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Updated: Feb 11, 2026

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Published on: August 14, 2018
The heptad repeat domain 1 of Mitofusin has membrane destabilization function in mitochondrial fusion
Frédéric Daste1,2, Cécile Sauvanet3, Andrej Bavdek1,2
1Membrane Traffic in Health & Disease, INSERM ERL U950, Sorbonne Paris Cité, Université Paris Descartes, Paris, France.
Abstract:
Mitochondria are double-membrane-bound organelles that constantly change shape through membrane fusion and fission. Outer mitochondrial membrane fusion is controlled by Mitofusin, whose molecular architecture consists of an N-terminal GTPase domain, a first heptad repeat domain (HR1), two transmembrane domains, and a second heptad repeat domain (HR2). The mode of action of Mitofusin and the specific roles played by each of these functional domains in mitochondrial fusion are not fully understood. Here, using a combination of in situ and in vitro fusion assays, we show that HR1 induces membrane fusion and possesses a conserved amphipathic helix that folds upon interaction with the lipid bilayer surface. Our results strongly suggest that HR1 facilitates membrane fusion by destabilizing the lipid bilayer structure, notably in membrane regions presenting lipid packing defects. This mechanism for fusion is thus distinct from that described for the heptad repeat domains of SNARE and viral proteins, which assemble as membrane-bridging complexes, triggering close membrane apposition and fusion, and is more closely related to that of the C-terminal amphipathic tail of the Atlastin protein.
Insights
The Mitofusin HR1 domain drives mitochondrial outer membrane fusion by destabilizing lipid bilayers, distinct from SNARE or viral protein mechanisms. This finding reveals a novel pathway for organelle fusion.
Area of Science:
- Cell Biology
- Molecular Biology
- Biophysics
Background:
- Mitochondria are dynamic organelles undergoing constant fusion and fission.
- Outer mitochondrial membrane fusion is regulated by Mitofusin, a protein with multiple domains.
- The precise function of Mitofusin domains in fusion remains unclear.
Purpose of the Study:
- To elucidate the molecular mechanism of Mitofusin in mitochondrial outer membrane fusion.
- To investigate the specific role of the HR1 domain in the fusion process.
Main Methods:
- Utilized in situ and in vitro fusion assays.
- Characterized the interaction of the HR1 domain with lipid bilayers.
Main Results:
- The HR1 domain directly induces membrane fusion.
- HR1 contains a conserved amphipathic helix that interacts with lipid bilayers.
- This interaction destabilizes the lipid bilayer, particularly at packing defects.
Conclusions:
- HR1 facilitates mitochondrial fusion through lipid bilayer destabilization, a novel mechanism.
- This pathway differs from SNARE and viral protein-mediated fusion.
- The HR1 mechanism shares similarities with the Atlastin protein's function.
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