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A Photoactivatable Nanopatterned Substrate for Analyzing Collective Cell Migration with Precisely Tuned Cell-Extracellular Matrix Ligand Interactions

机译:光活化的纳米图案底物用于分析具有精确调节的细胞-细胞外基质配体相互作用的集体细胞迁移。

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摘要

Collective cell migration is involved in many biological and pathological processes. Various factors have been shown to regulate the decision to migrate collectively or individually, but the impact of cell-extracellular matrix (ECM) interactions is still debated. Here, we developed a method for analyzing collective cell migration by precisely tuning the interactions between cells and ECM ligands. Gold nanoparticles are arrayed on a glass substrate with a defined nanometer spacing by block copolymer micellar nanolithography (BCML), and photocleavable poly(ethylene glycol) (Mw  =  12 kDa, PEG12K) and a cyclic RGD peptide, as an ECM ligand, are immobilized on this substrate. The remaining glass regions are passivated with PEG2K-silane to make cells interact with the surface via the nanoperiodically presented cyclic RGD ligands upon the photocleavage of PEG12K. On this nanostructured substrate, HeLa cells are first patterned in photo-illuminated regions, and cell migration is induced by a second photocleavage of the surrounding PEG12K. The HeLa cells gradually lose their cell-cell contacts and become disconnected on the nanopatterned substrate with 10-nm particles and 57-nm spacing, in contrast to their behavior on the homogenous substrate. Interestingly, the relationship between the observed migration collectivity and the cell-ECM ligand interactions is the opposite of that expected based on conventional soft matter models. It is likely that the reduced phosphorylation at tyrosine-861 of focal adhesion kinase (FAK) on the nanopatterned surface is responsible for this unique migration behavior. These results demonstrate the usefulness of the presented method in understanding the process of determining collective and non-collective migration features in defined micro- and nano-environments and resolving the crosstalk between cell-cell and cell-ECM adhesions.
机译:集体细胞迁移涉及许多生物学和病理学过程。已经显示出各种因素可调节集体或个体迁移的决定,但是细胞-细胞外基质(ECM)相互作用的影响仍在争论中。在这里,我们开发了一种通过精确调节细胞与ECM配体之间的相互作用来分析集体细胞迁移的方法。通过嵌段共聚物胶束纳米平版印刷术(BCML)将金纳米颗粒排列在玻璃基板上,并具有确定的纳米间距,并固定可光裂解的聚乙二醇(Mw = 12 kDa,PEG12K)和环状RGD肽作为ECM配体在此基板上。其余的玻璃区域用PEG2K-硅烷钝化,以使细胞在PEG12K光解后通过纳米周期呈现的环状RGD配体与表面相互作用。在此纳米结构化的基质上,首先在光照射区域对HeLa细胞进行构图,然后通过周围PEG12K的第二次光裂解诱导细胞迁移。与它们在均质基材上的行为相反,HeLa细胞逐渐失去它们与细胞之间的接触,并在具有10 nm颗粒和57 nm间距的纳米图案化基材上断开连接。有趣的是,观察到的迁移集体性与细胞-ECM配体相互作用之间的关系与基于常规软物质模型所预期的相反。纳米图案化表面上的粘着斑激酶(FAK)在酪氨酸861处的磷酸化降低可能是造成这种独特迁移行为的原因。这些结果证明了所提出的方法在了解确定确定的微环境和纳米环境中的集体和非集体迁移特征以及解决细胞-细胞和细胞-ECM粘附之间的串扰的过程中的有用性。

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