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Assessment of Mitochondrial Fission/Fusion Dynamics in Kidney Proximal Tubular Cells
Published on: November 14, 2025
The mitochondrial elongation factors MIEF1 and MIEF2 exert partially distinct functions in mitochondrial dynamics
Tong Liu1, Rong Yu, Shao-Bo Jin
1Department of Oncology-Pathology, Karolinska Institutet, CCK R8:05, Karolinska University Hospital Solna, SE-171 76 Stockholm, Sweden.
Abstract:
Mitochondria are dynamic organelles whose morphology is regulated by a complex balance of fission and fusion processes, and we still know relatively little about how mitochondrial dynamics is regulated. MIEF1 (also called MiD51) has recently been characterized as a key regulator of mitochondrial dynamics and in this report we explore the functions of its paralog MIEF2 (also called MiD49), to learn to what extent MIEF2 is functionally distinct from MIEF1. We show that MIEF1 and MIEF2 have many functions in common. Both are anchored in the mitochondrial outer membrane, recruit Drp1 from the cytoplasm to the mitochondrial surface and cause mitochondrial fusion, and MIEF2, like MIEF1, can interact with Drp1 and hFis1. MIEF1 and MIEF2, however, also differ in certain aspects. MIEF1 and MIEF2 are differentially expressed in human tissues during development. When overexpressed, MIEF2 exerts a stronger fusion-promoting effect than MIEF1, and in line with this, hFis1 and Mff can only partially revert the MIEF2-induced fusion phenotype, whereas MIEF1-induced fusion is reverted to a larger extent by hFis1 and Mff. MIEF2 forms high molecular weight oligomers, while MIEF1 is largely present as a dimer. Furthermore, MIEF1 and MIEF2 use distinct domains for oligomerization: in MIEF1, the region from amino acid residues 109-154 is required, whereas oligomerization of MIEF2 depends on amino acid residues 1 to 49, i.e. the N-terminal end. We also show that oligomerization of MIEF1 is not required for its mitochondrial localization and interaction with Drp1. In conclusion, our data suggest that the mitochondrial regulators MIEF1 and MIEF2 exert partially distinct functions in mitochondrial dynamics.
Insights
Mitochondrial regulators MIEF1 and MIEF2 share fusion functions but differ in expression, potency, and oligomerization domains, suggesting partially distinct roles in mitochondrial dynamics.
Area of Science:
- Cell Biology
- Molecular Biology
Background:
- Mitochondrial morphology is controlled by fission and fusion.
- Mitochondrial dynamics regulation is not fully understood.
- MIEF1 (MiD51) is a known regulator of mitochondrial dynamics.
Purpose of the Study:
- Investigate the functions of MIEF2 (MiD49), a paralog of MIEF1.
- Determine the extent to which MIEF2 is functionally distinct from MIEF1.
- Elucidate the specific roles of MIEF1 and MIEF2 in mitochondrial dynamics.
Main Methods:
- Comparative analysis of MIEF1 and MIEF2 functions.
- Overexpression studies in human tissues.
- Assessment of protein-protein interactions (Drp1, hFis1, Mff).
- Analysis of protein oligomerization and localization.
Main Results:
- MIEF1 and MIEF2 share functions: mitochondrial outer membrane anchoring, Drp1 recruitment, and promoting fusion.
- MIEF2 exhibits stronger fusion promotion than MIEF1, with partial rescue by hFis1 and Mff.
- MIEF1 and MIEF2 differ in tissue expression, oligomerization (MIEF2 forms high molecular weight oligomers, MIEF1 is dimeric), and distinct oligomerization domains.
Conclusions:
- MIEF1 and MIEF2 are key regulators of mitochondrial dynamics.
- While sharing common functions, MIEF1 and MIEF2 possess distinct properties.
- These differences suggest partially distinct functional roles in regulating mitochondrial dynamics.
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