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Mechanical Forces as Determinants of Disseminated Metastatic Cell Fate
Marco Montagner1, Sirio Dupont1
1Department of Molecular Medicine, University of Padua, via Bassi 58/B, zip 35121 Padua, Italy.
Abstract:
Disseminated metastatic cancer cells represent one of the most relevant causes of disease relapse and associated death for cancer patients, and a therapeutic target of the highest priority. Still, our understanding of how disseminated cancer cells survive in the foreign metastatic environment, and eventually cause metastatic outgrowth, remains rather limited. In this review we focus on the cell microenvironment as a key regulator of cell behavior at the metastatic site, and especially on the mechanical properties of the extracellular matrix and associated integrin signaling. We discuss available evidence pointing to a pervasive role of extracellular matrix (ECM) mechanical properties in regulating cancer cell proliferation and survival after dissemination, and propose that this might represent an important bottleneck for cells invading and establishing into a novel tissue. We point to the known molecular players, how these might contribute to modulate the mechanical properties of the metastatic environment, and the response of cells to these cues. Finally, we propose that emerging knowledge on the physical interaction of disseminated metastatic cells and on the downstream mechanotransduction pathways, including YAP/TAZ (Yes-associated protein-1 and WW-domain transcription activator 1) and MRTFs (Myocardin-related transcription factors), may help to identify novel approaches for therapy.
Insights
Disseminated cancer cells survive by interacting with their microenvironment. Understanding extracellular matrix mechanics and cell signaling offers new therapeutic targets for metastatic cancer.
Area of Science:
- Oncology
- Cell Biology
- Biophysics
Background:
- Disseminated metastatic cancer cells are a primary cause of cancer relapse and mortality.
- Limited understanding exists regarding how these cells survive and cause metastatic outgrowth in foreign environments.
Purpose of the Study:
- To review the role of the cell microenvironment, particularly extracellular matrix (ECM) mechanical properties and integrin signaling, in regulating disseminated cancer cell survival.
- To explore how ECM mechanics act as a bottleneck for metastatic colonization.
Main Methods:
- Review of existing literature on cancer cell dissemination, microenvironment interactions, and mechanotransduction pathways.
- Analysis of the role of molecular players in modulating ECM properties and cellular responses.
Main Results:
- Extracellular matrix (ECM) mechanical properties significantly regulate cancer cell proliferation and survival post-dissemination.
- Integrin signaling and mechanotransduction pathways, including YAP/TAZ and MRTFs, are crucial in mediating cell responses to the microenvironment.
Conclusions:
- The physical interaction between disseminated cells and their microenvironment is critical for metastatic colonization.
- Targeting ECM mechanics and associated mechanotransduction pathways presents novel therapeutic strategies for metastatic cancer.
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