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Published on: July 30, 2014
Actin filament oxidation by MICAL1 suppresses protections from cofilin-induced disassembly
Hugo Wioland1, Stéphane Frémont2, Bérengère Guichard1
1Université de Paris, CNRS, Institut Jacques Monod, Paris, France.
Abstract:
Proteins of the ADF/cofilin family play a central role in the disassembly of actin filaments, and their activity must be tightly regulated in cells. Recently, the oxidation of actin filaments by the enzyme MICAL1 was found to amplify the severing action of cofilin through unclear mechanisms. Using single filament experiments in vitro, we found that actin filament oxidation by MICAL1 increases, by several orders of magnitude, both cofilin binding and severing rates, explaining the dramatic synergy between oxidation and cofilin for filament disassembly. Remarkably, we found that actin oxidation bypasses the need for cofilin activation by dephosphorylation. Indeed, non-activated, phosphomimetic S3D-cofilin binds and severs oxidized actin filaments rapidly, in conditions where non-oxidized filaments are unaffected. Finally, tropomyosin Tpm1.8 loses its ability to protect filaments from cofilin severing activity when actin is oxidized by MICAL1. Together, our results show that MICAL1-induced oxidation of actin filaments suppresses their physiological protection from the action of cofilin. We propose that, in cells, direct post-translational modification of actin filaments by oxidation is a way to trigger their disassembly.
Insights
Oxidation of actin filaments by MICAL1 dramatically enhances cofilin
Area of Science:
- Cell Biology
- Biochemistry
- Molecular Biology
Background:
- ADF/cofilin proteins regulate actin filament dynamics.
- MICAL1-mediated actin oxidation amplifies cofilin's severing activity via unknown mechanisms.
Purpose of the Study:
- To elucidate the mechanisms by which MICAL1-induced actin oxidation enhances cofilin-mediated filament disassembly.
Main Methods:
- In vitro single actin filament assays.
- Analysis of cofilin binding and severing kinetics on oxidized and non-oxidized actin.
Main Results:
- MICAL1 oxidation increases cofilin binding and severing rates by orders of magnitude.
- Oxidized actin is rapidly severed by non-activated cofilin, bypassing dephosphorylation.
- Tropomyosin protection against cofilin is lost on MICAL1-oxidized actin filaments.
Conclusions:
- MICAL1-induced actin oxidation overrides normal regulatory mechanisms, including tropomyosin protection and cofilin activation.
- Post-translational modification of actin via oxidation can directly trigger filament disassembly in cells.
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