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Updated: Jan 22, 2026

Detection of Small GTPase Prenylation and GTP Binding Using Membrane Fractionation and GTPase-linked Immunosorbent Assay
Published on: November 11, 2018
Structure and assembly of the mitochondrial membrane remodelling GTPase Mgm1
Katja Faelber1, Lea Dietrich2, Jeffrey K Noel3
1Crystallography, Max-Delbrück-Centrum for Molecular Medicine, Berlin, Germany. katja.faelber@mdc-berlin.de.
Abstract:
Balanced fusion and fission are key for the proper function and physiology of mitochondria1,2. Remodelling of the mitochondrial inner membrane is mediated by the dynamin-like protein mitochondrial genome maintenance 1 (Mgm1) in fungi or the related protein optic atrophy 1 (OPA1) in animals3-5. Mgm1 is required for the preservation of mitochondrial DNA in yeast6, whereas mutations in the OPA1 gene in humans are a common cause of autosomal dominant optic atrophy-a genetic disorder that affects the optic nerve7,8. Mgm1 and OPA1 are present in mitochondria as a membrane-integral long form and a short form that is soluble in the intermembrane space. Yeast strains that express temperature-sensitive mutants of Mgm19,10 or mammalian cells that lack OPA1 display fragmented mitochondria11,12, which suggests that Mgm1 and OPA1 have an important role in inner-membrane fusion. Consistently, only the mitochondrial outer membrane-not the inner membrane-fuses in the absence of functional Mgm113. Mgm1 and OPA1 have also been shown to maintain proper cristae architecture10,14; for example, OPA1 prevents the release of pro-apoptotic factors by tightening crista junctions15. Finally, the short form of OPA1 localizes to mitochondrial constriction sites, where it presumably promotes mitochondrial fission16. How Mgm1 and OPA1 perform their diverse functions in membrane fusion, scission and cristae organization is at present unknown. Here we present crystal and electron cryo-tomography structures of Mgm1 from Chaetomium thermophilum. Mgm1 consists of a GTPase (G) domain, a bundle signalling element domain, a stalk, and a paddle domain that contains a membrane-binding site. Biochemical and cell-based experiments demonstrate that the Mgm1 stalk mediates the assembly of bent tetramers into helical filaments. Electron cryo-tomography studies of Mgm1-decorated lipid tubes and fluorescence microscopy experiments on reconstituted membrane tubes indicate how the tetramers assemble on positively or negatively curved membranes. Our findings convey how Mgm1 and OPA1 filaments dynamically remodel the mitochondrial inner membrane.
Insights
Mitochondrial dynamics rely on Mgm1 and OPA1 proteins. This study reveals the structure of Mgm1, showing how its filaments remodel the mitochondrial inner membrane during fusion and fission.
Area of Science:
- Mitochondrial biology
- Molecular and structural biology
- Cellular dynamics
Background:
- Balanced mitochondrial fusion and fission are vital for cellular function.
- The dynamin-like proteins Mgm1 (fungi) and OPA1 (animals) mediate inner mitochondrial membrane remodeling.
- Dysfunction of these proteins is linked to mitochondrial fragmentation and human diseases like optic atrophy.
Purpose of the Study:
- To elucidate the molecular mechanism of Mgm1 and OPA1 in mitochondrial inner membrane remodeling.
- To determine the structural basis for Mgm1's role in membrane fusion, scission, and cristae organization.
Main Methods:
- X-ray crystallography and electron cryo-tomography to determine Mgm1 structure.
- Biochemical assays and cell-based experiments to study Mgm1 assembly and function.
- Lipid tube and reconstituted membrane experiments to visualize Mgm1 filament dynamics.
Main Results:
- The crystal structure of Mgm1 reveals a GTPase domain, stalk, and membrane-binding paddle domain.
- Mgm1 forms bent tetramers that assemble into helical filaments via the stalk.
- These filaments dynamically remodel lipid membranes, particularly at sites of positive or negative curvature.
Conclusions:
- Mgm1 filament assembly on curved membranes drives mitochondrial inner membrane remodeling.
- The findings provide a structural mechanism for how Mgm1 and OPA1 regulate mitochondrial dynamics.
- This work offers insights into the molecular basis of mitochondrial fusion, fission, and cristae maintenance.
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