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Microstencil-based spatial immobilization of individual cells for single cell analysis

机译:基于微模板的单个细胞空间固定化用于单细胞分析

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摘要

Cells exhibit biologically heterogeneous phenotypes, particularly in pathogenic states. To study cell behavior at the single cell level, a variety of micropatterning techniques have been proposed that allow the spatial organization of cells with great control over cell volume, morphology, and intercellular interactions. Among these strategies, microstencil patterning has traditionally been eschewed due to fragility of membranes and lack of control over cell configurations within patterns. Here, we present a simple and reproducible strategy to create robust microstencils and achieve consistent and efficient cell patterns requiring less than 4  l of cell solution. Polydimethylsiloxane microstencils fabricated with this technique can be used dozens of times over the course of several months with minimal wear or degradation. Characterization of pattern size, cell suspension density, and droplet volume allows on-demand configurations of singlets, doublets, triplets, or multiple cells per individual space. In addition, a novel technique to suppress evaporative convection provides precise and repeatable results, with a twofold increase in patterning efficacy. Selective dual surface modification to create hydrophilic islands on a hydrophobic substrate facilitates a significantly longer and healthier lifespan of cells without crossover of pattern boundaries. The ability to pattern individual cells with or without an extracellular matrix substrate and to control the magnitude of cell-cell contact as well as spread area provides a powerful approach to monitoring cell functions such as proliferation and intercellular signaling.
机译:细胞表现出生物学上的异质表型,特别是在致病状态下。为了研究单细胞水平的细胞行为,已经提出了多种微模式技术,这些技术允许细胞的空间组织对细胞的体积,形态和细胞间的相互作用有很好的控制。在这些策略中,由于膜的易碎性和对图案中细胞构型的缺乏控制,传统上避免使用微模板图案。在这里,我们提出一种简单且可重现的策略,以创建坚固的微模板并获得所需的细胞溶液少于4 µl的一致且有效的细胞模式。用这种技术制造的聚二甲基硅氧烷微模板可以在几个月的时间内使用数十次,且磨损或降解最小。图案大小,细胞悬浮液密度和液滴体积的表征允许按需配置单峰,双峰,三重峰或每个单个空间中的多个细胞。此外,一种抑制蒸发对流的新技术可提供精确且可重复的结果,同时使图案形成效率提高两倍。选择性的双重表面修饰可在疏水性基材上形成亲水岛,从而可显着延长细胞的使用寿命,使其更健康,而不会跨越图案边界。可以在带有或不带有细胞外基质的情况下对单个细胞进行构图并控制细胞与细胞之间的接触以及扩散区域的大小,为监测细胞功能(如增殖和细胞间信号传导)提供了一种有力的方法。

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