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Updated: Apr 13, 2026

Reconstitution of Actin-Based Motility with Commercially Available Proteins
Published on: October 28, 2022
The role of structural dynamics of actin in class-specific myosin motility
Taro Q P Noguchi1, Masatoshi Morimatsu2, Atsuko H Iwane3
1Biomedical Research Institute, National Institute of Advanced Industrial Science and Technology, Tsukuba, Ibaraki, Japan; Graduate School of Life and Environmental Sciences, University of Tsukuba, Ibaraki, Japan; Department of Chemical Science and Engineering, National Institute of Technology, Miyakonojo College, Miyakonojo, Miyazaki, Japan.
Abstract:
The structural dynamics of actin, including the tilting motion between the small and large domains, are essential for proper interactions with actin-binding proteins. Gly146 is situated at the hinge between the two domains, and we previously showed that a G146V mutation leads to severe motility defects in skeletal myosin but has no effect on motility of myosin V. The present study tested the hypothesis that G146V mutation impaired rotation between the two domains, leading to such functional defects. First, our study showed that depolymerization of G146V filaments was slower than that of wild-type filaments. This result is consistent with the distinction of structural states of G146V filaments from those of the wild type, considering the recent report that stabilization of actin filaments involves rotation of the two domains. Next, we measured intramolecular FRET efficiencies between two fluorophores in the two domains with or without skeletal muscle heavy meromyosin or the heavy meromyosin equivalent of myosin V in the presence of ATP. Single-molecule FRET measurements showed that the conformations of actin subunits of control and G146V actin filaments were different in the presence of skeletal muscle heavy meromyosin. This altered conformation of G146V subunits may lead to motility defects in myosin II. In contrast, distributions of FRET efficiencies of control and G146V subunits were similar in the presence of myosin V, consistent with the lack of motility defects in G146V actin with myosin V. The distribution of FRET efficiencies in the presence of myosin V was different from that in the presence of skeletal muscle heavy meromyosin, implying that the roles of actin conformation in myosin motility depend on the type of myosin.
Insights
A mutation at Glycine 146 (G146V) in actin affects its structural dynamics, causing defects with skeletal muscle myosin II but not myosin V. This highlights how actin conformation influences myosin motility differently depending on the myosin type.
Area of Science:
- Biochemistry
- Molecular Biology
- Structural Biology
Background:
- Actin's structural dynamics, particularly domain tilting, are crucial for interactions with actin-binding proteins.
- A Glycine 146 to Valine (G146V) mutation impacts actin structure, causing severe motility defects with skeletal myosin but not myosin V.
Purpose of the Study:
- To investigate if the G146V mutation impairs domain rotation in actin, leading to functional defects.
- To determine how the G146V mutation affects actin conformation in the presence of different myosins.
Main Methods:
- Filament depolymerization assays to assess structural differences.
- Single-molecule Förster Resonance Energy Transfer (smFRET) to measure intramolecular conformational changes.
- Experiments conducted with wild-type and G146V actin in the presence of skeletal muscle heavy meromyosin and myosin V, with ATP.
Main Results:
- G146V actin filaments exhibited slower depolymerization than wild-type, suggesting altered structural states.
- smFRET revealed different actin subunit conformations between control and G146V filaments when bound to skeletal muscle heavy meromyosin.
- smFRET distributions were similar for control and G146V actin with myosin V, indicating no significant conformational change affecting myosin V motility.
Conclusions:
- The G146V mutation alters actin conformation, potentially explaining motility defects observed with skeletal muscle myosin II.
- Actin's conformational state plays a differential role in myosin motility, dependent on the specific myosin type involved.
- These findings provide insights into the structure-function relationships of actin and myosin interactions.
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