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1.
EMBO J ; 32(20): 2735-50, 2013 Oct 16.
Article in English | MEDLINE | ID: mdl-24076653

ABSTRACT

Filopodia explore the environment, sensing soluble and mechanical cues during directional motility and tissue morphogenesis. How filopodia are initiated and spatially restricted to specific sites on the plasma membrane is still unclear. Here, we show that the membrane deforming and curvature sensing IRSp53 (Insulin Receptor Substrate of 53 kDa) protein slows down actin filament barbed end growth. This inhibition is relieved by CDC42 and counteracted by VASP, which also binds to IRSp53. The VASP:IRSp53 interaction is regulated by activated CDC42 and promotes high-density clustering of VASP, which is required for processive actin filament elongation. The interaction also mediates VASP recruitment to liposomes. In cells, IRSp53 and VASP accumulate at discrete foci at the leading edge, where filopodia are initiated. Genetic removal of IRSp53 impairs the formation of VASP foci, filopodia and chemotactic motility, while IRSp53 null mice display defective wound healing. Thus, IRSp53 dampens barbed end growth. CDC42 activation inhibits this activity and promotes IRSp53-dependent recruitment and clustering of VASP to drive actin assembly. These events result in spatial restriction of VASP filament elongation for initiation of filopodia during cell migration, invasion, and tissue repair.


Subject(s)
Actin Cytoskeleton/genetics , Actins/metabolism , Cell Adhesion Molecules/metabolism , Microfilament Proteins/metabolism , Nerve Tissue Proteins/physiology , Phosphoproteins/metabolism , cdc42 GTP-Binding Protein/physiology , Actin Cytoskeleton/metabolism , Animals , Cell Adhesion Molecules/physiology , Cells, Cultured , Down-Regulation/genetics , Embryo, Mammalian , Mice , Mice, Knockout , Microfilament Proteins/physiology , Nerve Tissue Proteins/genetics , Nerve Tissue Proteins/metabolism , Phosphoproteins/physiology , Protein Binding , Protein Multimerization/genetics , cdc42 GTP-Binding Protein/genetics , cdc42 GTP-Binding Protein/metabolism
2.
PLoS Comput Biol ; 7(7): e1002088, 2011 Jul.
Article in English | MEDLINE | ID: mdl-21814501

ABSTRACT

There is a body of literature that describes the geometry and the physics of filopodia using either stochastic models or partial differential equations and elasticity and coarse-grained theory. Comparatively, there is a paucity of models focusing on the regulation of the network of proteins that control the formation of different actin structures. Using a combination of in-vivo and in-vitro experiments together with a system of ordinary differential equations, we focused on a small number of well-characterized, interacting molecules involved in actin-dependent filopodia formation: the actin remodeler Eps8, whose capping and bundling activities are a function of its ligands, Abi-1 and IRSp53, respectively; VASP and Capping Protein (CP), which exert antagonistic functions in controlling filament elongation. The model emphasizes the essential role of complexes that contain the membrane deforming protein IRSp53, in the process of filopodia initiation. This model accurately accounted for all observations, including a seemingly paradoxical result whereby genetic removal of Eps8 reduced filopodia in HeLa, but increased them in hippocampal neurons, and generated quantitative predictions, which were experimentally verified. The model further permitted us to explain how filopodia are generated in different cellular contexts, depending on the dynamic interaction established by Eps8, IRSp53 and VASP with actin filaments, thus revealing an unexpected plasticity of the signaling network that governs the multifunctional activities of its components in the formation of filopodia.


