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Updated: Oct 11, 2026

Reconstitution of Msp1 Extraction Activity with Fully Purified Components
Published on: August 10, 2021
The dynamin-related GTPase, Mgm1p, is an intermembrane space protein required for maintenance of fusion competent
E D Wong1, J A Wagner, S W Gorsich
1Section of Molecular and Cellular Biology, University of California Davis, Davis, California 95616, USA.
Abstract:
Mutations in the dynamin-related GTPase, Mgm1p, have been shown to cause mitochondrial aggregation and mitochondrial DNA loss in Saccharomyces cerevisiae cells, but Mgm1p's exact role in mitochondrial maintenance is unclear. To study the primary function of MGM1, we characterized new temperature sensitive MGM1 alleles. Examination of mitochondrial morphology in mgm1 cells indicates that fragmentation of mitochondrial reticuli is the primary phenotype associated with loss of MGM1 function, with secondary aggregation of mitochondrial fragments. This mgm1 phenotype is identical to that observed in cells with a conditional mutation in FZO1, which encodes a transmembrane GTPase required for mitochondrial fusion, raising the possibility that Mgm1p is also required for fusion. Consistent with this idea, mitochondrial fusion is blocked in mgm1 cells during mating, and deletion of DNM1, which encodes a dynamin-related GTPase required for mitochondrial fission, blocks mitochondrial fragmentation in mgm1 cells. However, in contrast to fzo1 cells, deletion of DNM1 in mgm1 cells restores mitochondrial fusion during mating. This last observation indicates that despite the phenotypic similarities observed between mgm1 and fzo1 cells, MGM1 does not play a direct role in mitochondrial fusion. Although Mgm1p was recently reported to localize to the mitochondrial outer membrane, our studies indicate that Mgm1p is localized to the mitochondrial intermembrane space. Based on our localization data and Mgm1p's structural homology to dynamin, we postulate that it functions in inner membrane remodeling events. In this context, the observed mgm1 phenotypes suggest that inner and outer membrane fission is coupled and that loss of MGM1 function may stimulate Dnm1p-dependent outer membrane fission, resulting in the formation of mitochondrial fragments that are structurally incompetent for fusion.
Insights
Mitochondrial protein Mgm1p is crucial for maintaining mitochondrial structure. Loss of Mgm1p function causes fragmentation, not fusion, and its intermembrane space localization suggests a role in inner membrane remodeling.
Area of Science:
- Cell Biology
- Mitochondrial Dynamics
- Molecular Genetics
Background:
- Mgm1p, a dynamin-related GTPase, is implicated in mitochondrial maintenance.
- Mutations in MGM1 lead to mitochondrial aggregation and DNA loss, but its precise function remains elusive.
Purpose of the Study:
- To elucidate the primary role of MGM1 in mitochondrial maintenance.
- To characterize new temperature-sensitive MGM1 alleles and their impact on mitochondrial morphology.
Main Methods:
- Characterization of temperature-sensitive MGM1 alleles in Saccharomyces cerevisiae.
- Analysis of mitochondrial morphology and dynamics using microscopy.
- Genetic analysis involving deletion of DNM1 (fission) and studies of FZO1 (fusion).
- Determination of Mgm1p localization within the mitochondrion.
Main Results:
- Loss of MGM1 function primarily causes mitochondrial fragmentation, with secondary aggregation.
- Mgm1p is localized to the mitochondrial intermembrane space, not the outer membrane.
- While Mgm1p is not directly involved in fusion, its absence leads to fragmentation dependent on Dnm1p.
- Deletion of DNM1 rescues the fusion defect in mgm1 cells, indicating Mgm1p's role is distinct from fusion machinery.
Conclusions:
- Mgm1p functions in inner membrane remodeling, distinct from mitochondrial fusion.
- Mitochondrial fragmentation in mgm1 mutants is Dnm1p-dependent, suggesting coupled fission events.
- Mgm1p's role is critical for maintaining mitochondrial reticulum integrity.
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