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Updated: Aug 15, 2025

Micromanipulation Techniques Allowing Analysis of Morphogenetic Dynamics and Turnover of Cytoskeletal Regulators
Published on: May 12, 2018
Ena/VASP clustering at microspike tips involves lamellipodin but not I-BAR proteins, and absolutely requires
Thomas Pokrant1, Jens Ingo Hein1, Sarah Körber1
1Institute for Biophysical Chemistry, Hannover Medical School, 30625 Hannover, Germany.
Abstract:
Sheet-like membrane protrusions at the leading edge, termed lamellipodia, drive 2D-cell migration using active actin polymerization. Microspikes comprise actin-filament bundles embedded within lamellipodia, but the molecular mechanisms driving their formation and their potential functional relevance have remained elusive. Microspike formation requires the specific activity of clustered Ena/VASP proteins at their tips to enable processive actin assembly in the presence of capping protein, but the factors and mechanisms mediating Ena/VASP clustering are poorly understood. Systematic analyses of B16-F1 melanoma mutants lacking potential candidate proteins revealed that neither inverse BAR-domain proteins, nor lamellipodin or Abi is essential for clustering, although they differentially contribute to lamellipodial VASP accumulation. In contrast, unconventional myosin-X (MyoX) identified here as proximal to VASP was obligatory for Ena/VASP clustering and microspike formation. Interestingly, and despite the invariable distribution of other relevant marker proteins, the width of lamellipodia in MyoX-KO mutants was significantly reduced as compared with B16-F1 control, suggesting that microspikes contribute to lamellipodium stability. Consistently, MyoX removal caused marked defects in protrusion and random 2D-cell migration. Strikingly, Ena/VASP-deficiency also uncoupled MyoX cluster dynamics from actin assembly in lamellipodia, establishing their tight functional association in microspike formation.
Insights
Unconventional myosin-X (MyoX) is essential for clustering Ena/VASP proteins, driving microspike formation and 2D cell migration. MyoX also stabilizes lamellipodia width, crucial for cell movement.
Area of Science:
- Cell biology
- Molecular mechanisms of cell migration
Background:
- Lamellipodia drive 2D cell migration via actin polymerization.
- Microspikes, actin bundles within lamellipodia, have unclear formation mechanisms.
- Ena/VASP protein clustering is vital for microspike formation but poorly understood.
Purpose of the Study:
- Investigate molecular mechanisms of Ena/VASP clustering and microspike formation.
- Identify proteins essential for Ena/VASP clustering and microspike assembly.
- Determine the functional role of microspikes in cell migration and lamellipodia stability.
Main Methods:
- Systematic analysis of B16-F1 melanoma mutants lacking candidate proteins.
- Investigated protein proximity using co-localization studies.
- Assessed lamellipodia width, microspike formation, and cell migration in knockout mutants.
Main Results:
- Unconventional myosin-X (MyoX) is obligatory for Ena/VASP clustering and microspike formation.
- MyoX knockout mutants exhibit reduced lamellipodia width, suggesting microspikes stabilize lamellipodia.
- MyoX deficiency impairs cell protrusion and 2D migration.
- Ena/VASP deficiency uncouples MyoX cluster dynamics from actin assembly.
Conclusions:
- MyoX is a key regulator of Ena/VASP clustering, essential for microspike formation.
- Microspikes, regulated by MyoX, contribute to lamellipodia stability and cell migration.
- MyoX and Ena/VASP proteins function in a tightly coupled manner for microspike assembly.
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