Reversible host-guest crosslinks in supramolecular hydrogels for on-demand mechanical stimulation of human mesenchymal stem cells

Stem cells are regulated not only by biochemical signals but also by biophysical properties of extracellular matrix (ECM). The ECM is constantly monitored and remodeled because the fate of stem cells can be misdirected when the mechanical interaction between cells and ECM is imbalanced. A well-defin...

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Hauptverfasser: Linke, Philipp (VerfasserIn) , Munding, Natalie (VerfasserIn) , Kimmle, Esther (VerfasserIn) , Kaufmann, Stefan (VerfasserIn) , Hayashi, Kentaro (VerfasserIn) , Nakahata, Masaki (VerfasserIn) , Takashima, Yoshinori (VerfasserIn) , Sano, Masaki (VerfasserIn) , Bastmeyer, Martin (VerfasserIn) , Holstein, Thomas W. (VerfasserIn) , Dietrich, Sascha (VerfasserIn) , Müller-Tidow, Carsten (VerfasserIn) , Harada, Akira (VerfasserIn) , Ho, Anthony Dick (VerfasserIn) , Tanaka, Motomu (VerfasserIn)
Dokumenttyp: Article (Journal)
Sprache:Englisch
Veröffentlicht: April 17, 2024
In: Advanced healthcare materials
Year: 2024, Jahrgang: 13, Heft: 10, Pages: 1-17
ISSN:2192-2659
DOI:10.1002/adhm.202302607
Online-Zugang:Verlag, kostenfrei, Volltext: https://doi.org/10.1002/adhm.202302607
Verlag, lizenzpflichtig, Volltext: https://www.webofscience.com/api/gateway?GWVersion=2&SrcAuth=DOISource&SrcApp=WOS&KeyAID=10.1002%2Fadhm.202302607&DestApp=DOI&SrcAppSID=EUW1ED0AB32WkJJkbUWsbqvj5Yjxz&SrcJTitle=ADVANCED+HEALTHCARE+MATERIALS&DestDOIRegistrantName=Wiley+%28John+Wiley+%26+Sons%29
Volltext
Verfasserangaben:Philipp Linke, Natalie Munding, Esther Kimmle, Stefan Kaufmann, Kentaro Hayashi, Masaki Nakahata, Yoshinori Takashima, Masaki Sano, Martin Bastmeyer, Thomas Holstein, Sascha Dietrich, Carsten Müller-Tidow, Akira Harada, Anthony D. Ho, and Motomu Tanaka

MARC

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245 1 0 |a Reversible host-guest crosslinks in supramolecular hydrogels for on-demand mechanical stimulation of human mesenchymal stem cells  |c Philipp Linke, Natalie Munding, Esther Kimmle, Stefan Kaufmann, Kentaro Hayashi, Masaki Nakahata, Yoshinori Takashima, Masaki Sano, Martin Bastmeyer, Thomas Holstein, Sascha Dietrich, Carsten Müller-Tidow, Akira Harada, Anthony D. Ho, and Motomu Tanaka 
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520 |a Stem cells are regulated not only by biochemical signals but also by biophysical properties of extracellular matrix (ECM). The ECM is constantly monitored and remodeled because the fate of stem cells can be misdirected when the mechanical interaction between cells and ECM is imbalanced. A well-defined ECM model for bone marrow-derived human mesenchymal stem cells (hMSCs) based on supramolecular hydrogels containing reversible host-guest crosslinks is fabricated. The stiffness (Young's modulus E) of the hydrogels can be switched reversibly by altering the concentration of non-cytotoxic, free guest molecules dissolved in the culture medium. Fine-adjustment of substrate stiffness enables the authors to determine the critical stiffness level E* at which hMSCs turn the mechano-sensory machinery on or off. Next, the substrate stiffness across E* is switched and the dynamic adaptation characteristics such as morphology, traction force, and YAP/TAZ signaling of hMSCs are monitored. These data demonstrate the instantaneous switching of traction force, which is followed by YAP/TAZ signaling and morphological adaptation. Periodical switching of the substrate stiffness across E* proves that frequent applications of mechanical stimuli drastically suppress hMSC proliferation. Mechanical stimulation across E* level using dynamic hydrogels is a promising strategy for the on-demand control of hMSC transcription and proliferation. Supramolecular hydrogels containing reversible host-guest crosslinks allow on-demand mechanical stimulation of human mesenchymal stem cells across the critical stiffness level E* at which the mechano-sensory signaling pathway is turned "on/off" both in situ and ex situ. The switching of the substrate stiffness across E* beyond a certain frequency drastically suppresses the stem cell proliferation without losing the multipotency.image 
650 4 |a DIFFERENTIATION 
650 4 |a DYNAMICS 
650 4 |a EXTRACELLULAR-MATRIX 
650 4 |a FORCE TRANSMISSION 
650 4 |a human mesenchymal stem cell 
650 4 |a mechanosensing 
650 4 |a MYOBLAST CELLS 
650 4 |a NUCLEAR-LOCALIZATION 
650 4 |a QUANTIFYING ADHESION 
650 4 |a stem cell proliferation 
650 4 |a STIFFNESS 
650 4 |a supramolecular hydrogel 
650 4 |a YAP 
650 4 |a YAP/TAZ 
650 4 |a YAP/TAZ signaling 
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