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Assessment of Mitochondrial Fission/Fusion Dynamics in Kidney Proximal Tubular Cells
Published on: November 14, 2025
Mitofusins and the mitochondrial permeability transition: the potential downside of mitochondrial fusion
Kyriakos N Papanicolaou1, Matthew M Phillippo, Kenneth Walsh
1Whitaker Cardiovascular Institute, Boston University School of Medicine, Massachusetts, 02118, USA.
Abstract:
Mitofusins (Mfn-1 and Mfn-2) are transmembrane proteins that bind and hydrolyze guanosine 5'-triphosphate to bring about the merging of adjacent mitochondrial membranes. This event is necessary for mitochondrial fusion, a biological process that is critical for organelle function. The broad effects of mitochondrial fusion on cell bioenergetics have been extensively studied, whereas the local effects of mitofusin activity on the structure and integrity of the fusing mitochondrial membranes have received relatively little attention. From the study of fusogenic proteins, theoretical models, and simulations, it has been noted that the fusion of biological membranes is associated with local perturbations on the integrity of the membrane that present in the form of lipidic holes which open on the opposing bilayers. These lipidic holes represent obligate intermediates that make the fusion process thermodynamically more favorable and at the same time induce leakage to the fusing membranes. In this perspectives article we present the relevant evidence selected from a spectrum of membrane fusion/leakage models and attempt to couple this information with observations conducted with cardiac myocytes or mitochondria deficient in Mfn-1 and Mfn-2. More specifically, we argue in favor of a situation whereby mitochondrial fusion in cardiac myocytes is coupled with outer mitochondrial membrane destabilization that is opportunistically employed during the process of mitochondrial permeability transition. We hope that these insights will initiate research on this new hypothesis of mitochondrial permeability transition regulation, a poorly understood mitochondrial function with significant consequences on myocyte survival.
Insights
Mitofusins (Mfn-1 and Mfn-2) drive mitochondrial fusion by destabilizing membranes, creating lipidic holes. This process in cardiac cells may regulate mitochondrial permeability transition, impacting myocyte survival.
Area of Science:
- Cell Biology
- Mitochondrial Dynamics
- Membrane Biophysics
Background:
- Mitofusins (Mfn-1, Mfn-2) mediate mitochondrial fusion, essential for organelle function and cellular bioenergetics.
- While fusion's broad effects are known, its local impact on mitochondrial membrane integrity is less understood.
- Membrane fusion models suggest transient lipidic holes form, facilitating fusion but causing leakage.
Purpose of the Study:
- To explore the local effects of mitofusin activity on mitochondrial membrane structure during fusion.
- To investigate the link between mitochondrial fusion, membrane destabilization, and mitochondrial permeability transition in cardiac myocytes.
- To propose a novel hypothesis for mitochondrial permeability transition regulation.
Main Methods:
- Review of evidence from membrane fusion/leakage models.
- Analysis of observations in cardiac myocytes and mitochondria with Mfn-1/Mfn-2 deficiency.
- Theoretical coupling of fusion mechanisms with experimental data.
Main Results:
- Mitochondrial fusion, mediated by mitofusins, is associated with outer mitochondrial membrane destabilization.
- This destabilization creates transient lipidic holes, potentially facilitating fusion.
- The process may be linked to the regulation of mitochondrial permeability transition.
Conclusions:
- Mitochondrial fusion in cardiac myocytes involves outer membrane destabilization.
- This destabilization is potentially utilized in regulating mitochondrial permeability transition.
- Further research is needed to validate this hypothesis and its implications for myocyte survival.
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