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Updated: May 4, 2026

In Vitro Polymerization of F-actin on Early Endosomes
Published on: August 28, 2017
INF2-mediated severing through actin filament encirclement and disruption
Pinar S Gurel1, Peng Ge2, Elena E Grintsevich3
1Department of Biochemistry, Geisel School of Medicine at Dartmouth, Hanover, NH 03755, USA.
Background:
INF2 is a formin protein with the unique ability to accelerate both actin polymerization and depolymerization, the latter requiring filament severing. Mutations in INF2 lead to the kidney disease focal segmental glomerulosclerosis (FSGS) and the neurological disorder Charcot-Marie Tooth disease (CMTD).
Results:
Here, we compare the severing mechanism of INF2 with that of the well-studied severing protein cofilin. INF2, like cofilin, binds stoichiometrically to filament sides and severs in a manner that requires phosphate release from the filament. In contrast to cofilin, however, INF2 binds ADP and ADP-Pi filaments equally well. Furthermore, two-color total internal reflection fluorescence (TIRF) microscopy reveals that a low number of INF2 molecules, as few as a single INF2 dimer, are capable of severing, while measurable cofilin-mediated severing requires more extensive binding. Hence, INF2 is a more potent severing protein than cofilin. While a construct containing the FH1 and FH2 domains alone has some severing activity, addition of the C-terminal region increases severing potency by 40-fold, and we show that the WH2-resembling DAD motif is responsible for this increase. Helical 3D reconstruction from electron micrographs at 20 Å resolution provides a structure of filament-bound INF2, showing that the FH2 domain encircles the filament.
Conclusions:
We propose a severing model in which FH2 binding and phosphate release causes local filament deformation, allowing the DAD to bind adjacent actin protomers, further disrupting filament structure.
Insights
The formin INF2 protein severs actin filaments more potently than cofilin, with its DAD motif significantly enhancing this severing activity. This mechanism is crucial for understanding INF2
Area of Science:
- Biochemistry
- Cell Biology
- Structural Biology
Background:
- The INF2 protein, a formin, is implicated in actin dynamics, filament severing, and diseases like FSGS and CMTD.
- Understanding INF2's severing mechanism is key to its role in cellular processes and disease pathology.
Purpose of the Study:
- To elucidate the actin filament severing mechanism of INF2.
- To compare INF2's severing activity with that of cofilin.
- To identify the structural domains responsible for INF2's potent severing.
Main Methods:
- Comparative biochemical analysis of INF2 and cofilin.
- Total internal reflection fluorescence (TIRF) microscopy to observe severing events.
- Cryo-electron microscopy and helical 3D reconstruction to determine the structure of filament-bound INF2.
Main Results:
- INF2 severs actin filaments by requiring phosphate release, similar to cofilin, but binds ADP and ADP-Pi filaments equally.
- A single INF2 dimer can sever filaments, indicating higher potency than cofilin, which requires more extensive binding.
- The C-terminal DAD motif increases INF2's severing potency by 40-fold, with the FH2 domain encircling the actin filament.
Conclusions:
- INF2 is a highly potent actin filament severing protein, more effective than cofilin.
- A proposed model suggests FH2 binding and phosphate release induce filament deformation, enabling the DAD motif to disrupt filament structure.
- INF2's unique severing mechanism, involving the DAD motif and FH2 domain interaction, is critical for its function.
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