Literature DB >> 25576660

Automated flow cytometric analysis across large numbers of samples and cell types.

Xiaoyi Chen1, Milena Hasan2, Valentina Libri2, Alejandra Urrutia3, Benoît Beitz2, Vincent Rouilly4, Darragh Duffy3, Étienne Patin5, Bernard Chalmond6, Lars Rogge7, Lluis Quintana-Murci8, Matthew L Albert9, Benno Schwikowski10.   

Abstract

Multi-parametric flow cytometry is a key technology for characterization of immune cell phenotypes. However, robust high-dimensional post-analytic strategies for automated data analysis in large numbers of donors are still lacking. Here, we report a computational pipeline, called FlowGM, which minimizes operator input, is insensitive to compensation settings, and can be adapted to different analytic panels. A Gaussian Mixture Model (GMM)-based approach was utilized for initial clustering, with the number of clusters determined using Bayesian Information Criterion. Meta-clustering in a reference donor permitted automated identification of 24 cell types across four panels. Cluster labels were integrated into FCS files, thus permitting comparisons to manual gating. Cell numbers and coefficient of variation (CV) were similar between FlowGM and conventional gating for lymphocyte populations, but notably FlowGM provided improved discrimination of "hard-to-gate" monocyte and dendritic cell (DC) subsets. FlowGM thus provides rapid high-dimensional analysis of cell phenotypes and is amenable to cohort studies.
Copyright © 2015. Published by Elsevier Inc.

Entities:  

Keywords:  Algorithms;; Automation;; Flow cytometry;; Multidimensional analysis;; Population-based cohort;; Standardization;

Mesh:

Year:  2015        PMID: 25576660     DOI: 10.1016/j.clim.2014.12.009

Source DB:  PubMed          Journal:  Clin Immunol        ISSN: 1521-6616            Impact factor:   3.969


  8 in total

1.  In vivo cell characteristic extraction and identification by photoacoustic flow cytography.

Authors:  Guo He; Dong Xu; Huan Qin; Sihua Yang; Da Xing
Journal:  Biomed Opt Express       Date:  2015-09-03       Impact factor: 3.732

2.  A standardized immune phenotyping and automated data analysis platform for multicenter biomarker studies.

Authors:  Sabine Ivison; Mehrnoush Malek; Rosa V Garcia; Raewyn Broady; Anne Halpin; Manon Richaud; Rollin F Brant; Szu-I Wang; Mathieu Goupil; Qingdong Guan; Peter Ashton; Jason Warren; Amr Rajab; Simon Urschel; Deepali Kumar; Mathias Streitz; Birgit Sawitzki; Stephan Schlickeiser; Janetta J Bijl; Donna A Wall; Jean-Sebastien Delisle; Lori J West; Ryan R Brinkman; Megan K Levings
Journal:  JCI Insight       Date:  2018-12-06

3.  Methods for discovery and characterization of cell subsets in high dimensional mass cytometry data.

Authors:  Kirsten E Diggins; P Brent Ferrell; Jonathan M Irish
Journal:  Methods       Date:  2015-05-13       Impact factor: 3.608

Review 4.  Computational flow cytometry: helping to make sense of high-dimensional immunology data.

Authors:  Yvan Saeys; Sofie Van Gassen; Bart N Lambrecht
Journal:  Nat Rev Immunol       Date:  2016-06-20       Impact factor: 53.106

5.  BayesFlow: latent modeling of flow cytometry cell populations.

Authors:  Kerstin Johnsson; Jonas Wallin; Magnus Fontes
Journal:  BMC Bioinformatics       Date:  2016-01-12       Impact factor: 3.169

6.  Fly-QMA: Automated analysis of mosaic imaginal discs in Drosophila.

Authors:  Sebastian M Bernasek; Nicolás Peláez; Richard W Carthew; Neda Bagheri; Luís A N Amaral
Journal:  PLoS Comput Biol       Date:  2020-03-03       Impact factor: 4.475

7.  Implementing flowDensity for Automated Analysis of Bone Marrow Lymphocyte Population.

Authors:  Ghazaleh Eskandari; Sishir Subedi; Paul Christensen; Randall J Olsen; Youli Zu; Scott W Long
Journal:  J Pathol Inform       Date:  2021-12-09

Review 8.  An Introduction to Automated Flow Cytometry Gating Tools and Their Implementation.

Authors:  Chris P Verschoor; Alina Lelic; Jonathan L Bramson; Dawn M E Bowdish
Journal:  Front Immunol       Date:  2015-07-27       Impact factor: 7.561

  8 in total

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