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Updated: May 13, 2026

Reconstitution of Actin-Based Motility with Commercially Available Proteins
Published on: October 28, 2022
Antagonistic regulation of F-BAR protein assemblies controls actin polymerization during podosome formation
Kazuya Tsujita1, Akihiro Kondo, Shusaku Kurisu
1Division of Lipid Biochemistry, Department of Biochemistry and Molecular Biology, Kobe University Graduate School of Medicine, 7-5-1 Kusunoki-cho, Chuo-ku, Kobe, Hyogo 650-0017, Japan.
Abstract:
FBP17, an F-BAR domain protein, has emerged as a crucial factor linking the plasma membrane to WASP-mediated actin polymerization. Although it is well established that FBP17 has a powerful self-polymerizing ability that promotes actin nucleation on membranes in vitro, knowledge of inhibitory factors that counteract this activity in vivo is limited. Here, we demonstrate that the assembly of FBP17 on the plasma membranes is antagonized by PSTPIP2, another F-BAR protein implicated in auto-inflammatory disorder. Knockdown of PSTPIP2 in macrophage promotes the assembly of FBP17 as well as subsequent actin nucleation at podosomes, resulting in an enhancement of matrix degradation. This phenotype is rescued by expression of PSTPIP2 in a manner dependent on its F-BAR domain. Time-lapse total internal reflection fluorescence (TIRF) microscopy observations reveal that the self-assembly of FBP17 at the podosomal membrane initiates actin polymerization, whereas the clustering of PSTPIP2 has an opposite effect. Biochemical analysis and live-cell imaging show that PSTPIP2 inhibits actin polymerization by competing with FBP17 for assembly at artificial as well as the plasma membrane. Interestingly, the assembly of FBP17 is dependent on WASP, and its dissociation by WASP inhibition strongly induces a self-organization of PSTPIP2 at podosomes. Thus, our data uncover a previously unappreciated antagonism between different F-BAR domain assemblies that determines the threshold of actin polymerization for the formation of functional podosomes and may explain how the absence of PSTPIP2 causes auto-inflammatory disorder.
Insights
The F-BAR protein PSTPIP2 inhibits FBP17 assembly and actin polymerization at the plasma membrane. Its absence enhances FBP17 activity, leading to increased matrix degradation and potentially auto-inflammatory disorders.
Area of Science:
- Cell Biology
- Molecular Biology
- Immunology
Background:
- FBP17 (formin-binding protein 17) is an F-BAR domain protein essential for linking the plasma membrane to actin polymerization via WASP.
- While FBP17 self-polymerizes to promote actin nucleation, in vivo inhibitors are poorly understood.
Purpose of the Study:
- To identify and characterize inhibitory factors of FBP17 assembly on the plasma membrane in vivo.
- To elucidate the role of PSTPIP2 (proline-serine-threonine-interacting protein 2) in regulating FBP17-mediated actin dynamics and podosome formation.
Main Methods:
- Macrophage cell culture and knockdown of PSTPIP2.
- Time-lapse total internal reflection fluorescence (TIRF) microscopy.
- Biochemical analysis of protein-protein interactions and membrane assembly.
- Live-cell imaging of actin polymerization and podosome formation.
Main Results:
- PSTPIP2 antagonizes FBP17 assembly on plasma membranes, inhibiting actin nucleation.
- PSTPIP2 knockdown in macrophages enhances FBP17 assembly and actin nucleation at podosomes, increasing matrix degradation.
- PSTPIP2 inhibits actin polymerization by competing with FBP17 for membrane binding.
- WASP inhibition promotes PSTPIP2 self-organization at podosomes, dissociating FBP17.
Conclusions:
- A novel antagonism between F-BAR domain proteins FBP17 and PSTPIP2 regulates actin polymerization thresholds for functional podosome formation.
- This FBP17-PSTPIP2 interplay offers a mechanistic explanation for auto-inflammatory disorders linked to PSTPIP2 deficiency.
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