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Updated: Jun 13, 2026

Assessment of Mitochondrial Fission/Fusion Dynamics in Kidney Proximal Tubular Cells
Published on: November 14, 2025
Specific mitochondrial calcium overload induces mitochondrial fission in prostate cancer cells
Ismail Kaddour-Djebbar1, Vivek Choudhary, Craig Brooks
1Charlie Norwood VA Medical Center, Augusta, GA 30904, USA.
Abstract:
Mitochondria are structurally complex organelles that undergo fragmentation or fission in apoptotic cells. Mitochondrial fission requires the cytoplasmic dynamin-related protein, Drp1, which translocates to the mitochondria during apoptosis and interacts with the mitochondrial protein, Fis1. Finely tuned changes in cellular calcium modulate a variety of intracellular functions; in resting cells, the level of mitochondrial calcium is low, while it is higher during apoptosis. Mitochondria take up Ca(2+) via the Uniporter and extrude it to the cytoplasm through the mitochondrial Na+/Ca(2+) exchanger. Overload of Ca(2+) in the mitochondria leads to their damage, affecting cellular function and survival. The mitochondrial Na+/Ca2+ exchanger was blocked by benzodiazepine, CGP37157 (CGP) leading to increased mitochondrial calcium and enhancing the apoptotic effects of TRAIL, TNFalpha related apoptosis inducing ligand. In the present study, we observed that increasing mitochondrial calcium induced mitochondrial fragmentation, which correlated with the presence of Drp1 at the mitochondria in CGP treated cells. Under these conditions, we observed interactions between Drp1 and Fis1. The importance of Drp1 in fragmentation was confirmed by transfection of dominant negative Drp1 construct. However, fragmentation of the mitochondria was not sufficient to induce apoptosis, although it enhanced TRAIL-induced apoptosis. Furthermore, oligomerization of Bak was partially responsible for the increased apoptosis in cells treated with both CGP and TRAIL. Thus, our results show that combination of an apoptogenic agent and an appropriate calcium channel blocker provide therapeutic advantages.
Insights
Blocking mitochondrial calcium efflux with CGP37157 (CGP) increases mitochondrial calcium, causing fragmentation via Drp1 and Fis1. This enhances TRAIL-induced apoptosis, suggesting therapeutic potential.
Area of Science:
- Cell Biology
- Mitochondrial Dynamics
- Apoptosis
Background:
- Mitochondria fragment during apoptosis, a process involving dynamin-related protein 1 (Drp1) and Fis1.
- Cellular calcium levels, particularly in mitochondria, are critical regulators of cell function and survival.
- Mitochondrial calcium overload can damage mitochondria and impair cellular functions.
Purpose of the Study:
- To investigate the role of mitochondrial calcium overload in mitochondrial fragmentation and apoptosis.
- To explore the interaction between mitochondrial calcium, Drp1, and Fis1 during apoptosis.
- To evaluate the therapeutic potential of combining calcium channel blockers with apoptogenic agents.
Main Methods:
- Treatment of cells with CGP37157 (CGP) to block the mitochondrial Na+/Ca2+ exchanger.
- Analysis of mitochondrial morphology and Drp1/Fis1 interactions.
- Transfection with dominant-negative Drp1 constructs.
- Assessment of Bak oligomerization and apoptosis induction.
Main Results:
- Increased mitochondrial calcium induced mitochondrial fragmentation, correlating with Drp1 recruitment to mitochondria.
- Drp1 and Fis1 interacted under conditions of elevated mitochondrial calcium.
- Mitochondrial fragmentation alone did not induce apoptosis but enhanced TRAIL-induced apoptosis.
- Bak oligomerization contributed to enhanced apoptosis in cells treated with CGP and TRAIL.
Conclusions:
- Elevated mitochondrial calcium drives mitochondrial fragmentation through Drp1 and Fis1.
- Combining calcium channel blockers with apoptogenic agents like TRAIL offers therapeutic advantages by enhancing apoptosis.
- Targeting mitochondrial calcium and fission pathways presents a promising therapeutic strategy.
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