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Design and evaluation of a microfluidic system for inhibition studies of yeast cell signaling

机译:酵母细胞信号抑制研究的微流控系统的设计和评估

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In cell signaling, different perturbations lead to different responses and using traditional biological techniques that result in averaged data may obscure important cell-to-cell variations. The aim of this study was to develop and evaluate a four-inlet microfluidic system that enables single-cell analysis by investigating the effect on Hog1 localization post a selective Hog1 inhibitor treatment during osmotic stress.Optical tweezers was used to position yeast cells in an array of desired size and density inside the microfluidic system. By changing the flow rates through the inlet channels, controlled and rapid introduction of two different perturbations over the cell array was enabled. The placement of the cells was determined by diffusion rates flow simulations. The system was evaluated by monitoring the subcellular localization of a fluorescently tagged kinase of the yeast “High Osmolarity Glycerol” (HOG) pathway, Hog1-GFP. By sequential treatment of the yeast cells with a selective Hog1 kinase inhibitor and sorbitol, the subcellular localization of Hog1-GFP was analysed on a single-cell level.The results showed impaired Hog1-GFP nuclear localization, providing evidence of a congenial design. The setup made it possible to remove and add an agent within 2 seconds, which is valuable for investigating the dynamic signal transduction pathways and cannot be done using traditional methods. We are confident that the features of the four-inlet microfluidic system will be a valuable tool and hence contribute significantly to unravel the mechanisms of the HOG pathway and similar dynamic signal transduction pathways.© (2012) COPYRIGHT Society of Photo-Optical Instrumentation Engineers (SPIE). Downloading of the abstract is permitted for personal use only.
机译:在细胞信号传导中,不同的扰动导致不同的响应,并且使用导致平均数据的传统生物学技术可能会掩盖重要的细胞间差异。这项研究的目的是开发和评估一种四入口微流控系统,该系统可通过研究渗透压期间选择性Hog1抑制剂处理后对Hog1定位的影响来进行单细胞分析。使用光学镊子将酵母细胞放置在阵列中微流体系统内部所需的尺寸和密度。通过改变通过入口通道的流速,可以在细胞阵列上控制和快速引入两种不同的扰动。通过扩散速率流动模拟确定细胞的位置。通过监测酵母“高渗透压甘油”(HOG)途径Hog1-GFP的荧光标记激酶的亚细胞定位来评估该系统。通过使用选择性Hog1激酶抑制剂和山梨醇对酵母细胞进行顺序处理,在单细胞水平上分析了Hog1-GFP的亚细胞定位,结果表明Hog1-GFP核定位受损,提供了同类设计的证据。该设置使得可以在2秒钟内删除和添加代理,这对于研究动态信号转导途径非常有价值,并且无法使用传统方法完成。我们相信,四入口微流控系统的功能将是一种有价值的工具,因此将为阐明HOG通路和类似的动态信号转导通路的机理做出重要贡献。©(2012)COPYRIGHT光电仪器工程师协会( SPIE)。摘要的下载仅允许个人使用。

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