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Updated: Dec 8, 2025

Microfabricated Platforms for Mechanically Dynamic Cell Culture
Published on: December 26, 2010
Mechanical stimulation of single cells by reversible host-guest interactions in 3D microscaffolds
Marc Hippler1,2, Kai Weißenbruch2,3, Kai Richler2
1Institute of Applied Physics, Karlsruhe Institute of Technology (KIT), 76128 Karlsruhe, Germany. marc.hippler@kit.edu martin.wegener@kit.edu tanaka@uni-heidelberg.de martin.bastmeyer@kit.edu.
Abstract:
Many essential cellular processes are regulated by mechanical properties of their microenvironment. Here, we introduce stimuli-responsive composite scaffolds fabricated by three-dimensional (3D) laser lithography to simultaneously stretch large numbers of single cells in tailored 3D microenvironments. The key material is a stimuli-responsive photoresist containing cross-links formed by noncovalent, directional interactions between β-cyclodextrin (host) and adamantane (guest). This allows reversible actuation under physiological conditions by application of soluble competitive guests. Cells adhering in these scaffolds build up initial traction forces of ~80 nN. After application of an equibiaxial stretch of up to 25%, cells remodel their actin cytoskeleton, double their traction forces, and equilibrate at a new dynamic set point within 30 min. When the stretch is released, traction forces gradually decrease until the initial set point is retrieved. Pharmacological inhibition or knockout of nonmuscle myosin 2A prevents these adjustments, suggesting that cellular tensional homeostasis strongly depends on functional myosin motors.

