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Updated: Jan 19, 2026

Isolation of Mouse Kidney-Resident CD8+ T cells for Flow Cytometry Analysis
Published on: June 27, 2020
Multiparametric Flow Cytometry Analysis of Naïve, Memory, and Effector T Cells
Ankit Saxena1, Pradeep K Dagur1, Angélique Biancotto2
1Flow Cytometry Core Facility, National Heart, Lung, and Blood Institute, National Institutes of Health, Bethesda, MD, USA.
Insights
This study presents a flow cytometry method using a nine-color panel to distinguish between naïve, memory, and effector T cells. This technique is vital for immune response analysis and profiling.
Area of Science:
- Immunology
- Cell Biology
- Biotechnology
Background:
- Polychromatic flow cytometry is key for identifying cell surface markers and defining phenotypes.
- Differentiating T cell subsets (naïve, memory, effector) is crucial for understanding immune responses and profiling.
- Existing methods lack single markers to segregate T cell subsets, necessitating multi-marker approaches.
Purpose of the Study:
- To describe a flow cytometry-based method for characterizing naïve, memory, and effector T cell phenotypes.
- To verify a nine-color panel for T cell subset identification in human donors.
Main Methods:
- Utilized polychromatic flow cytometry.
- Developed and verified a nine-color panel including markers: CD3, CD4, CD8, CD45RO, CD28, CD95, CCR7, Live/Dead Aqua, and a dump channel (CD19, CD14, CD56, CD16).
Main Results:
- Successfully identified six distinct CD4 and CD8 T cell populations.
- The panel effectively distinguished between naïve and effector T cell subsets.
- Demonstrated the utility of a multi-marker panel for comprehensive T cell phenotyping.
Conclusions:
- The validated nine-color flow cytometry panel provides a robust method for dissecting T cell populations.
- This approach aids in detailed immune profiling and understanding immune responses.
- The method is applicable to human samples for immunological research.
Abstract:
Polychromatic flow cytometry enables the detection and characterization of markers which are helpful in defining phenotype of various cell subsets. Here we describe flow cytometry-based method to characterize phenotype of naïve, memory, and effector T cells. Being able to differentiate these cells is crucial in understanding immune response, and immune profiling. Naïve T cells enable the body to fight off new, unrecognized infections and diseases, and memory T cells are enriched for response to recall antigens. Furthermore, the antigen-experienced T cell populations can be broadly divided into effector and memory cell compartments, both of which are needed for sustaining a responsive immune system. Simplistically, the effector T cells require active antigenic stimulation to eliminate pathogens. On the other hand, memory T cells are described as cells which remain present in the absence of antigenic stimulation and have the capacity to expand rapidly upon secondary challenges. Recently, with the identification of central and effector memory T cell subsets, tremendous efforts have been devoted to characterize markers on the surfaces of these cells. Though, various markers have been used to identify the subsets, no single marker that segregates one subset from the other has been described. Thus, multiple markers are needed to subset the cells in order to characterize them. Here we report the verification of a nine-color panel (CD3, CD4, CD8, CD45RO, CD28, CD95, CCR7, Live/Dead Aqua, dump channel-CD19, CD14, CD56, CD16) that can successfully identify six distinct CD4 and CD8 T cell populations within the naïve and effector cell subsets from human donors.
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