An intermembrane space protein facilitates completion of mitochondrial divisionin yeast
Connor, O. M.; Matta, S. K.; Friedman, J. R.
10.1101/2023.03.31.535139 bioRxivShow abstract
Mitochondria are highly dynamic double membrane-bound organelles that maintain their shape in part through fission and fusion. Mitochondrial fission is performed by the dynamin-related protein Dnm1 (Drp1 in humans), a large GTPase 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 alone is sufficient to complete fission of both mitochondrial membranes. Here, we identify an intermembrane space protein required for mitochondrial fission in yeast, which we propose to name Mdi1. Loss of Mdi1 leads to hyper-fused mitochondria networks due to defects in mitochondrial fission, but not lack of Dnm1 recruitment to mitochondria. Mdi1 plays a conserved role in fungal species and its homologs contain a putative amphipathic -helix, mutations in which disrupt mitochondrial morphology. One model to explain these findings is that Mdi1 associates with and distorts the mitochondrial inner membrane to enable Dnm1 to robustly complete fission. Our work reveals that Dnm1 cannot efficiently divide mitochondria without the coordinated function of a protein that resides inside mitochondria.
Matching journals
The top 4 journals account for 50% of the predicted probability mass.
Similar papers in this journal
Similar papers in this journal
- Significantly reduced, but balanced, rates of mitochondrial fission and fusion are sufficient to maintain the integrity of yeast mitochondrial DNA 97%
- ER-localized phosphatidylethanolamine synthase plays a conserved role in lipid droplet formation 97%
- More than just a ticket canceller: The mitochondrial processing peptidase matures complex precursor proteins at internal cleavage sites 96%
Similar papers in this journal
Similar papers in this journal
- Phosphate Starvation Signaling Increases Mitochondrial Membrane Potential through Respiration-independent Mechanisms 96%
- Towards a molecular mechanism underlying mitochondrial protein import through the TOM and TIM23 complexes 96%
- Mitochondrial volume fraction and translation speed impact mRNA localization and production of nuclear-encoded mitochondrial proteins 95%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.