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Updated: May 20, 2026

Microfluidic Approach to Resolve Simultaneous and Sequential Cytokine Secretion of Individual Polyfunctional Cells
Published on: March 8, 2024
Simultaneous detection of cell-secreted TNF-α and IFN-γ using micropatterned aptamer-modified electrodes
Ying Liu1, Timothy Kwa, Alexander Revzin
1Department of Biomedical Engineering, University of California, Davis, Davis, CA 95616, United States.
Insights
This study presents a novel biosensor for detecting immune cell cytokines like interferon-gamma and tumor necrosis factor-alpha. The device uses aptamer-functionalized electrodes for multiplexed cytokine analysis, aiding infectious disease diagnostics.
Area of Science:
- Biomedical Engineering
- Immunology
- Analytical Chemistry
Background:
- Cytokine detection, such as interferon-gamma (IFN-γ) and tumor necrosis factor-alpha (TNF-α), is crucial for diagnosing infectious diseases like tuberculosis.
- Existing methods for cytokine detection can be complex and may not offer real-time, multiplexed analysis.
Purpose of the Study:
- To develop a microfluidic biosensing platform for the simultaneous detection of immune-cell-produced cytokines.
- To create a system capable of analyzing the quantity and rate of cytokine release from immune cells.
Main Methods:
- Development of micropatterned electrodes functionalized with anti-IFN-γ DNA aptamers and anti-TNF-α RNA aptamers.
- Assembly of thiolated aptamers on gold electrodes, incorporating methylene blue for electrochemical signal transduction.
- Integration of electrode arrays into microfluidic devices for cell capture and cytokine detection using square wave voltammetry (SWV).
Main Results:
- Successful assembly and functionalization of aptamers on individually addressable electrodes for specific cytokine binding.
- Demonstration of multiplexed detection of IFN-γ and TNF-α secreted by immune cells within a microfluidic device.
- Quantification of cytokine release kinetics from primary T cells and a monocyte cell line.
Conclusions:
- The developed biosensing platform enables multiplexed electrochemical detection of immune cell cytokines.
- This technology holds potential for correlating cytokine release dynamics with the diagnosis and treatment of infectious diseases.
- Further development could expand the platform for detecting a broader range of cytokines.
Abstract:
Cellular production of such cytokines as interferon (IFN)-γ and tumor necrosis factor (TNF)-α is used to determine disease-specific immune responses and may be used to diagnose infectious diseases such as tuberculosis. In this paper, we describe the development of micropatterned electrodes functionalized with electroactive aptamers for multiplexed detection of immune-cell-produced cytokines. A sequence of electrode deprotection and aptamer incubation steps were used to assemble anti-IFN-γ DNA aptamers and anti-TNF-α RNA aptamers on individually addressable half-ring electrodes. Aptamer molecules were thiolated for assembly on gold and were functionalized with methylene blue redox reporter for electrochemical signal transduction. Specificity of individual sensors to the correct cytokine species was confirmed by exposure to recombinant cytokines. For cell detection experiments, electrode arrays were integrated into microfluidic devices and incubated with immune cells. Design of the surface was such that a small group of ~400 cells attached in the circular adhesion sites surrounded by half-ring electrodes sensing IFN-γ and TNF-α. The microdevice consisted of two parallel microfluidic channels, each channel containing four cell capture/sensing sites. Upon mitogenic activation, secreted IFN-γ and TNF-α molecules were monitored by performing square wave voltammetry (SWV) at different time points at individually addressable electrodes. This biosensing platform was used to analyze the quantity and rate of cytokine release from primary T cells and a monocyte cell line. Upon further development of this platform may be enhanced to enable detection of larger number of cytokines and used to correlate the levels and dynamics of cytokine release in immune cells to diagnosis and treatment of infectious diseases.

