Dynamic membrane remodeling at invadopodia differentiates invadopodia from podosomes

Vira V Artym1, Kazue Matsumoto, Susette C Mueller

  • 1Department of Oncology, Lombardi Comprehensive Cancer Center, Georgetown University Medical School, Washington, DC 20057, USA. vartym@mail.nih.gov

Insights

Invadopodia, crucial for cancer cell invasion, form dynamic membrane structures with actin-cortactin cores. These invasive superstructures differ significantly from macrophage podosomes, which lack such membrane protrusions.

Area of Science:

  • Cell Biology
  • Cancer Research
  • Biophysics

Background:

  • Invadopodia are actin-rich cell protrusions essential for extracellular matrix (ECM) degradation and invasion by metastatic tumor cells.
  • Discrepancies between electron microscopy (long filaments) and fluorescence microscopy (actin-cortactin aggregates) have hindered understanding of invadopodia structure and regulation.
  • Clarifying the relationship between membrane dynamics and the actin-cortactin core is key to understanding invadopodia function.

Purpose of the Study:

  • To integrate structural descriptions of invadopodia by examining cell membrane dynamics at the cortactin core.
  • To elucidate the relationship between membrane filaments and actin-cortactin aggregates in invadopodia formation.
  • To differentiate invadopodia from podosomes based on membrane dynamics.

Main Methods:

  • Utilized rapid live-cell high-resolution Total Internal Reflection Fluorescence (TIRF) microscopy.
  • Examined cell membrane dynamics at the cortactin core of invadopodia in human carcinoma cells.
  • Compared membrane behavior in invadopodia with that of macrophage podosomes.

Main Results:

  • Cortactin docking to the cell membrane initiates invadopodium assembly, forming a membrane process extending towards the ECM.
  • The invadopodial membrane tip exhibits dynamic ruffling and forms filament-like protrusions during maturation.
  • Macrophage podosome membranes, in contrast, showed no such process- or filament-like protrusions.

Conclusions:

  • A novel model of the invadopodial complex is proposed, highlighting the dynamic interplay between the actin-cortactin core and the invadopodial membrane.
  • Invadopodia are defined as distinct invasive superstructures characterized by membrane undulation, ruffling, and dynamic filament formation.
  • These findings distinguish invadopodia from podosomes, offering new insights into cancer cell invasion mechanisms.

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