conclusions:
- MFN2 is not essential for kidney development or function under normal conditions.
- MFN2 deficiency sensitizes renal epithelial cells to metabolic stress-induced apoptosis.
- MFN2 plays a protective role against Bax-mediated mitochondrial outer membrane injury during cellular stress.
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