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Updated: Jul 9, 2025

High-Throughput Automated Multiplex Immunofluorescence Assays for Translational Research
Published on: June 10, 2025
Development of a high-throughput image cytometric screening method as a research tool for immunophenotypic
Samir Patel1, James I McDonald1, Hamza Mohammed1
1Department of Advanced Technology R&D, Revvity Health Sciences, Inc., Lawrence, MA 01843, USA.
Insights
A new image cytometry system offers a faster, high-throughput method for immunophenotyping immune cells, comparable to traditional flow cytometry. This streamlines analysis of T cells, B cells, NK cells, and monocytes in clinical research.
Area of Science:
- Immunology
- Cell Biology
- Clinical Research
Background:
- Immunophenotyping is crucial for assessing immune cell populations in clinical studies.
- Flow cytometry is the standard but requires significant user expertise and time.
- Novel methods are needed to improve efficiency in immune cell characterization.
Purpose of the Study:
- To evaluate a novel image cytometry system (Cellaca® PLX) as a rapid, high-throughput alternative for immunophenotyping.
- To compare the performance of image cytometry with traditional flow cytometry for analyzing immune cell populations.
Main Methods:
- Analyzed 46 peripheral blood mononuclear cell (PBMC) samples using two optimized immunophenotyping panels.
- Utilized the Cellaca® PLX image cytometer and an Aurora™ flow cytometer for comparative analysis.
- Generated bright field, fluorescent images, and scatter plots for immune cell characterization.
Main Results:
- Image cytometry demonstrated comparable results to flow cytometry for CD3, CD14, CD19, and CD56 cell populations.
- Average differences between the two methods were approximately 5% for key immune cell populations.
- The image cytometry system also provided direct cell concentration measurements.
Conclusions:
- The Cellaca® PLX image cytometry system is a viable research tool for streamlining immunophenotyping workflows.
- This method offers a complementary approach to flow cytometry for characterizing immune cells in clinical studies.
- Image cytometry has the potential to enhance the efficiency of analyzing patient samples.
Abstract:
Immunophenotyping has been the primary assay for characterization of immune cells from patients undergoing therapeutic treatments in clinical research, which is critical for understanding disease progression and treatment efficacy. Currently, flow cytometry has been the dominant methodology for characterizing surface marker expression for immunological research. Flow cytometry has been proven to be an effective and efficient method for immunophenotyping, however, it requires highly trained users and a large time commitment. Recently, a novel image cytometry system (Cellaca® PLX Image Cytometer, Revvity Health Sciences, Inc., Lawrence, MA) has been developed as a complementary method to flow cytometry for performing rapid and high-throughput immunophenotyping. In this work, we demonstrated an image cytometric screening method to characterize immune cell populations, streamlining the analysis of routine surface marker panels. The T cell, B cell, NK cell, and monocyte populations of 46 primary PBMC samples from subjects enrolled in autoimmune and oncological disease study cohorts were analyzed with two optimized immunophenotyping staining kits: Panel 1 (CD3, CD56, CD14) and Panel 2 (CD3, CD56, CD19). We validated the proposed image cytometry method by comparing the Cellaca® PLX and the AuroraTM flow cytometer (Cytek Biosciences, Fremont, CA). The image cytometry system was employed to generate bright field and fluorescent images, as well as scatter plots for multiple patient PBMC samples. In addition, the image cytometry method can directly determine cell concentrations for downstream assays. The results demonstrated comparable CD3, CD14, CD19, and CD56 cell populations from the primary PBMC samples, which showed an average of 5% differences between flow and image cytometry. The proposed image cytometry method provides a novel research tool to potentially streamline immunophenotyping workflow for characterizing patient samples in clinical studies.
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