细胞-细胞分离装置:一种测量细胞间分离力的新方法。

IF 1.7 4区 工程技术 Q3 INSTRUMENTS & INSTRUMENTATION
Julia Eckert, Volha Matylitskaya, Stephan Kasemann, Stefan Partel, Thomas Schmidt
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引用次数: 0

摘要

无论是在生物的分子还是细胞尺度上,细胞-细胞粘附都适应于细胞的静态环境和邻近细胞之间的动态相互作用所产生的外部机械信号。细胞-细胞粘附需要抵抗分离力,以确保生物体的完整性和内部组织。在过去,已经开发了各种技术来表征体外分子和细胞的粘附特性,并了解细胞如何感知和探测其环境。原子力显微镜和双吸管抽吸是研究细胞-细胞粘附分离力的常用方法,细胞主要以悬浮形式存在。然而,对于贴壁细胞和适应环境的细胞,细胞间的粘附力是如何形成的尚不清楚。在这里,我们设计了细胞-细胞分离装置(CC-SD),这是一种微结构的衬底,为测量细胞间力和细胞对衬底的外部应力提供了一步。该设备基于微柱阵列,最初是为细胞牵引力测量而开发的。我们设计了PDMS微柱块,细胞可以附着在上面,并且可以通过缝隙相互连接。控制整个基板的拉伸改变了块之间的距离,增加了间隙的大小。这使我们能够将应变应用于细胞-细胞接触,最终导致细胞-细胞粘附脱离,这是通过柱挠度来测量的。CC-SD可使块之间的间隙增加2.4倍,这足以分离具有完全发育的f -肌动蛋白网络的底物附着细胞。同时测量柱挠度使我们能够解决细胞响应细胞间应变施加。因此,CC-SD开辟了分析细胞间分离力的可能性,并阐明了细胞-细胞粘附在组织发育动态过程中抗破裂的稳健性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Cell-cell separation device: A new approach to measuring intercellular detachment forces.

Whether at the molecular or cellular scale in organisms, cell-cell adhesion adapts to external mechanical cues arising from the static environment of cells and from dynamic interactions between neighboring cells. Cell-cell adhesion needs to resist detachment forces to secure the integrity and internal organization of organisms. In the past, various techniques have been developed to characterize adhesion properties of molecules and cells in vitro and to understand how cells sense and probe their environment. Atomic force microscopy and dual-pipette aspiration, where cells are mainly present in suspension, are common methods for studying detachment forces of cell-cell adhesion. How cell-cell adhesion forces are developed for adherent and environment-adapted cells, however, is less clear. Here, we designed the Cell-Cell Separation Device (CC-SD), a microstructured substrate that provides a step toward measuring both the intercellular forces and external stresses of cells toward the substrate. The device is based on micropillar arrays, originally developed for cell traction-force measurements. We designed PDMS micropillar-blocks, to which cells could adhere and be able to connect to each other across the gap. Controlled stretching of the whole substrate changed the distance between blocks and increased the gap size. This allowed us to apply strains to cell-cell contacts, eventually leading to cell-cell adhesion detachment, which was measured by pillar deflections. The CC-SD provided an increase in the gap between the blocks of up to 2.4-fold, which was sufficient to separate substrate-attached cells with a fully developed F-actin network. Simultaneously measured pillar deflections allowed us to address cellular response to the intercellular strain applied. The CC-SD thus opens up possibilities for the analysis of intercellular detachment forces and sheds light on the robustness of cell-cell adhesion against rupture in dynamic processes during tissue development.

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来源期刊
Review of Scientific Instruments
Review of Scientific Instruments 工程技术-物理:应用
CiteScore
3.00
自引率
12.50%
发文量
758
审稿时长
2.6 months
期刊介绍: Review of Scientific Instruments, is committed to the publication of advances in scientific instruments, apparatuses, and techniques. RSI seeks to meet the needs of engineers and scientists in physics, chemistry, and the life sciences.
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