Dynamins are mechano-chemical GTPases involved in the remodeling of cellular membranes. In this study, we have investigated the mechanism of dynamin-related protein 1 (Drp1), a key mediator of mitochondrial fission. To date, it is unclear how Drp1 assembles on the mitochondrial outer membrane in response to different lipid signals to induce membrane fission. Here, we present cryo-EM structures of Drp1 helices on nanotubes with distinct lipid compositions to mimic membrane interactions with the fission machinery. These Drp1 polymers assemble exclusively through stalk and G-domain dimerizations, which generates an expanded helical symmetry when compared to other dynamins. Interestingly, we found the characteristic gap between Drp1 and the lip...
Mitochondrial inheritance, genome maintenance and metabolic adaptation depend on organelle fission b...
Mitochondria exist in an equilibrium between fragmented and fused that shifts heavily toward fission...
International audienceThe mitochondrial network constantly changes and remodels its shape to face th...
Dynamins are mechano-chemical GTPases involved in the remodeling of cellular membranes. In this stud...
The family of dynamin fission proteins polymerize and use GTP to divide eukaryotic membranous struct...
Mitochondria are dynamic organelles that continually adapt their morphology by fusion and fission ev...
Dynamin-Related Protein 1 (Drp1), a large GTPase of the dynamin superfamily, is required for mitocho...
Mitochondria are dynamic organelles that continually adapt their morphology by fusion and fission ev...
Mitochondria are dynamic organelles that continually adapt their morphology by fusion and fission ev...
Mitochondria form tubular networks that undergo coordinated cycles of fission and fusion. Emerging e...
Cardiolipin’s propensity for phase transition and its reorganization by dynamin-related protein 1 fo...
While the dynamin GTPase Drp1 plays a critical role during mitochondrial fission, mechanisms control...
The mechanochemical GTPase dynamin-related protein 1 (Drp1) catalyzes mitochondrial and peroxisomal ...
SummaryProteins of the dynamin superfamily mediate membrane fission, fusion, and restructuring event...
Dynamin-related protein 1 (Drp1) is essential for mitochondrial and peroxisomal fission. Recent stud...
Mitochondrial inheritance, genome maintenance and metabolic adaptation depend on organelle fission b...
Mitochondria exist in an equilibrium between fragmented and fused that shifts heavily toward fission...
International audienceThe mitochondrial network constantly changes and remodels its shape to face th...
Dynamins are mechano-chemical GTPases involved in the remodeling of cellular membranes. In this stud...
The family of dynamin fission proteins polymerize and use GTP to divide eukaryotic membranous struct...
Mitochondria are dynamic organelles that continually adapt their morphology by fusion and fission ev...
Dynamin-Related Protein 1 (Drp1), a large GTPase of the dynamin superfamily, is required for mitocho...
Mitochondria are dynamic organelles that continually adapt their morphology by fusion and fission ev...
Mitochondria are dynamic organelles that continually adapt their morphology by fusion and fission ev...
Mitochondria form tubular networks that undergo coordinated cycles of fission and fusion. Emerging e...
Cardiolipin’s propensity for phase transition and its reorganization by dynamin-related protein 1 fo...
While the dynamin GTPase Drp1 plays a critical role during mitochondrial fission, mechanisms control...
The mechanochemical GTPase dynamin-related protein 1 (Drp1) catalyzes mitochondrial and peroxisomal ...
SummaryProteins of the dynamin superfamily mediate membrane fission, fusion, and restructuring event...
Dynamin-related protein 1 (Drp1) is essential for mitochondrial and peroxisomal fission. Recent stud...
Mitochondrial inheritance, genome maintenance and metabolic adaptation depend on organelle fission b...
Mitochondria exist in an equilibrium between fragmented and fused that shifts heavily toward fission...
International audienceThe mitochondrial network constantly changes and remodels its shape to face th...