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Abstract

Since the onset of the HIV epidemic, assessing CD4 + T-cells has become a routine procedure for evaluating immune deficiency, with flow cytometry established as the gold standard. Over time, various strategies and platforms have been introduced to improve CD4 + cell enumeration, aiming to enhance the performance of diagnostic devices and bring the service closer to patients. These advancements are particularly critical for low-resource settings and point-of-care applications, where the excellent performance of flow cytometry is hindered by its unsuitability in such environments. This work presents an innovative electrochemical microfluidic device that, with further development, could be applied for HIV management in low resource settings. The setup integrates an electrochemical sensor within a PDMS microfluidic structure, allowing for on-chip electrode functionalization and cell detection. Using electrochemical impedance spectroscopy, the biosensor demonstrates a linear detection range from 1.25 × 10 5 to 2 × 10 6 cells/mL, with a detection limit of 1.41 × 10 5 cells/mL for CD4 + cells isolated from blood samples, aligning with clinical ranges for both healthy and HIV + patients. The biosensor shows specificity towards CD4 + cells with negligible response to monocytes, neutrophils, and bovine serum albumin. Its integration with a microfluidic chip for sensor fabrication and cell detection, compact size, minimal manual handling, ease of fabrication, electrochemical detection capability, and potential for multiplexing together with the detection range make the device particularly advantageous for use in low-resource settings, standing out among other devices described in the literature. This study also investigates the integration of a microfluidic Dean Flow Fractionation (DFF) chip for cell separation. (Figure presented.)

Original languageEnglish
Article number63
Number of pages13
JournalMicrosystems & Nanoengineering
Volume11
Issue number1
Early online date9 Apr 2025
DOIs
Publication statusPublished - 9 Apr 2025

Acknowledgements

We thank Michael Linham for his help with designing and fabricating sensor holders and microfluidics, Siva Sivaraya for his help with sensor microfabrication, John Campbell, Harrison Collier-Bain, and Michael Zachariadis for their help with flow cytometry experiments.

Funding

K.B. was funded by a Whorrod PhD Studentship, University of Bath. K.B. acknowledges travel funding from Santander postgraduate mobility awards and Department of Electronic & Electrical Engineering, University of Bath. R.S. was funded through UK Engineering and Physical Sciences Research Council grant number EP/V040189/1.

FundersFunder number
University of Bath
Engineering and Physical Sciences Research CouncilEP/V040189/1

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 3 - Good Health and Well-being
    SDG 3 Good Health and Well-being

Keywords

  • CD4 T cells
  • HIV
  • blood samples
  • Electrochemical impedance spectroscopy
  • Microfluidics
  • Dean flow fractionation

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