Cargando…

Migration through physical constraints is enabled by MAPK-induced cell softening via actin cytoskeleton re-organization

Cancer cells are softer than the normal cells, and metastatic cells are even softer. These changes in biomechanical properties contribute to cancer progression by facilitating cell movement through physically constraining environments. To identify properties that enabled passage through physical con...

Descripción completa

Detalles Bibliográficos
Autores principales: Rudzka, Dominika A., Spennati, Giulia, McGarry, David J., Chim, Ya-Hua, Neilson, Matthew, Ptak, Aleksandra, Munro, June, Kalna, Gabriela, Hedley, Ann, Moralli, Daniela, Green, Catherine, Mason, Susan, Blyth, Karen, Mullin, Margaret, Yin, Huabing, Olson, Michael F.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Company of Biologists Ltd 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6589089/
https://www.ncbi.nlm.nih.gov/pubmed/31152052
http://dx.doi.org/10.1242/jcs.224071
_version_ 1783429340049965056
author Rudzka, Dominika A.
Spennati, Giulia
McGarry, David J.
Chim, Ya-Hua
Neilson, Matthew
Ptak, Aleksandra
Munro, June
Kalna, Gabriela
Hedley, Ann
Moralli, Daniela
Green, Catherine
Mason, Susan
Blyth, Karen
Mullin, Margaret
Yin, Huabing
Olson, Michael F.
author_facet Rudzka, Dominika A.
Spennati, Giulia
McGarry, David J.
Chim, Ya-Hua
Neilson, Matthew
Ptak, Aleksandra
Munro, June
Kalna, Gabriela
Hedley, Ann
Moralli, Daniela
Green, Catherine
Mason, Susan
Blyth, Karen
Mullin, Margaret
Yin, Huabing
Olson, Michael F.
author_sort Rudzka, Dominika A.
collection PubMed
description Cancer cells are softer than the normal cells, and metastatic cells are even softer. These changes in biomechanical properties contribute to cancer progression by facilitating cell movement through physically constraining environments. To identify properties that enabled passage through physical constraints, cells that were more efficient at moving through narrow membrane micropores were selected from established cell lines. By examining micropore-selected human MDA MB 231 breast cancer and MDA MB 435 melanoma cancer cells, membrane fluidity and nuclear elasticity were excluded as primary contributors. Instead, reduced actin cytoskeleton anisotropy, focal adhesion density and cell stiffness were characteristics associated with efficient passage through constraints. By comparing transcriptomic profiles between the parental and selected populations, increased Ras/MAPK signalling was linked with cytoskeleton rearrangements and cell softening. MEK inhibitor treatment reversed the transcriptional, cytoskeleton, focal adhesion and elasticity changes. Conversely, expression of oncogenic KRas in parental MDA MB 231 cells, or oncogenic BRaf in parental MDA MB 435 cells, significantly reduced cell stiffness. These results reveal that MAPK signalling, in addition to tumour cell proliferation, has a significant role in regulating cell biomechanics. This article has an associated First Person interview with the first author of the paper.
format Online
Article
Text
id pubmed-6589089
institution National Center for Biotechnology Information
language English
publishDate 2019
publisher The Company of Biologists Ltd
record_format MEDLINE/PubMed
spelling pubmed-65890892019-07-16 Migration through physical constraints is enabled by MAPK-induced cell softening via actin cytoskeleton re-organization Rudzka, Dominika A. Spennati, Giulia McGarry, David J. Chim, Ya-Hua Neilson, Matthew Ptak, Aleksandra Munro, June Kalna, Gabriela Hedley, Ann Moralli, Daniela Green, Catherine Mason, Susan Blyth, Karen Mullin, Margaret Yin, Huabing Olson, Michael F. J Cell Sci Research Article Cancer cells are softer than the normal cells, and metastatic cells are even softer. These changes in biomechanical properties contribute to cancer progression by facilitating cell movement through physically constraining environments. To identify properties that enabled passage through physical constraints, cells that were more efficient at moving through narrow membrane micropores were selected from established cell lines. By examining micropore-selected human MDA MB 231 breast cancer and MDA MB 435 melanoma cancer cells, membrane fluidity and nuclear elasticity were excluded as primary contributors. Instead, reduced actin cytoskeleton anisotropy, focal adhesion density and cell stiffness were characteristics associated with efficient