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Mechanical Confinement and DDR1 Signaling Synergize to Regulate Collagen‐Induced Apoptosis in Rhabdomyosarcoma Cells
Author(s) -
GonzalezMolina Jordi,
Kirchhof Katharina Miria,
Rathod Bhavik,
MoyanoGalceran Lidia,
CalvoNoriega Maria,
Kokaraki Georgia,
Bjørkøy Astrid,
Ehnman Monika,
Carlson Joseph W.,
Lehti Kaisa
Publication year - 2022
Publication title -
advanced science
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 5.388
H-Index - 100
ISSN - 2198-3844
DOI - 10.1002/advs.202202552
Subject(s) - apoptosis , ddr1 , microbiology and biotechnology , rhabdomyosarcoma , cancer research , puma , chemistry , signal transduction , biology , medicine , pathology , biochemistry , sarcoma , receptor tyrosine kinase
Fibrillar collagens promote cell proliferation, migration, and survival in various epithelial cancers and are generally associated with tumor aggressiveness. However, the impact of fibrillar collagens on soft tissue sarcoma behavior remains poorly understood. Unexpectedly, this study finds that fibrillar collagen‐related gene expression is associated with favorable patient prognosis in rhabdomyosarcoma. By developing and using collagen matrices with distinct stiffness and in vivo‐like microarchitectures, this study uncovers that the activation of DDR1 has pro‐apoptotic and of integrin β 1 pro‐survival function, specifically in 3D rhabdomyosarcoma cell cultures. It demonstrates that rhabdomyosarcoma cell‐intrinsic or extrinsic matrix remodeling promotes cell survival. Mechanistically, the 3D‐specific collagen‐induced apoptosis results from a dual DDR1‐independent and a synergistic DDR1‐dependent TRPV4‐mediated response to mechanical confinement. Altogether, these results indicate that dense microfibrillar collagen‐rich microenvironments are detrimental to rhabdomyosarcoma cells through an apoptotic response orchestrated by the induction of DDR1 signaling and mechanical confinement. This mechanism helps to explain the preference of rhabdomyosarcoma cells to grow in and metastasize to low fibrillar collagen microenvironments such as the lung.

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