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Fluidic Logic Used in a Systems Approach to Enable Integrated Single-Cell Functional Analysis

机译:用于系统方法的流体逻辑,以实现集成的单细胞功能分析

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The study of single cells has evolved over the past several years to include expression and genomic analysis of an increasing number of single cells. Several studies have demonstrated wide-spread variation and heterogeneity within cell populations of similar phenotype. While the characterization of these populations will likely set the foundation for our understanding of genomic- and expression-based diversity, it will not be able to link the functional differences of a single cell to its underlying genomic structure and activity. Currently, it is difficult to perturb single cells in a controlled environment, monitor and measure the response due to perturbation, and link these response measurements to downstream genomic and transcriptomic analysis. In order to address this challenge, we developed a platform to integrate and miniaturize many of the experimental steps required to study single-cell function. The heart of this platform is an elastomer-based Integrated Fluidic Circuit (IFC) that uses fluidic logic to select and sequester specific single cells based on a phenotypic trait for downstream experimentation. Experiments with sequestered cells that have been performed include on-chip culture, exposure to a variety of stimulants, and post-exposure image-based response analysis, followed by preparation of the mRNA transcriptome for massively parallel sequencing analysis. The flexible system embodies experimental design and execution that enable routine functional studies of single cells.
机译:在过去的几年中,对单细胞的研究不断发展,包括对越来越多的单细胞进行表达和基因组分析。多项研究表明,在具有相似表型的细胞群体中,存在广泛的变异和异质性。这些人群的特征可能会为我们对基于基因组和基于表达的多样性的理解奠定基础,但它将无法将单个细胞的功能差异与其潜在的基因组结构和活性联系起来。当前,难以在受控环境中干扰单个细胞,监测和测量由于干扰引起的反应,并将这些反应测量值与下游基因组和转录组学分析联系起来。为了应对这一挑战,我们开发了一个平台来整合和小型化研究单细胞功能所需的许多实验步骤。该平台的核心是基于弹性体的集成流体回路(IFC),该回路使用流体逻辑根据表型特征选择和隔离特定的单个细胞,用于下游实验。已进行的隔离细胞实验包括片上培养,暴露于多种刺激物和基于曝光后图像的响应分析,然后准备用于大规模平行测序分析的mRNA转录组。灵活的系统体现了实验设计和执行能力,可以对单个细胞进行常规功能研究。

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