Subject(s)
Actins/metabolism , Cell Adhesion Molecules/metabolism , Intracellular Signaling Peptides and Proteins/metabolism , Microfilament Proteins/metabolism , Nerve Tissue Proteins/metabolism , Phosphoproteins/metabolism , Pseudopodia/metabolism , Actin Cytoskeleton/metabolism , Adaptor Proteins, Signal Transducing , HeLa Cells , Hippocampus/cytology , Histocytochemistry , Humans , Immunoblotting , Metabolic Networks and Pathways/physiology , Models, Biological , Neurons/metabolism , Reproducibility of Results , Signal Transduction/physiology
3.
PLoS Biol ; 8(6): e1000387, 2010 Jun 01.
Article in English | MEDLINE | ID: mdl-20532239

ABSTRACT

Actin capping and cross-linking proteins regulate the dynamics and architectures of different cellular protrusions. Eps8 is the founding member of a unique family of capping proteins capable of side-binding and bundling actin filaments. However, the structural basis through which Eps8 exerts these functions remains elusive. Here, we combined biochemical, molecular, and genetic approaches with electron microscopy and image analysis to dissect the molecular mechanism responsible for the distinct activities of Eps8. We propose that bundling activity of Eps8 is mainly mediated by a compact four helix bundle, which is contacting three actin subunits along the filament. The capping activity is mainly mediated by a amphipathic helix that binds within the hydrophobic pocket at the barbed ends of actin blocking further addition of actin monomers. Single-point mutagenesis validated these modes of binding, permitting us to dissect Eps8 capping from bundling activity in vitro. We further showed that the capping and bundling activities of Eps8 can be fully dissected in vivo, demonstrating the physiological relevance of the identified Eps8 structural/functional modules. Eps8 controls actin-based motility through its capping activity, while, as a bundler, is essential for proper intestinal morphogenesis of developing Caenorhabditis elegans.


Subject(s)
Actins/physiology , Intracellular Signaling Peptides and Proteins/physiology , Actins/metabolism , Adaptor Proteins, Signal Transducing , Humans , Intracellular Signaling Peptides and Proteins/metabolism , Mass Spectrometry , Microscopy, Electron , Models, Molecular , Protein Binding , Thermodynamics
4.
Nat Cell Biol ; 8(12): 1337-47, 2006 Dec.
Article in English | MEDLINE | ID: mdl-17115031

ABSTRACT

Actin-crosslinking proteins organize actin into highly dynamic and architecturally diverse subcellular scaffolds that orchestrate a variety of mechanical processes, including lamellipodial and filopodial protrusions in motile cells. How signalling pathways control and coordinate the activity of these crosslinkers is poorly defined. IRSp53, a multi-domain protein that can associate with the Rho-GTPases Rac and Cdc42, participates in these processes mainly through its amino-terminal IMD (IRSp53 and MIM domain). The isolated IMD has actin-bundling activity in vitro and is sufficient to induce filopodia in vivo. However, the manner of regulation of this activity in the full-length protein remains largely unknown. Eps8 is involved in actin dynamics through its actin barbed-ends capping activity and its ability to modulate Rac activity. Moreover, Eps8 binds to IRSp53. Here, we describe a novel actin crosslinking activity of Eps8. Additionally, Eps8 activates and synergizes with IRSp53 in mediating actin bundling in vitro, enhancing IRSp53-dependent membrane extensions in vivo. Cdc42 binds to and controls the cellular distribution of the IRSp53-Eps8 complex, supporting the existence of a Cdc42-IRSp53-Eps8 signalling pathway. Consistently, Cdc42-induced filopodia are inhibited following individual removal of either IRSp53 or Eps8. Collectively, these results support a model whereby the synergic bundling activity of the IRSp53-Eps8 complex, regulated by Cdc42, contributes to the generation of actin bundles, thus promoting filopodial protrusions.


Subject(s)
Actin Cytoskeleton/metabolism , Actins/metabolism , Cell Shape , Intracellular Signaling Peptides and Proteins/metabolism , Nerve Tissue Proteins/metabolism , cdc42 GTP-Binding Protein/metabolism , Adaptor Proteins, Signal Transducing , Animals , COS Cells , Chlorocebus aethiops , HeLa Cells , Humans , Protein Binding , Protein Transport , Pseudopodia/metabolism , Wiskott-Aldrich Syndrome Protein Family/metabolism
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