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Fully Integrated Microfluidic Platform Enabling Automated Phosphoprofiling of Macrophage Response

机译:完全集成的微流控平台,可实现对巨噬细胞反应的自动磷酸化分析

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The ability to monitor cell signaling events is crucial to the understanding of immune defense against invading pathogens. Conventional analytical techniques such as flow cytometry, microscopy, and Western blot are powerful tools for signaling studies. Nevertheless, each approach is currently stand-alone and limited by multiple time-consuming and labor-intensive steps. In addition, these techniques do not provide correlated signaling information on total intracellular protein abundance and subcellular protein localization. We report on a novel phosphoFlow Chip (pFC) that relies on monolithic microfluidic technology to rapidly conduct signaling studies. The pFC platform integrates cell stimulation and preparation, microscopy, and subsequent flow cytometry. pFC allows host-pathogen phosphoprofiling in 30 min with an order of magnitude reduction in the consumption of reagents. For pFC validation, we monitor the mitogenactivated protein kinases ERK1/2 and p38 in response to Escherichia coli lipopolysaccharide (LPS) stimulation of murine macrophage cells (RAW 264.7). pFC permits ERK1/2 phosphorylation monitoring starting at 5 s after LPS stimulation, with phosphorylation observed at 5 min. In addition, ERK1/2 phosphorylation is correlated with subsequent recruitment into the nucleus, as observed from fluorescence microscopy performed on cells upstream of flow cytometric analysis. The fully integrated cell handling has the added advantage of reduced cell aggregation and cell loss, with no detectable cell activation. The pFC approach is a step toward unified, automated infrastructure for high-throughput systems biology.
机译:监视细胞信号事件的能力对于理解针对入侵病原体的免疫防御至关重要。常规分析技术(例如流式细胞术,显微镜检查和Western印迹)是进行信号研究的强大工具。但是,每种方法目前都是独立的,并且受到多个耗时且劳动密集型步骤的限制。此外,这些技术不提供有关总细胞内蛋白质丰度和亚细胞蛋白质定位的相关信号信息。我们报告了一种新颖的phosphoFlow芯片(pFC),该芯片依靠单片微流技术快速进行信号研究。 pFC平台整合了细胞刺激和制备,显微镜检查以及后续的流式细胞仪。 pFC可以在30分钟内对宿主-病原体进行磷酸化分析,并减少了试剂的消耗量。对于pFC验证,我们监测对小鼠巨噬细胞(RAW 264.7)的大肠杆菌脂多糖(LPS)刺激的促分裂原活化蛋白激酶ERK1 / 2和p38。 pFC允许在LPS刺激后5 s开始监测ERK1 / 2磷酸化,并在5 min观察到磷酸化。另外,如在流式细胞术分析上游的细胞上进行的荧光显微镜检查所观察到的,ERK1 / 2磷酸化与随后的细胞核募集相关。完全集成的细胞处理具有减少细胞聚集和细胞损失的额外优势,并且没有可检测的细胞激活。 pFC方法是迈向用于高通量系统生物学的统一,自动化基础架构的一步。

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