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如何准备用于高维数据分析的光谱流式细胞术数据集:实用工作流程。

How to Prepare Spectral Flow Cytometry Datasets for High Dimensional Data Analysis: A Practical Workflow.

机构信息

Department of Rheumatology, Erasmus University Medical Center, Rotterdam, Netherlands.

Department of Immunology, Erasmus University Medical Center, Rotterdam, Netherlands.

出版信息

Front Immunol. 2021 Nov 19;12:768113. doi: 10.3389/fimmu.2021.768113. eCollection 2021.

Abstract

Spectral flow cytometry is an upcoming technique that allows for extensive multicolor panels, enabling simultaneous investigation of a large number of cellular parameters in a single experiment. To fully explore the resulting high-dimensional single cell datasets, high-dimensional analysis is needed, as opposed to the common practice of manual gating in conventional flow cytometry. However, preparing spectral flow cytometry data for high-dimensional analysis can be challenging, because of several technical aspects. In this article, we will give insight into the pitfalls of handling spectral flow cytometry datasets. Moreover, we will describe a workflow to properly prepare spectral flow cytometry data for high dimensional analysis and tools for integrating new data at later time points. Using healthy control data as example, we will go through the concepts of quality control, data cleaning, transformation, correcting for batch effects, subsampling, clustering and data integration. This methods article provides an R-based pipeline based on previously published packages, that are readily available to use. Application of our workflow will aid spectral flow cytometry users to obtain valid and reproducible results.

摘要

光谱流式细胞术是一种新兴的技术,它允许进行广泛的多色面板分析,能够在单次实验中同时研究大量细胞参数。为了充分探索由此产生的高维单细胞数据集,需要进行高维分析,而不是传统流式细胞术中常见的手动门控方法。然而,由于几个技术方面的原因,为高维分析准备光谱流式细胞术数据可能具有挑战性。在本文中,我们将深入了解处理光谱流式细胞术数据集的陷阱。此外,我们将描述一种用于为高维分析正确准备光谱流式细胞术数据的工作流程,以及用于在以后的时间点集成新数据的工具。我们将使用健康对照数据作为示例,逐步介绍质量控制、数据清理、转换、批处理效应校正、抽样、聚类和数据集成的概念。本文的方法提供了一个基于先前发布的软件包的基于 R 的流水线,这些软件包随时可用。我们的工作流程的应用将帮助光谱流式细胞术用户获得有效和可重复的结果。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3d81/8640183/3253f9fe4503/fimmu-12-768113-g001.jpg

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