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Published on: May 10, 2022
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
Abstract:
Invadopodia are specialized actin-rich protrusions of metastatic tumor and transformed cells with crucial functions in ECM degradation and invasion. Although early electron microscopy studies described invadopodia as long filament-like protrusions of the cell membrane adherent to the matrix, fluorescence microscopy studies have focused on invadopodia as actin-cortactin aggregates localized to areas of ECM degradation. The absence of a clear conceptual integration of these two descriptions of invadopodial structure has impeded understanding of the regulatory mechanisms that govern invadopodia. To determine the relationship between the membrane filaments identified by electron microscopy and the actin-cortactin aggregates of invadopodia, we applied rapid live-cell high-resolution TIRF microscopy to examine cell membrane dynamics at the cortactin core of the invadopodia of human carcinoma cells. We found that cortactin docking to the cell membrane adherent to 2D fibronectin matrix initiates invadopodium assembly associated with the formation of an invadopodial membrane process that extends from a ventral cell membrane lacuna toward the ECM. The tip of the invadopodial process flattens as it interacts with the 2D matrix, and it undergoes constant rapid ruffling and dynamic formation of filament-like protrusions as the invadopodium matures. To describe this newly discovered dynamic relationship between the actin-cortactin core and invadopodial membranes, we propose a model of the invadopodial complex. Using TIRF microscopy, we also established that - in striking contrast to the invadopodium - membrane at the podosome of a macrophage fails to form any process- or filament-like membrane protrusions. Thus, the undulation and ruffling of the invadopodial membrane together with the formation of dynamic filament-like extensions from the invadopodial cortactin core defines invadopodia as invasive superstructures that are distinct from the podosomes.
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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