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ImmunoCluster provides a computational framework for the nonspecialist to profile high-dimensional cytometry data

High-dimensional cytometry is an innovative tool for immune monitoring in health and disease, and it has provided novel insight into the underlying biology as well as biomarkers for a variety of diseases. However, the analysis of large multiparametric datasets usually requires specialist computation...

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Autores principales: Opzoomer, James W, Timms, Jessica A, Blighe, Kevin, Mourikis, Thanos P, Chapuis, Nicolas, Bekoe, Richard, Kareemaghay, Sedigeh, Nocerino, Paola, Apollonio, Benedetta, Ramsay, Alan G, Tavassoli, Mahvash, Harrison, Claire, Ciccarelli, Francesca, Parker, Peter, Fontenay, Michaela, Barber, Paul R, Arnold, James N, Kordasti, Shahram
Formato: Online Artículo Texto
Lenguaje:English
Publicado: eLife Sciences Publications, Ltd 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8112868/
https://www.ncbi.nlm.nih.gov/pubmed/33929322
http://dx.doi.org/10.7554/eLife.62915
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author Opzoomer, James W
Timms, Jessica A
Blighe, Kevin
Mourikis, Thanos P
Chapuis, Nicolas
Bekoe, Richard
Kareemaghay, Sedigeh
Nocerino, Paola
Apollonio, Benedetta
Ramsay, Alan G
Tavassoli, Mahvash
Harrison, Claire
Ciccarelli, Francesca
Parker, Peter
Fontenay, Michaela
Barber, Paul R
Arnold, James N
Kordasti, Shahram
author_facet Opzoomer, James W
Timms, Jessica A
Blighe, Kevin
Mourikis, Thanos P
Chapuis, Nicolas
Bekoe, Richard
Kareemaghay, Sedigeh
Nocerino, Paola
Apollonio, Benedetta
Ramsay, Alan G
Tavassoli, Mahvash
Harrison, Claire
Ciccarelli, Francesca
Parker, Peter
Fontenay, Michaela
Barber, Paul R
Arnold, James N
Kordasti, Shahram
author_sort Opzoomer, James W
collection PubMed
description High-dimensional cytometry is an innovative tool for immune monitoring in health and disease, and it has provided novel insight into the underlying biology as well as biomarkers for a variety of diseases. However, the analysis of large multiparametric datasets usually requires specialist computational knowledge. Here, we describe ImmunoCluster (https://github.com/kordastilab/ImmunoCluster), an R package for immune profiling cellular heterogeneity in high-dimensional liquid and imaging mass cytometry, and flow cytometry data, designed to facilitate computational analysis by a nonspecialist. The analysis framework implemented within ImmunoCluster is readily scalable to millions of cells and provides a variety of visualization and analytical approaches, as well as a rich array of plotting tools that can be tailored to users’ needs. The protocol consists of three core computational stages: (1) data import and quality control; (2) dimensionality reduction and unsupervised clustering; and (3) annotation and differential testing, all contained within an R-based open-source framework.
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spelling pubmed-81128682021-05-12 ImmunoCluster provides a computational framework for the nonspecialist to profile high-dimensional cytometry data Opzoomer, James W Timms, Jessica A Blighe, Kevin Mourikis, Thanos P Chapuis, Nicolas Bekoe, Richard Kareemaghay, Sedigeh Nocerino, Paola Apollonio, Benedetta Ramsay, Alan G Tavassoli, Mahvash Harrison, Claire Ciccarelli, Francesca Parker, Peter Fontenay, Michaela Barber, Paul R Arnold, James N Kordasti, Shahram eLife Computational and Systems Biology High-dimensional cytometry is an innovative tool for immune monitoring in health and disease, and it has provided novel insight into the underlying biology as well as biomarkers for a variety of diseases. However, the analysis of large multiparametric datasets usually requires specialist computational knowledge. Here, we describe ImmunoCluster (https://github.com/kordastilab/ImmunoCluster), an R package for immune profiling cellular heterogeneity in high-dimensional liquid and imaging mass cytometry, and flow cytometry data, designed to facilitate computational analysis by a nonspecialist. The analysis framework implemented within ImmunoCluster is readily scalable to millions of cells and provides a variety of visualization and analytical approaches, as well as a rich array of plotting tools that can be tailored to users’ needs. The protocol consists of three core computational stages: (1) data import and quality control; (2) dimensionality reduction and unsupervised clustering; and (3) annotation and differential testing, all contained within an R-based open-source framework. eLife Sciences Publications, Ltd 2021-04-30 /pmc/articles/PMC8112868/ /pubmed/33929322 http://dx.doi.org/10.7554/eLife.62915 Text en © 2021, Opzoomer et al https://creativecommons.org/licenses/by/4.0/This article is distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use and redistribution provided that the original author and source are credited.
spellingShingle Computational and Systems Biology
Opzoomer, James W
Timms, Jessica A
Blighe, Kevin
Mourikis, Thanos P
Chapuis, Nicolas
Bekoe, Richard
Kareemaghay, Sedigeh
Nocerino, Paola
Apollonio, Benedetta
Ramsay, Alan G
Tavassoli, Mahvash
Harrison, Claire
Ciccarelli, Francesca
Parker, Peter
Fontenay, Michaela
Barber, Paul R
Arnold, James N
Kordasti, Shahram
ImmunoCluster provides a computational framework for the nonspecialist to profile high-dimensional cytometry data
title ImmunoCluster provides a computational framework for the nonspecialist to profile high-dimensional cytometry data
title_full ImmunoCluster provides a computational framework for the nonspecialist to profile high-dimensional cytometry data
title_fullStr ImmunoCluster provides a computational framework for the nonspecialist to profile high-dimensional cytometry data
title_full_unstemmed ImmunoCluster provides a computational framework for the nonspecialist to profile high-dimensional cytometry data
title_short ImmunoCluster provides a computational framework for the nonspecialist to profile high-dimensional cytometry data
title_sort immunocluster provides a computational framework for the nonspecialist to profile high-dimensional cytometry data
topic Computational and Systems Biology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8112868/
https://www.ncbi.nlm.nih.gov/pubmed/33929322
http://dx.doi.org/10.7554/eLife.62915
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