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FIND: A new software tool and development platform for enhanced multicolor flow analysis

机译:查找:用于增强多色流分析的新软件工具和开发平台

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摘要

BackgroundFlow Cytometry is a process by which cells, and other microscopic particles, can be identified, counted, and sorted mechanically through the use of hydrodynamic pressure and laser-activated fluorescence labeling. As immunostained cells pass individually through the flow chamber of the instrument, laser pulses cause fluorescence emissions that are recorded digitally for later analysis as multidimensional vectors. Current, widely adopted analysis software limits users to manual separation of events based on viewing two or three simultaneous dimensions. While this may be adequate for experiments using four or fewer colors, advances have lead to laser flow cytometers capable of recording 20 different colors simultaneously. In addition, mass-spectrometry based machines capable of recording at least 100 separate channels are being developed. Analysis of such high-dimensional data by visual exploration alone can be error-prone and susceptible to unnecessary bias. Fortunately, the field of Data Mining provides many tools for automated group classification of multi-dimensional data, and many algorithms have been adapted or created for flow cytometry. However, the majority of this research has not been made available to users through analysis software packages and, as such, are not in wide use.
机译:背景流式细胞术是通过使用流体动力压力和激光激活的荧光标记可以机械地识别,计数和分类细胞和其他微观颗粒的过程。当免疫染色的细胞分别通过仪器的流通腔时,激光脉冲会产生荧光发射,将其数字记录下来,以作为多维矢量进行后续分析。当前,被广泛采用的分析软件限制用户基于查看两个或三个同时维度来手动分离事件。虽然这对于使用四种或四种以下颜色的实验可能已经足够,但先进技术已使激光流式细胞仪能够同时记录20种不同的颜色。另外,正在开发能够记录至少100个独立通道的基于质谱的机器。仅凭视觉探索对此类高维数据进行分析就容易出错,并且容易产生不必要的偏差。幸运的是,数据挖掘领域为多维数据的自动组分类提供了许多工具,并且为流式细胞术改编或创建了许多算法。但是,大多数研究尚未通过分析软件包提供给用户,因此并未得到广泛使用。

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