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Single-cell Analysis of Immunophenotype and Cytokine Production in Peripheral Whole Blood via Mass Cytometry
Published on: June 26, 2018
Identification of Vaccine-Altered Circulating B Cell Phenotypes Using Mass Cytometry and a Two-Step Clustering
David Pejoski1, Nicolas Tchitchek1, André Rodriguez Pozo1
1University of Paris South, U1184, 92265 Fontenay-aux-Roses, France; French Atomic Energy and Alternative Energies Commission, Organization for the Direction of Fundamental Research/Institute of Emerging Diseases and Innovative Therapies, U1184, Immunology of Viral Infections and Autoimmune Diseases, Infectious Disease Models and Innovative Therapies Infrastructure, 92265 Fontenay-aux-Roses, France; INSERM, U1184, 94276 Le Kremlin-Bicêtre, France; Vaccine Research Institute, Henri Mondor Hospital, 94010 Créteil, France;
Insights
Vaccination significantly alters B cell subsets, revealing complex phenotypes and novel biomarkers. This study uses mass cytometry to track B cell responses, aiding vaccine evaluation and discovery.
Area of Science:
- Immunology
- Vaccinology
- Biotechnology
Background:
- Understanding B cell subset dynamics is crucial for effective vaccine development.
- Mass cytometry (CyTOF) enables high-dimensional analysis of cellular phenotypes.
Purpose of the Study:
- To characterize B cell subset changes following vaccination using CyTOF.
- To identify novel B cell phenotypes and potential biomarkers for vaccine response.
Main Methods:
- Designed a CyTOF antibody panel for B cell analysis in cynomolgus macaques.
- Applied SPADE and hierarchical clustering to analyze CyTOF data.
- Correlated B cell subset expansion/contraction with antibody titers.
Main Results:
- Identified significant vaccine-induced changes in circulating B cell proportions.
- Characterized novel B cell subphenotypes with unique marker coexpression patterns.
- Observed a memory B cell subset expansion/contraction correlating with anti-vaccine antibody titers.
Conclusions:
- CyTOF and clustering analysis provide in-depth characterization of B cell responses to vaccination.
- This approach is suitable for longitudinal studies and discovery of B cell biomarkers.
- Findings enhance understanding of vaccine-induced immune modulation.
Abstract:
Broadening our understanding of the abundance and phenotype of B cell subsets that are induced or perturbed by exogenous Ags will improve the vaccine evaluation process. Mass cytometry (CyTOF) is being used to increase the number of markers that can be investigated in single cells, and therefore characterize cell phenotype at an unprecedented level. We designed a panel of CyTOF Abs to compare the B cell response in cynomolgus macaques at baseline, and 8 and 28 d after the second homologous immunization with modified vaccinia virus Ankara. The spanning-tree progression analysis of density-normalized events (SPADE) algorithm was used to identify clusters of CD20(+) B cells. Our data revealed the phenotypic complexity and diversity of circulating B cells at steady-state and significant vaccine-induced changes in the proportions of some B cell clusters. All SPADE clusters, including those altered quantitatively by vaccination, were characterized phenotypically and compared using double hierarchical clustering. Vaccine-altered clusters composed of previously described subsets including CD27(hi)CD21(lo) activated memory and CD27(+)CD21(+) resting memory B cells, and subphenotypes with novel patterns of marker coexpression. The expansion, followed by the contraction, of a single memory B cell SPADE cluster was positively correlated with serum anti-vaccine Ab titers. Similar results were generated by a different algorithm, automatic classification of cellular expression by nonlinear stochastic embedding. In conclusion, we present an in-depth characterization of B cell subphenotypes and proportions, before and after vaccination, using a two-step clustering analysis of CyTOF data, which is suitable for longitudinal studies and B cell subsets and biomarkers discovery.
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