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Bitte verwenden Sie diesen Link, wenn Sie dieses Dokument zitieren oder verlinken wollen: https://nbn-resolving.org/urn:nbn:de:gbv:9-opus-83126

Cell‐surface contacts determine volume and mechanical properties of human embryonic kidney 293 T cells

  • Alterations in the organization of the cytoskeleton precede the escape of adherent cells from the framework of cell–cell and cell‐matrix interactions into suspension. With cytoskeletal dynamics being linked to cell mechanical properties, many studies elucidated this relationship under either native adherent or suspended conditions. In contrast, tethered cells that mimic the transition between both states have not been the focus of recent research. Using human embryonic kidney 293 T cells we investigated all three conditions in the light of alterations in cellular shape, volume, as well as mechanical properties and relate these findings to the level, structure, and intracellular localization of filamentous actin (F‐actin). For cells adhered to a substrate, our data shows that seeding density affects cell size but does not alter their elastic properties. Removing surface contacts leads to cell stiffening that is accompanied by changes in cell shape, and a reduction in cellular volume but no alterations in F‐actin density. Instead, we observe changes in the organization of F‐actin indicated by the appearance of blebs in the semi‐adherent state. In summary, our work reveals an interplay between molecular and mechanical alterations when cells detach from a surface that is mainly dominated by cell morphology.

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Metadaten
Author: Venkata A. S. Dabbiru, Emmanuel Manu, Doreen Biedenweg, Peter Nestler, Ricardo H. Pires, Oliver Otto
URN:urn:nbn:de:gbv:9-opus-83126
DOI:https://doi.org/10.1002/cm.21735
ISSN:1949-3592
Parent Title (English):Cytoskeleton
Publisher:Wiley
Place of publication:Hoboken, NJ
Document Type:Article
Language:English
Date of Publication (online):2022/10/30
Date of first Publication:2023/02/21
Release Date:2024/02/26
Tag:F‐actin; atomic force microscopy; cell mechanics; cell‐surface contacts; real‐time deformability cytometry
Volume:80
Issue:1-2
First Page:21
Last Page:33
Faculties:Mathematisch-Naturwissenschaftliche Fakultät / Institut für Physik
Collections:weitere DFG-förderfähige Artikel
Licence (German):License LogoCreative Commons - Namensnennung-Nicht kommerziell 4.0 International