CytoBackBone: an algorithm for merging of phenotypic information from different cytometric profiles

Author:

Leite Pereira Adrien1,Lambotte Olivier123,Le Grand Roger1,Cosma Antonio1,Tchitchek Nicolas1ORCID

Affiliation:

1. Immunology of Viral Infections and Autoimmune Diseases, IDMIT Infrastructure, CEA—Université Paris Sud 11—INSERM U1184, Fontenay-aux-Roses, France

2. Service de Médecine Interne-Immunologie Clinique, APHP, Hôpitaux Universitaires Paris Sud, Le Kremin-Bicêtre, France

3. Université Paris Sud, UMR-1184, Le Kremlin-Bicêtre, France

Abstract

Abstract Motivation Flow and mass cytometry are experimental techniques used to measure the level of proteins expressed by cells at the single-cell resolution. Several algorithms were developed in flow cytometry to increase the number of simultaneously measurable markers. These approaches aim to combine phenotypic information of different cytometric profiles obtained from different cytometry panels. Results We present here a new algorithm, called CytoBackBone, which can merge phenotypic information from different cytometric profiles. This algorithm is based on nearest-neighbor imputation, but introduces the notion of acceptable and non-ambiguous nearest neighbors. We used mass cytometry data to illustrate the merging of cytometric profiles obtained by the CytoBackBone algorithm. Availability and implementation CytoBackBone is implemented in R and the source code is available at https://github.com/tchitchek-lab/CytoBackBone. Supplementary information Supplementary data are available at Bioinformatics online.

Funder

IDMIT

ANR

ANRS

France Recherche Nord & Sud Sida-HIV Hépatites

Publisher

Oxford University Press (OUP)

Subject

Computational Mathematics,Computational Theory and Mathematics,Computer Science Applications,Molecular Biology,Biochemistry,Statistics and Probability

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