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Analyzing Platelet Subpopulations by Multi-color Flow Cytometry
Published on: June 10, 2025
Fluorochrome choices for multi-color flow cytometry
Juan Flores-Montero1, Tomas Kalina2, Alba Corral-Mateos1
1Cancer Research Center (IBMCC-CSIC/USAL-IBSAL), Cytometry Service (NUCLEUS) and Department of Medicine, University of Salamanca, Salamanca, Spain; Centro de Investigación Biomédica en Red de Cáncer (CIBER-ONC) CB16/12/00400, Instituto de Salud Carlos III, Madrid, Spain.
Insights
Selecting fluorochromes is crucial for multi-color flow cytometry antibody panels. This study presents strategies for evaluating fluorochromes to optimize panel design for diagnosing blood cancers and immune deficiencies.
Area of Science:
- Immunology
- Biotechnology
- Analytical Chemistry
Background:
- Multi-color flow cytometry requires careful fluorochrome selection for accurate leukocyte subpopulation analysis.
- The growing number of available fluorochromes necessitates robust strategies for panel design.
Purpose of the Study:
- To illustrate EuroFlow strategies for evaluating fluorochrome compatibility and guiding selection for multi-color antibody panels.
- To identify optimal fluorochrome combinations for enhanced fluorescence intensity and reduced spectral overlap.
Main Methods:
- Evaluation of 75 samples (bone marrow and blood) using EuroFlow strategies.
- Analysis of fluorochrome profiles, brightness, fluorescence overlap, stability, and conjugation reproducibility.
- Comparison of candidate fluorochromes for violet and red laser detectors.
Main Results:
- Identification of optimal fluorescence profiles for Brilliant Violet (BV)421, BV510, Allophycocyanin (APC) hilite 7 (H7), and APC C750.
- Guided selection of appropriate fluorochrome conjugates (e.g., BV605, BV650, PE CF594, AF700, APC AF700) for multi-color panels.
- Proposed sets of 8-, 10-, and 12-color fluorochrome combinations as reference frameworks.
Conclusions:
- The presented fluorochrome evaluation approach is effective for designing multi-color antibody panels.
- This strategy supports the diagnosis, classification, and monitoring of hematological malignancies and primary immunodeficiencies.
- Standardized fluorochrome combinations provide a valuable reference for initial antibody panel design.
Abstract:
Fluorochrome selection is a key step in designing multi-color antibody panels. The list of available fluorochromes is continuously growing, fitting current needs in clinical flow cytometry to simultaneously use more markers to better define multiple leukocyte subpopulations in a single tube. Several criteria guide fluorochrome selection: i) the fluorescence profiles (excitation and emission), ii) relative brightness, iii) fluorescence overlap, iv) fluorochrome stability, and v) reproducible conjugation to antibodies. Here we used 75 samples (45 bone marrow and 30 blood) to illustrate EuroFlow strategies for evaluation of compatible fluorochromes, and how the results obtained guide fluorochrome selection as a critical step in the antibody-panel building process. Our results allowed identification of optimal fluorescence profiles (e.g. higher fluorescence intensity and/or resolution with limited fluorescence overlap into neighbor channels) for brilliant violet (BV)421 and BV510 in the violet laser and allophycocyanin (APC) hilite 7 (H7) or APC C750 in the red laser vs. other candidate fluorochromes generally applied for the same detectors and here evaluated. Moreover, evaluation of the same characteristics for another group of fluorochromes (e.g. BV605, BV650, PE CF594, AF700 or APC AF700) guided selection of the most appropriate fluorochrome conjugates to be combined in a multi-color antibody panel. Albeit this is a demanding approach, it could be successfully applied for selection of fluorochrome combinations for the EuroFlow antibody panels for diagnosis, classification and monitoring of hematological malignancies and primary immunodeficiencies. Consequently, sets of 8-, 10- and 12-color fluorochrome combinations are proposed as frame of reference for initial antibody panel design.
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