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Novel data analysis method for multicolour flow cytometry links variability of multiple markers on single cells to a clinical phenotype

机译:用于多色流式细胞术的新型数据分析方法将单个细胞上多个标记物的变异性与临床表型联系起来

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摘要

Multicolour Flow Cytometry (MFC) produces multidimensional analytical data on the quantitative expression of multiple markers on single cells. This data contains invaluable biomedical information on (1) the marker expressions per cell, (2) the variation in such expression across cells, (3) the variability of cell marker expression across samples that (4) may vary systematically between cells collected from donors and patients. Current conventional and even advanced data analysis methods for MFC data explore only a subset of these levels. The Discriminant Analysis of MultiAspect CYtometry (DAMACY) we present here provides a comprehensive view on health and disease responses by integrating all four levels. We validate DAMACY by using three distinct datasets: in vivo response of neutrophils evoked by systemic endotoxin challenge, the clonal response of leukocytes in bone marrow of acute myeloid leukaemia (AML) patients, and the complex immune response in blood of asthmatics. DAMACY provided good accuracy 91–100% in the discrimination between health and disease, on par with literature values. Additionally, the method provides figures that give insight into the marker expression and cell variability for more in-depth interpretation, that can benefit both physicians and biomedical researchers to better diagnose and monitor diseases that are reflected by changes in blood leukocytes.
机译:多色流式细胞仪(MFC)可以生成有关单个细胞上多个标记物定量表达的多维分析数据。该数据包含以下宝贵的生物医学信息:(1)每个细胞的标志物表达,(2)跨细胞表达的变化,(3)跨样品的细胞标志物表达的变异性,(4)从供体收集的细胞之间系统地变化和病人。 MFC数据的当前常规甚至高级数据分析方法仅探索这些级别的一部分。我们在此介绍的多方面细胞计数法(DAMACY)判别分析通过综合所有四个级别,提供了有关健康和疾病反应的全面视图。我们通过使用三个不同的数据集来验证DAMACY:系统性内毒素激发引起的嗜中性粒细胞的体内反应,急性髓细胞性白血病(AML)患者骨髓中白细胞的克隆反应以及哮喘患者血液中的复杂免疫反应。 DAMACY在区分健康和疾病方面提供了91–100%的良好准确性,与文献价值相当。此外,该方法还提供了可深入了解标记物表达和细胞变异性的数据,以便进行更深入的解释,这可以使医生和生物医学研究人员受益,从而更好地诊断和监测血液白细胞变化所反映的疾病。

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