passage through constraints. By comparing transcriptomic profiles between the parental and selected populations, increased Ras/MAPK signalling was linked with cytoskeleton rearrangements and cell softening. MEK inhibitor treatment reversed the transcriptional, cytoskeleton, focal adhesion and elasticity changes. Conversely, expression of oncogenic KRas in parental MDA MB 231 cells, or oncogenic BRaf in parental MDA MB 435 cells, significantly reduced cell stiffness. These results reveal that MAPK signalling, in addition to tumour cell proliferation, has a significant role in regulating cell biomechanics. This article has an associated First Person interview with the first author of the paper. The Company of Biologists Ltd 2019-06-01 2019-05-31 /pmc/articles/PMC6589089/ /pubmed/31152052 http://dx.doi.org/10.1242/jcs.224071 Text en © 2019. Published by The Company of Biologists Ltd http://creativecommons.org/licenses/by/4.0This is an Open Access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0), which permits unrestricted use, distribution and reproduction in any medium provided that the original work is properly attributed.
spellingShingle Research Article
Rudzka, Dominika A.
Spennati, Giulia
McGarry, David J.
Chim, Ya-Hua
Neilson, Matthew
Ptak, Aleksandra
Munro, June
Kalna, Gabriela
Hedley, Ann
Moralli, Daniela
Green, Catherine
Mason, Susan
Blyth, Karen
Mullin, Margaret
Yin, Huabing
Olson, Michael F.
Migration through physical constraints is enabled by MAPK-induced cell softening via actin cytoskeleton re-organization
title Migration through physical constraints is enabled by MAPK-induced cell softening via actin cytoskeleton re-organization
title_full Migration through physical constraints is enabled by MAPK-induced cell softening via actin cytoskeleton re-organization
title_fullStr Migration through physical constraints is enabled by MAPK-induced cell softening via actin cytoskeleton re-organization
title_full_unstemmed Migration through physical constraints is enabled by MAPK-induced cell softening via actin cytoskeleton re-organization
title_short Migration through physical constraints is enabled by MAPK-induced cell softening via actin cytoskeleton re-organization
title_sort migration through physical constraints is enabled by mapk-induced cell softening via actin cytoskeleton re-organization
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6589089/
https://www.ncbi.nlm.nih.gov/pubmed/31152052
http://dx.doi.org/10.1242/jcs.224071
work_keys_str_mv AT rudzkadominikaa migrationthroughphysicalconstraintsisenabledbymapkinducedcellsofteningviaactincytoskeletonreorganization
AT spennatigiulia migrationthroughphysicalconstraintsisenabledbymapkinducedcellsofteningviaactincytoskeletonreorganization
AT mcgarrydavidj migrationthroughphysicalconstraintsisenabledbymapkinducedcellsofteningviaactincytoskeletonreorganization
AT chimyahua migrationthroughphysicalconstraintsisenabledbymapkinducedcellsofteningviaactincytoskeletonreorganization
AT neilsonmatthew migrationthroughphysicalconstraintsisenabledbymapkinducedcellsofteningviaactincytoskeletonreorganization
AT ptakaleksandra migrationthroughphysicalconstraintsisenabledbymapkinducedcellsofteningviaactincytoskeletonreorganization
AT munrojune migrationthroughphysicalconstraintsisenabledbymapkinducedcellsofteningviaactincytoskeletonreorganization
AT kalnagabriela migrationthroughphysicalconstraintsisenabledbymapkinducedcellsofteningviaactincytoskeletonreorganization
AT hedleyann migrationthroughphysicalconstraintsisenabledbymapkinducedcellsofteningviaactincytoskeletonreorganization
AT morallidaniela migrationthroughphysicalconstraintsisenabledbymapkinducedcellsofteningviaactincytoskeletonreorganization
AT greencatherine migrationthroughphysicalconstraintsisenabledbymapkinducedcellsofteningviaactincytoskeletonreorganization
AT masonsusan migrationthroughphysicalconstraintsisenabledbymapkinducedcellsofteningviaactincytoskeletonreorganization
AT blythkaren migrationthroughphysicalconstraintsisenabledbymapkinducedcellsofteningviaactincytoskeletonreorganization
AT mullinmargaret migrationthroughphysicalconstraintsisenabledbymapkinducedcellsofteningviaactincytoskeletonreorganization
AT yinhuabing migrationthroughphysicalconstraintsisenabledbymapkinducedcellsofteningviaactincytoskeletonreorganization
AT olsonmichaelf migrationthroughphysicalconstraintsisenabledbymapkinducedcellsofteningviaactincytoskeletonreorganization