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旋风:一种易于使用的管道,用于分析、评估和优化多参数流式细胞术数据。

Cyclone: an accessible pipeline to analyze, evaluate, and optimize multiparametric cytometry data.

机构信息

UCSF CoLabs, University of California San Francisco, San Francisco, CA, United States.

Department of Pathology, University of California San Francisco, San Francisco, CA, United States.

出版信息

Front Immunol. 2023 Sep 4;14:1167241. doi: 10.3389/fimmu.2023.1167241. eCollection 2023.

Abstract

In the past decade, high-dimensional single-cell technologies have revolutionized basic and translational immunology research and are now a key element of the toolbox used by scientists to study the immune system. However, analysis of the data generated by these approaches often requires clustering algorithms and dimensionality reduction representation, which are computationally intense and difficult to evaluate and optimize. Here, we present Cytometry Clustering Optimization and Evaluation (Cyclone), an analysis pipeline integrating dimensionality reduction, clustering, evaluation, and optimization of clustering resolution, and downstream visualization tools facilitating the analysis of a wide range of cytometry data. We benchmarked and validated Cyclone on mass cytometry (CyTOF), full-spectrum fluorescence-based cytometry, and multiplexed immunofluorescence (IF) in a variety of biological contexts, including infectious diseases and cancer. In each instance, Cyclone not only recapitulates gold standard immune cell identification but also enables the unsupervised identification of lymphocytes and mononuclear phagocyte subsets that are associated with distinct biological features. Altogether, the Cyclone pipeline is a versatile and accessible pipeline for performing, optimizing, and evaluating clustering on a variety of cytometry datasets, which will further power immunology research and provide a scaffold for biological discovery.

摘要

在过去的十年中,高维单细胞技术彻底改变了基础和转化免疫学研究,现在是科学家研究免疫系统的工具包中的关键元素。然而,这些方法产生的数据的分析通常需要聚类算法和降维表示,这是计算密集型的,并且难以评估和优化。在这里,我们提出了细胞术聚类优化和评估(Cyclone),这是一个分析管道,集成了降维、聚类、评估和聚类分辨率优化,以及下游可视化工具,便于分析广泛的细胞术数据。我们在多种生物背景下(包括传染病和癌症),在质谱细胞术(CyTOF)、基于全谱荧光的细胞术和多重免疫荧光(IF)上对 Cyclone 进行了基准测试和验证。在每种情况下,Cyclone 不仅重现了黄金标准的免疫细胞鉴定,还能够进行无监督的淋巴细胞和单核吞噬细胞亚群鉴定,这些亚群与不同的生物学特征相关。总的来说,Cyclone 管道是一种通用且易于使用的管道,可用于对各种细胞术数据集进行执行、优化和评估聚类,这将进一步推动免疫学研究,并为生物学发现提供一个框架。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7c73/10507399/f32cd913a25d/fimmu-14-1167241-g001.jpg

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