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Silicon Microchips for Manipulating Cell-cell Interaction

机译:用于操纵细胞间相互作用的硅微芯片

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摘要

The role of the cellular microenvironment is recognized as crucial in determining cell fate and function in virtually all mammalian tissues from development to malignant transformation. In particular, interaction with neighboring stroma has been implicated in a plethora of biological phenomena; however, conventional techniques limit the ability to interrogate the spatial and dynamic elements of such interactions.In Micromechanical Reconfigurable Culture (RC), we employ a micromachined silicon substrate with moving parts to dynamically control cell-cell interactions through mechanical repositioning. Previously, this method has been applied to investigate intercellular communication in co-cultures of hepatocytes and non-parenchymal cells, demonstrating time-dependent interactions and a limited range for soluble signaling 1.Here, we describe in detail the preparation and use of the RC system. We begin by demonstrating the handling of the device parts using tweezers, including actuating between the gap and contact configurations (cell populations separated by a narrow 80-µm gap, or in direct intimate contact). Next, we detail the process of preparing the substrates for culture, and the multi-step cell seeding process required for obtaining confluent cell monolayers. Using live microscopy, we then illustrate real-time manipulation of cells between the different possible experimental configurations. Finally, we demonstrate the steps required in order to regenerate the device surface for reuse: toluene and piranha cleaning, polystyrene coating, and oxygen plasma treatment.
机译:细胞微环境的作用被认为对于确定从发育到恶性转化的几乎所有哺乳动物组织的细胞命运和功能至关重要。特别地,与邻近基质的相互作用已经涉及多种生物学现象。但是,传统技术限制了这种交互作用的空间和动态元素的探究能力。在微机械可重构培养(RC)中,我们采用带有移动部件的微加工硅基板,通过机械重新定位来动态控制细胞间的相互作用。以前,这种方法已被用于研究肝细胞和非实质细胞共培养中的细胞间通讯,证明了时间依赖性相互作用和可溶性信号 1 的有限范围。在此,我们详细描述RC系统的准备和使用。我们首先演示使用镊子处理设备部件的过程,包括在间隙和接触配置(通过80 µm狭窄间隙或直接紧密接触分隔的细胞群)之间致动。接下来,我们详细介绍了制备用于培养的底物的过程,以及获得融合细胞单层所需的多步细胞接种过程。然后,使用实时显微镜,我们说明了在不同可能的实验配置之间对细胞的实时操纵。最后,我们演示了再生设备表面以重复使用所需的步骤:甲苯和食人鱼清洁,聚苯乙烯涂层以及氧等离子体处理。

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