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Updated: Jul 20, 2025

Author Spotlight: Unveiling Mitochondrial Contact Sites and Architectural Insights
Published on: June 16, 2023
Completion of mitochondrial division requires the intermembrane space protein Mdi1/Atg44
Olivia M Connor1, Srujan K Matta1, Jonathan R Friedman1
1Department of Cell Biology, University of Texas Southwestern Medical Center, Dallas, TX, USA.
Abstract:
Mitochondria are highly dynamic double membrane-bound organelles that maintain their shape in part through fission and fusion. Mitochondrial fission is performed by a dynamin-related protein, Dnm1 (Drp1 in humans), that constricts and divides the mitochondria in a GTP hydrolysis-dependent manner. However, it is unclear whether factors inside mitochondria help coordinate the process and if Dnm1/Drp1 activity is sufficient to complete the fission of both mitochondrial membranes. Here, we identify an intermembrane space protein required for mitochondrial fission in yeast, which we propose to name Mdi1 (also named Atg44). Loss of Mdi1 causes mitochondrial hyperfusion due to defects in fission, but not the lack of Dnm1 recruitment to mitochondria. Mdi1 is conserved in fungal species, and its homologs contain an amphipathic α-helix, mutations of which disrupt mitochondrial morphology. One model is that Mdi1 distorts mitochondrial membranes to enable Dnm1 to robustly complete fission. Our work reveals that Dnm1 cannot efficiently divide mitochondria without the coordinated function of Mdi1 inside mitochondria.
Insights
Mitochondrial fission, crucial for organelle shape, requires the new protein Mdi1 (also named Atg44). This protein works with Dnm1 (dynamin-related protein 1) to ensure mitochondria divide properly.
Area of Science:
- Cell Biology
- Mitochondrial Dynamics
Background:
- Mitochondria are dynamic organelles whose shape is regulated by fission and fusion.
- Mitochondrial fission is mediated by Dnm1 (dynamin-related protein 1), but the complete mechanism, especially involving both membranes, remains unclear.
Purpose of the Study:
- To investigate factors coordinating mitochondrial fission beyond Dnm1/Drp1 activity.
- To identify proteins within the mitochondria that contribute to the completion of mitochondrial division.
Main Methods:
- Genetic screening in yeast to identify novel fission factors.
- Analysis of mitochondrial morphology in knockout strains.
- Investigating protein localization and function using microscopy.
Main Results:
- A novel intermembrane space protein, Mdi1 (Atg44), was identified as essential for mitochondrial fission in yeast.
- Loss of Mdi1 leads to mitochondrial hyperfusion, indicating a fission defect, independent of Dnm1 recruitment.
- Conserved homologs of Mdi1 possess an amphipathic α-helix critical for its function in mitochondrial morphology.
Conclusions:
- Mdi1 plays a critical role in coordinating mitochondrial fission, likely by distorting membranes to facilitate Dnm1-mediated division.
- Dnm1 alone is insufficient for efficient mitochondrial division; Mdi1 is required for robust fission completion.
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