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用于细胞动态刺激的光响应液晶表面形貌

Light-Responsive Liquid Crystal Surface Topographies for Dynamic Stimulation of Cells.

作者信息

Verbroekken Ruth M C, Savchak Oksana K, Alofs Thom F J, Schenning Albert P H J, Gumuscu Burcu

机构信息

Stimuli-Responsive Functional Materials and Devices, Department of Chemical Engineering and Chemistry, Eindhoven University of Technology, P.O. Box 513, Eindhoven 5600 MB, The Netherlands.

Institute for Complex Molecular Systems, Eindhoven University of Technology, P.O. Box 513, Eindhoven 5600 MB, The Netherlands.

出版信息

ACS Appl Mater Interfaces. 2025 May 14;17(19):27871-27881. doi: 10.1021/acsami.5c02526. Epub 2025 May 3.

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.

摘要

所有生物表面都具有独特的动态表面形貌。由于其多功能性,这些形貌在调节细胞行为方面起着至关重要的作用,并且经过有意设计后,可以精确地引导细胞反应。到目前为止,生物力学反应主要是在静态表面上进行研究的,而忽略了体内的动态环境,在该环境中细胞不断与变化的生物力学线索相互作用。在这项工作中,我们设计并制造了一种光响应液晶聚合物薄膜,以研究微米级动态表面形貌在生理相关条件下对细胞的影响。这种光响应液晶聚合物能够实现按需表面形貌变化,在37℃的水中可达到800nm的柱高以及具有700nm高度差的沟槽形貌。光诱导的表面形貌以与形貌相关的方式使机械敏感细胞信号传导增加,使Yes相关蛋白(YAP)向细胞核的转位增加高达2倍,以及粘着斑分布的异质性增加高达3倍。观察到柱状形貌引起较低的细胞反应,而沟槽形貌引起机械激活增加以及细胞排列,这是由于更连续且排列的物理线索增强了细胞组织。令人兴奋的是,我们观察到随后的表面形貌变化在成纤维细胞中诱导了3倍更高的YAP核转位以及5倍更高的纽蛋白异质性分布,表明多个形貌暴露循环放大了细胞反应。我们的工作强调了光响应液晶聚合物薄膜产生动态生物力学线索的潜力,这使我们能够在体外调节和引导细胞。

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