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Updated: May 20, 2025

High-throughput Detection Method for Influenza Virus
Published on: February 4, 2012
Visual Counting of Influenza A Viruses with Magnetic T4 Phage SPR Probe
Le He1,2, Li Liu3, Xin Zhou1,4,5
1College of Veterinary Medicine, Institute of Comparative Medicine, Yangzhou University, Yangzhou 225009, China.
Abstract:
Influenza A virus (IAV) represents a considerable threat to both animal and human health, while current detection methods encounter challenges related to the spectrum, rapidity, and sensitivity of viral identification. Herein, we describe the development of a magnetic T4 phage surface plasmon resonance probe for universal, rapid, highly sensitive, and visually detectable IAV detection under dark field microscopy (DFM). Briefly, we initially fused the Soc protein of the T4 phage with a single-chain variable fragment (scFv) antibody that exhibits broad-spectrum affinity toward the hemagglutinins of group 1 and group 2 influenza viruses, resulting in the generation of the recombinant Soc-scFv protein. Additionally, we generated another recombinant protein called AviTag-Hoc by fusing the Hoc capsid protein of T4 phage with biotin receptor peptides (AviTag). These two recombinant proteins were assembled on the head region of the T4 phage lacking both Soc and Hoc proteins. Subsequently, the resulting assembly was covalently modified with biotin using biotin-protein ligase, enabling conjugation with streptavidin-modified magnetic nanoparticles (SA@MNPs) to generate the magnetic T4 phage probe (T4@scFv@MNPs). Binding experiments demonstrated that this magnetic phage probe specifically binds to a wide range of IAVs of group 1 and group 2. Furthermore, in the presence of influenza viruses, the magnetic T4 phage probe and antibodies functionalized chip can form a sandwich complex that appears as a distinct bright golden yellow fluorescence spot visible to the naked eye under DFM. The number of viruses in samples can be automatically counted using artificial intelligence-assisted software. Assay results from both pure and real virus samples show that our magnetic phage-based DFM strategy is highly time efficient, taking approximately 30 min to complete. The method also showed excellent virus binding efficiency (>85%) in both high and low concentration samples and an extremely low detection limit (1 PFU/μL).
Insights
We developed a novel magnetic T4 phage probe for rapid, sensitive detection of Influenza A virus (IAV). This method offers visual identification and AI-assisted counting, significantly improving current diagnostic capabilities.
Area of Science:
- Biotechnology
- Nanotechnology
- Virology
Background:
- Influenza A virus (IAV) poses significant risks to animal and human health.
- Current IAV detection methods face limitations in spectrum, speed, and sensitivity.
Purpose of the Study:
- To develop a magnetic T4 phage probe for universal, rapid, sensitive, and visually detectable IAV detection.
- To overcome the limitations of existing influenza virus diagnostic techniques.
Main Methods:
- Engineered T4 phage displaying recombinant proteins (Soc-scFv and AviTag-Hoc) for broad-spectrum influenza virus binding.
- Conjugated phages with streptavidin-modified magnetic nanoparticles (SA@MNPs) to create a magnetic T4 phage probe (T4@scFv@MNPs).
- Utilized dark field microscopy (DFM) for visual detection and AI-assisted software for automated virus counting.
Main Results:
- The magnetic phage probe demonstrated specific binding to a wide range of IAVs (group 1 and 2).
- A sandwich complex formed, producing a visible golden yellow fluorescence spot under DFM.
- Achieved a rapid assay time of ~30 minutes with high virus binding efficiency (>85%) and a low detection limit (1 PFU/μL).
Conclusions:
- The developed magnetic phage-based DFM strategy provides a highly efficient and sensitive method for IAV detection.
- This approach offers a promising alternative for rapid and visual diagnosis of influenza.
- The technology has potential for broad application in infectious disease diagnostics.

