Mff oligomerization is required for Drp1 activation and synergy with actin filaments during mitochondrial division

Ao Liu1, Frieda Kage1, Henry N Higgs1

  • 1Department of Biochemistry and Cell Biology, Geisel School of Medicine at Dartmouth College, Hanover, NH 03755.

Insights

Mitochondrial fission factor (Mff) oligomerization drives dynamin GTPase (Drp1) activation for mitochondrial division. Actin filaments enhance this process by increasing Mff

Area of Science:

  • Cell Biology
  • Molecular Biology
  • Biochemistry

Background:

  • Mitochondrial division is crucial for cellular health and disease.
  • Dynamin GTPase (Drp1) mediates outer mitochondrial membrane (OMM) constriction.
  • Mitochondrial fission factor (Mff) recruits Drp1 to mitochondria, with actin filaments also playing a role.

Purpose of the Study:

  • To elucidate the interplay between Mff and actin in Drp1 activation.
  • To determine the oligomeric state and dynamics of Mff.
  • To investigate the functional consequences of Mff oligomerization defects.

Main Methods:

  • Purified protein assays using total internal reflection microscopy.
  • Biochemical characterization of Mff oligomerization (e.g., Kd determination).
  • Cellular studies in Mff knockout U2OS cells.

Main Results:

  • Mff forms dynamic oligomers (likely trimers) essential for Drp1 activation.
  • Actin filaments enhance Mff-mediated Drp1 activation by reducing effective Mff concentration.
  • Oligomerization-defective Mff fails to rescue mitochondrial and peroxisome division defects in knockout cells.

Conclusions:

  • Dynamic Mff oligomerization is a key regulatory step for Drp1-mediated mitochondrial fission.
  • Actin filaments act as scaffolds, promoting Mff-oligomerization-dependent Drp1 recruitment.
  • Mff oligomerization is essential for its puncta formation on mitochondria and proper cellular function.

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