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Cell Force-Driven Basement Membrane Disruption Fuels EGF- and Stiffness-Induced Invasive Cell Dissemination from Benign Breast Gland Acini

Local basement membrane (BM) disruption marks the initial step of breast cancer invasion. The activation mechanisms of force-driven BM-weakening remain elusive. We studied the mechanical response of MCF10A-derived human breast cell acini with BMs of tuneable maturation to physical and soluble tumour...

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Autores principales: Gaiko-Shcherbak, Aljona, Eschenbruch, Julian, Kronenberg, Nils M., Teske, Michael, Wolters, Benjamin, Springer, Ronald, Gather, Malte C., Merkel, Rudolf, Hoffmann, Bernd, Noetzel, Erik
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8070162/
https://www.ncbi.nlm.nih.gov/pubmed/33921304
http://dx.doi.org/10.3390/ijms22083962
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author Gaiko-Shcherbak, Aljona
Eschenbruch, Julian
Kronenberg, Nils M.
Teske, Michael
Wolters, Benjamin
Springer, Ronald
Gather, Malte C.
Merkel, Rudolf
Hoffmann, Bernd
Noetzel, Erik
author_facet Gaiko-Shcherbak, Aljona
Eschenbruch, Julian
Kronenberg, Nils M.
Teske, Michael
Wolters, Benjamin
Springer, Ronald
Gather, Malte C.
Merkel, Rudolf
Hoffmann, Bernd
Noetzel, Erik
author_sort Gaiko-Shcherbak, Aljona
collection PubMed
description Local basement membrane (BM) disruption marks the initial step of breast cancer invasion. The activation mechanisms of force-driven BM-weakening remain elusive. We studied the mechanical response of MCF10A-derived human breast cell acini with BMs of tuneable maturation to physical and soluble tumour-like extracellular matrix (ECM) cues. Traction force microscopy (TFM) and elastic resonator interference stress microscopy (ERISM) were used to quantify pro-invasive BM stress and protrusive forces. Substrate stiffening and mechanically impaired BM scaffolds induced the invasive transition of benign acini synergistically. Robust BM scaffolds attenuated this invasive response. Additional oncogenic EGFR activation compromised the BMs’ barrier function, fuelling invasion speed and incidence. Mechanistically, EGFR-PI3-Kinase downstream signalling modulated both MMP- and force-driven BM-weakening processes. We show that breast acini form non-proteolytic and BM-piercing filopodia for continuous matrix mechanosensation, which significantly push and pull on the BM and ECM under pro-invasive conditions. Invasion-triggered acini further shear and compress their BM by contractility-based stresses that were significantly increased (3.7-fold) compared to non-invasive conditions. Overall, the highest amplitudes of protrusive and contractile forces accompanied the highest invasiveness. This work provides a mechanistic concept for tumour ECM-induced mechanically misbalanced breast glands fuelling force-driven BM disruption. Finally, this could facilitate early cell dissemination from pre-invasive lesions to metastasize eventually.
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spelling pubmed-80701622021-04-26 Cell Force-Driven Basement Membrane Disruption Fuels EGF- and Stiffness-Induced Invasive Cell Dissemination from Benign Breast Gland Acini Gaiko-Shcherbak, Aljona Eschenbruch, Julian Kronenberg, Nils M. Teske, Michael Wolters, Benjamin Springer, Ronald Gather, Malte C. Merkel, Rudolf Hoffmann, Bernd Noetzel, Erik Int J Mol Sci Article Local basement membrane (BM) disruption marks the initial step of breast cancer invasion. The activation mechanisms of force-driven BM-weakening remain elusive. We studied the mechanical response of MCF10A-derived human breast cell acini with BMs of tuneable maturation to physical and soluble tumour-like extracellular matrix (ECM) cues. Traction force microscopy (TFM) and elastic resonator interference stress microscopy (ERISM) were used to quantify pro-invasive BM stress and protrusive forces. Substrate stiffening and mechanically impaired BM scaffolds induced the invasive transition of benign acini synergistically. Robust BM scaffolds attenuated this invasive response. Additional oncogenic EGFR activation compromised the BMs’ barrier function, fuelling invasion speed and incidence. Mechanistically, EGFR-PI3-Kinase downstream signalling modulated both MMP- and force-driven BM-weakening processes. We show that breast acini form non-proteolytic and BM-piercing filopodia for continuous matrix mechanosensation, which significantly push and pull on the BM and ECM under pro-invasive conditions. Invasion-triggered acini further shear and compress their BM by contractility-based stresses that were significantly increased (3.7-fold) compared to non-invasive conditions. Overall, the highest amplitudes of protrusive and contractile forces accompanied the highest invasiveness. This work provides a mechanistic concept for tumour ECM-induced mechanically misbalanced breast glands fuelling force-driven BM disruption. Finally, this could facilitate early cell dissemination from pre-invasive lesions to metastasize eventually. MDPI 2021-04-12 /pmc/articles/PMC8070162/ /pubmed/33921304 http://dx.doi.org/10.3390/ijms22083962 Text en © 2021 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Gaiko-Shcherbak, Aljona
Eschenbruch, Julian
Kronenberg, Nils M.
Teske, Michael
Wolters, Benjamin
Springer, Ronald
Gather, Malte C.
Merkel, Rudolf
Hoffmann, Bernd
Noetzel, Erik
Cell Force-Driven Basement Membrane Disruption Fuels EGF- and Stiffness-Induced Invasive Cell Dissemination from Benign Breast Gland Acini
title Cell Force-Driven Basement Membrane Disruption Fuels EGF- and Stiffness-Induced Invasive Cell Dissemination from Benign Breast Gland Acini
title_full Cell Force-Driven Basement Membrane Disruption Fuels EGF- and Stiffness-Induced Invasive Cell Dissemination from Benign Breast Gland Acini
title_fullStr Cell Force-Driven Basement Membrane Disruption Fuels EGF- and Stiffness-Induced Invasive Cell Dissemination from Benign Breast Gland Acini
title_full_unstemmed Cell Force-Driven Basement Membrane Disruption Fuels EGF- and Stiffness-Induced Invasive Cell Dissemination from Benign Breast Gland Acini
title_short Cell Force-Driven Basement Membrane Disruption Fuels EGF- and Stiffness-Induced Invasive Cell Dissemination from Benign Breast Gland Acini
title_sort cell force-driven basement membrane disruption fuels egf- and stiffness-induced invasive cell dissemination from benign breast gland acini
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8070162/
https://www.ncbi.nlm.nih.gov/pubmed/33921304
http://dx.doi.org/10.3390/ijms22083962
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