Literature DB >> 25573116

FlowSOM: Using self-organizing maps for visualization and interpretation of cytometry data.

Sofie Van Gassen1,2,3, Britt Callebaut1, Mary J Van Helden2,3, Bart N Lambrecht2,3, Piet Demeester1, Tom Dhaene1, Yvan Saeys2,3.   

Abstract

The number of markers measured in both flow and mass cytometry keeps increasing steadily. Although this provides a wealth of information, it becomes infeasible to analyze these datasets manually. When using 2D scatter plots, the number of possible plots increases exponentially with the number of markers and therefore, relevant information that is present in the data might be missed. In this article, we introduce a new visualization technique, called FlowSOM, which analyzes Flow or mass cytometry data using a Self-Organizing Map. Using a two-level clustering and star charts, our algorithm helps to obtain a clear overview of how all markers are behaving on all cells, and to detect subsets that might be missed otherwise. R code is available at https://github.com/SofieVG/FlowSOM and will be made available at Bioconductor.
© 2015 International Society for Advancement of Cytometry.

Keywords:  Key terms: polychromatic flow cytometry; bioinformatics; exploratory data analysis; mass cytometry; self-organizing map; visualization method

Mesh:

Substances:

Year:  2015        PMID: 25573116     DOI: 10.1002/cyto.a.22625

Source DB:  PubMed          Journal:  Cytometry A        ISSN: 1552-4922            Impact factor:   4.355


  422 in total

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