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用于引导细胞运动的一维微纳图案化整合素配体表面

1D micro-nanopatterned integrin ligand surfaces for directed cell movement.

作者信息

Levario-Diaz Victoria, Alvarado Rebecca Elizabeth, Rodriguez-Quinteros Cristina Marcela, Fink Andreas, Christian Joel, Feng Wenqian, Cavalcanti-Adam Elisabetta Ada

机构信息

Department of Cellular Biophysics, Max Planck Institute for Medical Research, Heidelberg, Germany.

College of Polymer Science and Engineering, Sichuan University, Chengdu, China.

出版信息

Front Cell Dev Biol. 2022 Dec 2;10:972624. doi: 10.3389/fcell.2022.972624. eCollection 2022.

Abstract

Cell-extracellular matrix (ECM) adhesion mediated by integrins is a highly regulated process involved in many vital cellular functions such as motility, proliferation and survival. However, the influence of lateral integrin clustering in the coordination of cell front and rear dynamics during cell migration remains unresolved. For this purpose, we describe a novel protocol to fabricate 1D micro-nanopatterned stripes by integrating the block copolymer micelle nanolithography (BCMNL) technique and maskless near UV lithography-based photopatterning. The photopatterned 10 μm-wide stripes consist of a quasi-perfect hexagonal arrangement of gold nanoparticles, decorated with the RGD (arginine-glycine-aspartate) motif for single integrin heterodimer binding, and placed at a distance of 50, 80, and 100 nm to regulate integrin clustering and focal adhesion dynamics. By employing time-lapse microscopy and immunostaining, we show that the displacement and speed of fibroblasts changes according to the nanoscale spacing of adhesion sites. We found that as the lateral spacing of adhesive peptides increased, fibroblast morphology was more elongated. This was accompanied by a decreased formation of mature focal adhesions and stress fibers, which increased cell displacement and speed. These results provide new insights into the migratory behavior of fibroblasts in 1D environments and our protocol offers a new platform to design and manufacture confined environments in 1D for integrin-mediated cell adhesion.

摘要

由整合素介导的细胞-细胞外基质(ECM)黏附是一个高度受调控的过程,涉及许多重要的细胞功能,如运动、增殖和存活。然而,在细胞迁移过程中,横向整合素聚集对细胞前后端动力学协调的影响仍未得到解决。为此,我们描述了一种通过整合嵌段共聚物胶束纳米光刻(BCMNL)技术和基于无掩膜近紫外光刻的光图案化来制造一维微纳图案化条纹的新方案。光图案化的10μm宽条纹由金纳米颗粒的准完美六边形排列组成,装饰有用于单个整合素异二聚体结合的RGD(精氨酸-甘氨酸-天冬氨酸)基序,并以50、80和100nm的距离放置,以调节整合素聚集和粘着斑动力学。通过延时显微镜和免疫染色,我们表明成纤维细胞的位移和速度根据黏附位点的纳米级间距而变化。我们发现,随着黏附肽横向间距的增加,成纤维细胞形态更加细长。这伴随着成熟粘着斑和应力纤维形成的减少,从而增加了细胞位移和速度。这些结果为一维环境中成纤维细胞的迁移行为提供了新的见解,我们的方案提供了一个新的平台,用于设计和制造一维受限环境以实现整合素介导的细胞黏附。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b266/9755580/052266be9c64/fcell-10-972624-g001.jpg

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