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Using a Microfluidics Device for Mechanical Stimulation and High Resolution Imaging of C. elegans

机译:使用微流控装置的线虫的机械刺激和高分辨率成像。

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摘要

One central goal of mechanobiology is to understand the reciprocal effect of mechanical stress on proteins and cells. Despite its importance, the influence of mechanical stress on cellular function is still poorly understood. In part, this knowledge gap exists because few tools enable simultaneous deformation of tissue and cells, imaging of cellular activity in live animals, and efficient restriction of motility in otherwise highly mobile model organisms, such as the nematode Caenorhabditis elegans. The small size of C. elegans makes them an excellent match to microfluidics-based research devices, and solutions for immobilization have been presented using microfluidic devices. Although these devices allow for high-resolution imaging, the animal is fully encased in polydimethylsiloxane (PDMS) and glass, limiting physical access for delivery of mechanical force or electrophysiological recordings. Recently, we created a device that integrates pneumatic actuators with a trapping design that is compatible with high-resolution fluorescence microscopy. The actuation channel is separated from the worm-trapping channel by a thin PDMS diaphragm. This diaphragm is deflected into the side of a worm by applying pressure from an external source. The device can target individual mechanosensitive neurons. The activation of these neurons is imaged at high-resolution with genetically-encoded calcium indicators. This article presents the general method using C. elegans strains expressing calcium-sensitive activity indicator (GCaMP6s) in their touch receptor neurons (TRNs). The method, however, is not limited to TRNs nor to calcium sensors as a probe, but can be expanded to other mechanically-sensitive cells or sensors.
机译:机械生物学的一个主要目标是了解机械应力对蛋白质和细胞的相互影响。尽管它的重要性,机械应力对细胞功能的影响仍然知之甚少。在某种程度上,存在这种知识鸿沟是因为很少有工具能够同时使组织和细胞变形,对活体动物的细胞活动进行成像,以及有效限制活动性模型生物(例如线虫秀丽隐杆线虫)中的运动。秀丽隐杆线虫的小尺寸使其非常适合基于微流体的研究设备,并且已经提出了使用微流体设备的固定化解决方案。尽管这些设备可进行高分辨率成像,但动物被完全包裹在聚二甲基硅氧烷(PDMS)和玻璃中,从而限制了物理位置来传递机械力或电生理记录。最近,我们创建了一种将气动执行器与诱集设计集成在一起的设备,该诱集设计与高分辨率荧光显微镜兼容。致动通道通过薄的PDMS隔膜与蠕虫捕获通道隔开。通过施加来自外部源的压力,该隔膜会偏转到蜗杆的侧面。该设备可以针对单个机械敏感神经元。这些神经元的激活与基因编码的钙指示剂高分辨率成像。本文介绍了使用线虫菌株在其触摸受体神经元(TRNs)中表达钙敏感活性指示剂(GCaMP6s)的一般方法。然而,该方法不仅限于TRN,也不限于将钙传感器用作探针,而是可以扩展到其他机械敏感的细胞或传感器。

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