VirtualCytometry: a webserver for evaluating immune cell differentiation using single-cell RNA sequencing data
Kyungsoo Kim1, Sunmo Yang1, Sang-Jun Ha2
1Department of Biotechnology, Yonsei University, Seoul 03722, Korea.
Insights
VirtualCytometry analyzes single-cell RNA sequencing data to reveal immune cell differentiation pathways. This computational pipeline identifies key molecular drivers of immune cell states, aiding in understanding T-cell exhaustion and dendritic cell activation.
Area of Science:
- Immunology
- Computational Biology
- Genomics
Background:
- Immune cell differentiation is regulated by complex signaling pathways and transcription factors.
- Traditional methods like flow cytometry have limitations in comprehensively analyzing multiple proteins simultaneously.
- Single-cell RNA sequencing (scRNA-seq) offers a powerful approach for genome-wide gene expression analysis in individual cells.
Purpose of the Study:
- To present VirtualCytometry, a web-based computational pipeline for immune cell differentiation analysis using scRNA-seq data.
- To enable the identification of cellular subsets and functional states based on gene expression patterns.
- To provide a resource for discovering signaling molecules and transcription factors involved in immune cell transitions.
Main Methods:
- Utilized cell-to-cell variation in gene expression from scRNA-seq data.
- Developed a computational pipeline to identify cellular subsets representing different differentiation states.
- Applied marker gene expression analysis to characterize these subsets.
Main Results:
- VirtualCytometry successfully identifies distinct cellular subsets and functional states during immune cell differentiation.
- Case studies demonstrated its utility in uncovering factors related to human T-cell exhaustion and dendritic cell activation.
- The pipeline leverages a large repository of over 226 scRNA-seq datasets for broad applicability.
Conclusions:
- VirtualCytometry provides a versatile computational framework for dissecting immune cell differentiation.
- It enhances the understanding of molecular programs governing immune cell functional states.
- The resource supports research into immune responses in both normal and disease contexts.
Motivation:
The immune system has diverse types of cells that are differentiated or activated via various signaling pathways and transcriptional regulation upon challenging conditions. Immunophenotyping by flow and mass cytometry are the major approaches for identifying key signaling molecules and transcription factors directing the transition between the functional states of immune cells. However, few proteins can be evaluated by flow cytometry in a single experiment, preventing researchers from obtaining a comprehensive picture of the molecular programs involved in immune cell differentiation. Recent advances in single-cell RNA sequencing (scRNA-seq) have enabled unbiased genome-wide quantification of gene expression in individual cells on a large scale, providing a new and versatile analytical pipeline for studying immune cell differentiation.
Results:
We present VirtualCytometry, a web-based computational pipeline for evaluating immune cell differentiation by exploiting cell-to-cell variation in gene expression with scRNA-seq data. Differentiating cells often show a continuous spectrum of cellular states rather than distinct populations. VirtualCytometry enables the identification of cellular subsets for different functional states of differentiation based on the expression of marker genes. Case studies have highlighted the usefulness of this subset analysis strategy for discovering signaling molecules and transcription factors for human T-cell exhaustion, a state of T-cell dysfunction, in tumor and mouse dendritic cells activated by pathogens. With more than 226 scRNA-seq datasets precompiled from public repositories covering diverse mouse and human immune cell types in normal and disease tissues, VirtualCytometry is a useful resource for the molecular dissection of immune cell differentiation.
Availability And Implementation:
www.grnpedia.org/cytometry.
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