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Published on: January 16, 2019
MetaGate: Interactive analysis of high-dimensional cytometry data with metadata integration
Eivind Heggernes Ask1,2, Astrid Tschan-Plessl1,3, Hanna Julie Hoel1
1Department of Cancer Immunology, Institute for Cancer Research, Oslo University Hospital, Oslo, Norway.
Abstract:
Flow cytometry is a powerful technology for high-throughput protein quantification at the single-cell level. Technical advances have substantially increased data complexity, but novel bioinformatical tools often show limitations in statistical testing, data sharing, cross-experiment comparability, or clinical data integration. We developed MetaGate as a platform for interactive statistical analysis and visualization of manually gated high-dimensional cytometry data with integration of metadata. MetaGate provides a data reduction algorithm based on a combinatorial gating system that produces a small, portable, and standardized data file. This is subsequently used to produce figures and statistical analyses through a fast web-based user interface. We demonstrate the utility of MetaGate through a comprehensive mass cytometry analysis of peripheral blood immune cells from 28 patients with diffuse large B cell lymphoma along with 17 healthy controls. Through MetaGate analysis, our study identifies key immune cell population changes associated with disease progression.

