Abstract
All biological surfaces possess distinct dynamic surface topographies. Due to their versatility, these topographies play a crucial role in modulating cell behavior and, when intentionally designed, can precisely guide cellular responses. So far, biomechanical responses have predominantly been studied on static surfaces, overlooking the dynamic environment in the body, where cells constantly interact with shifting biomechanical cues. In this work, we designed and fabricated a light-responsive liquid crystal polymer film to study the effect of micrometer-scale, dynamic surface topographies on cells under physiologically relevant conditions. The light-responsive liquid crystal polymers enable on-demand surface topographical changes, reaching pillar heights of 800 nm and grooved topographies with 700 nm height differences at 37 °C in water. The light-induced surface topographies increased mechanosensitive cell signaling by up to 2-fold higher yes-associated protein (YAP) translocation to the nucleus, as well as up to 3-fold more heterogeneity in distribution of focal adhesions, in a topography-related manner. The pillared topography was seen to cause a lower cellular response, while the grooved topography caused an increased mechanical activation, as well as cell alignment due to a more continuous and aligned physical cue that enhances cell organization. Excitingly, we observed that subsequent surface topography changes induced a 3-fold higher YAP nuclear translocation in fibroblast cells, as well as a 5-fold higher vinculin heterogeneity distribution, indicating that multiple cycles of topography exposure ampliated the cell response. Our work emphasizes the potential of light-responsive liquid crystal polymer films generating dynamic biomechanical cues that allow us to modulate and steer cells in vitro.
| Original language | English |
|---|---|
| Pages (from-to) | 27871–27881 |
| Number of pages | 11 |
| Journal | ACS Applied Materials and Interfaces |
| Volume | 17 |
| Issue number | 19 |
| DOIs | |
| Publication status | Published - 14 May 2025 |
Bibliographical note
Publisher Copyright:© 2025 The Authors. Published by American Chemical Society.
Funding
The authors would like to thank Yuxin You for AFM measurements, and Nikita Konshin, Phani Sudarsanam, Josue\u0301 Mun\u0303oz, Emy Curvers, Jan de Boer, SFD, and BDL members for their valuable suggestions and discussions. The authors would like to acknowledge the support from the Dutch Ministry of Education, Culture, and Science (Gravitation Program 024.005.020-Interactive Polymer Materials IPM), the ICMS immunoengineering program, and the TU/e. The authors acknowledge the support of the Institute of Complex Molecular Systems (ICMS) and Eindhoven Artificial Intelligence Institute (EAISI) at Eindhoven University of Technology.
Keywords
- fibroblast cells
- light-responsive liquid crystal polymers
- materiobiology
- mechanical cell-stimulation
- reconfigurable dynamic topographies
- surface actuation
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