Dynamic and Reversible Tuning of Hydrogel Viscoelasticity by Transient Polymer Interactions for Controlling Cell Adhesion

S Shane Scott (Department of Materials Science and Engineering McMaster University 1280 Main St. W. Hamilton Ontario L8S 4L8 Canada) M Maria Villiou (Institute for Molecular Systems Engineering and Advanced Materials (IMSEAM) Heidelberg University D‐69120 Heidelberg Germany) F Federico Colombo A Angeles De la Cruz‐García (Institute for Molecular Systems Engineering and Advanced Materials (IMSEAM) Heidelberg University D‐69120 Heidelberg Germany) L Leon Tydecks (Institute for Molecular Systems Engineering and Advanced Materials (IMSEAM) Heidelberg University D‐69120 Heidelberg Germany) L Lotta Toelke (Institute for Molecular Systems Engineering and Advanced Materials (IMSEAM) Heidelberg University D‐69120 Heidelberg Germany) K Katharina Siemsen (Institute for Materials Science Kiel University Kaiserstraße 2 24143 Kiel Germany) C Christine Selhuber‐Unkel (Institute for Molecular Systems Engineering and Advanced Materials (IMSEAM) Heidelberg University D‐69120 Heidelberg Germany)

Abstract

AbstractCells are highly responsive to changes in their mechanical environment, influencing processes such as stem cell differentiation and tumor progression. To meet the growing demand for materials used for high throughput mechanotransduction studies, simple means of dynamically adjusting the environmental viscoelasticity of cell cultures are needed. Here, a novel method is presented to dynamically and reversibly control the viscoelasticity of naturally derived polymer hydrogels through interactions with poly (ethylene glycol) (PEG). Interactions between PEG and hydrogel polymers, possibly involving hydrogen bonding, stiffen the hydrogel matrices. By dynamically changing the PEG concentration of the solution in which polymer hydrogels are incubated, their viscoelastic properties are adjusted, which in turn affects cell adhesion and cytoskeletal organization. Importantly, this effects is reversible, providing a cost‐effective and simple strategy for dynamically adjusting the viscoelasticity of polymer hydrogels. This method holds promise for applications in mechanobiology, biomedicine, and the life sciences.

Article Details

Volume / Issue Vol. 37, Issue 12
Published March 01, 2025
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (8)

S

Shane Scott

Department of Materials Science and Engineering McMaster University 1280 Main St. W. Hamilton Ontario L8S 4L8 Canada

M

Maria Villiou

Institute for Molecular Systems Engineering and Advanced Materials (IMSEAM) Heidelberg University D‐69120 Heidelberg Germany

F

Federico Colombo

A

Angeles De la Cruz‐García

Institute for Molecular Systems Engineering and Advanced Materials (IMSEAM) Heidelberg University D‐69120 Heidelberg Germany

L

Leon Tydecks

Institute for Molecular Systems Engineering and Advanced Materials (IMSEAM) Heidelberg University D‐69120 Heidelberg Germany

L

Lotta Toelke

Institute for Molecular Systems Engineering and Advanced Materials (IMSEAM) Heidelberg University D‐69120 Heidelberg Germany

K

Katharina Siemsen

Institute for Materials Science Kiel University Kaiserstraße 2 24143 Kiel Germany

C

Christine Selhuber‐Unkel

Institute for Molecular Systems Engineering and Advanced Materials (IMSEAM) Heidelberg University D‐69120 Heidelberg Germany