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Updated: Jun 25, 2026

A Model Membrane Platform for Reconstituting Mitochondrial Membrane Dynamics
Published on: September 2, 2020
The dynamin-related protein Mgm1p assembles into oligomers and hydrolyzes GTP to function in mitochondrial membrane
Gabriela Meglei1, G Angus McQuibban
1Department of Biochemistry, University of Toronto, Toronto, Ontario M5S 1A8, Canada.
Abstract:
Mitochondrial dynamics resulting from competing membrane fusion and fission reactions are required for normal cellular function in eukaryotes. Mgm1p, a dynamin-related protein, is a key component in yeast mitochondrial fusion and is evolutionarily conserved. Previous studies suggest that Mgm1p mediates mitochondrial inner membrane fusion in a manner similar to that of other dynamin proteins that use GTP hydrolysis and oligomerization to induce structural changes in lipid bilayers; however, a direct demonstration of these activities has yet to be presented. Here we show that purified Mgm1p forms low-order oligomers that are dependent on protein concentration, suggesting a dynamic and reversible interaction. We further demonstrate that Mgm1p has GTPase activity and kinetic properties consistent with a mechanoenzyme and with a role in inner membrane mitochondrial fusion. Mutations of key residues in conserved motifs of the GTPase domain show markedly reduced or diminished GTPase activity. A mutation in the GTPase effector domain, involved in assembly and assembly-stimulated GTP hydrolysis, has basal GTPase activity similar to that of wild-type Mgm1p but has a weaker propensity to form oligomers. Finally, our data indicate that Mgm1p interacts specifically with negatively charged phospholipids found in mitochondrial membranes, and point mutations in the predicted lipid-binding domain abrogate these interactions. These findings suggest the presence of a putative lipid-binding domain, providing insight into how this protein mediates inner membrane fusion. Together, these data indicate that Mgm1p mediates fusion through oligomerization, GTP hydrolysis, and lipid binding in a manner similar to those of other dynamin mechanoenzymes.
Insights
Mgm1p, a protein crucial for yeast mitochondrial fusion, acts as a mechanoenzyme. It mediates inner membrane fusion through oligomerization, GTP hydrolysis, and specific lipid binding.
Area of Science:
- Cell Biology
- Mitochondrial Biology
- Protein Biochemistry
Background:
- Mitochondrial dynamics, involving fusion and fission, are essential for eukaryotic cellular function.
- Mgm1p is a conserved dynamin-related protein vital for yeast mitochondrial fusion.
- Previous research suggested Mgm1p's role in inner membrane fusion via GTP hydrolysis and oligomerization, but direct evidence was lacking.
Purpose of the Study:
- To directly demonstrate the mechanoenzymatic activities of purified Mgm1p.
- To elucidate the molecular mechanisms underlying Mgm1p-mediated mitochondrial inner membrane fusion.
- To investigate the role of specific domains and lipid interactions in Mgm1p function.
Main Methods:
- Purification of Mgm1p protein.
- Analysis of Mgm1p oligomerization in vitro.
- Assays for GTPase activity and kinetics.
- Site-directed mutagenesis of conserved motifs and predicted lipid-binding domains.
- Investigation of Mgm1p interaction with phospholipids.
Main Results:
- Purified Mgm1p forms concentration-dependent oligomers, indicating dynamic interactions.
- Mgm1p exhibits GTPase activity and kinetic properties characteristic of a mechanoenzyme.
- Mutations in the GTPase domain reduced GTPase activity, while a GTPase effector domain mutation impaired oligomerization.
- Mgm1p specifically binds to negatively charged phospholipids, a function disrupted by mutations in a putative lipid-binding domain.
Conclusions:
- Mgm1p functions as a mechanoenzyme in mitochondrial inner membrane fusion.
- Fusion is mediated by Mgm1p through a combination of oligomerization, GTP hydrolysis, and specific lipid binding.
- These findings provide mechanistic insights into mitochondrial fusion and highlight similarities with other dynamin proteins.
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