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Updated: Feb 15, 2026

Author Spotlight: Unveiling the Polyfunctionality and Heterogeneity in Immune Responses
Published on: March 8, 2024
A fluorescent microbead-based microfluidic immunoassay chip for immune cell cytokine secretion quantification
1Department of Mechanical and Biomedical Engineering, City University of Hong Kong, Hong Kong. rhwlam@cityu.edu.hk.
Insights
This study introduces a microfluidic device for rapid, high-sensitivity analysis of immune cell cytokines. The platform enables real-time monitoring of immune responses for improved clinical diagnosis and therapy.
Area of Science:
- Biomedical Engineering
- Immunology
- Microfluidics
Background:
- Accurate immune cell cytokine analysis is crucial for diagnosing and treating immune-related diseases.
- Existing methods like ELISA face challenges in real-time, high-throughput, and sensitive immune cell profiling.
Purpose of the Study:
- To develop a highly integrated microfluidic device for on-chip immune cell isolation, culture, stimulation, and cytokine profiling.
- To enable sensitive, dynamic, and multiplexed monitoring of immune cell cytokine secretion.
Main Methods:
- A microfluidic sensing chip integrated with cytometric fluorescent microbeads for real-time monitoring.
- On-chip Taylor dispersion-based mixing for rapid immunoassays (under 30 minutes).
- Profiling of pro-inflammatory cytokines from human peripheral blood mononuclear cells (PBMCs).
Main Results:
- Achieved high sensitivity (20 pg/ml) and low sample volume (160 nl) for cytokine detection.
- Demonstrated real-time and multiplexed monitoring of cytokine secretion dynamics.
- Successfully profiled multiple pro-inflammatory cytokines including IL-6, IL-8, and TNF.
Conclusions:
- The developed microfluidic platform offers automated, rapid, and high-throughput immunophenotyping.
- This technology can advance understanding of immune response mechanisms.
- Enables efficient assessment of immune status for clinical diagnosis and immunotherapy.
Abstract:
Quantitative and dynamic analyses of immune cell secretory cytokines are essential for precise determination and characterization of the "immune phenotype" of patients for clinical diagnosis and treatment of immune-related diseases. Although multiple methods including the enzyme-linked immunosorbent assay (ELISA) have been applied for cytokine detection, such measurements remain very challenging in real-time, high-throughput, and high-sensitivity immune cell analysis. In this paper, we report a highly integrated microfluidic device that allows for on-chip isolation, culture, and stimulation, as well as sensitive and dynamic cytokine profiling of immune cells. Such a microfluidic sensing chip is integrated with cytometric fluorescent microbeads for real-time and multiplexed monitoring of immune cell cytokine secretion dynamics, consuming a relatively small extracted sample volume (160 nl) without interrupting the immune cell culture. Furthermore, it is integrated with a Taylor dispersion-based mixing unit in each detection chamber that shortens the immunoassay period down to less than 30 minutes. We demonstrate the profiling of multiple pro-inflammatory cytokine secretions (e.g. interleukin-6, interleukin-8, and tumor necrosis factors) of human peripheral blood mononuclear cells (PBMCs) with a sensitivity of 20 pg ml-1 and a sample volume of 160 nl per detection. Further applications of this automated, rapid, and high-throughput microfluidic immunophenotyping platform can help unleash the mechanisms of systemic immune responses, and enable efficient assessments of the pathologic immune status for clinical diagnosis and immune therapy.
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