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Updated: Jul 6, 2025

Viral Nanoparticles for In vivo Tumor Imaging
Published on: November 16, 2012
Construction of a bacteriophage-derived vector with potential applications in targeted drug delivery and cell imaging
Mehdi Sharifi1,2, Ali Akbar Alizadeh1,3, Maryam Hamzeh Mivehroud1,4
1Biotechnology Research Center, Tabriz University of Medical Sciences, Tabriz, Iran.
Abstract:
There is a strong relationship between the dysregulation of epidermal growth factor receptor (EGFR) and the development of epithelial-derived cancers. Therefore, EGFR has usually been considered the desired target for gene therapy. Here, we propose an approach for targeting EGFR-expressing cells by phage particles capable of displaying EGF and GFP as tumor-targeting and reporting elements, respectively. For this purpose, the superfolder GFP-EGF (sfGFP-EGF) coding sequence was inserted at the N-terminus of the pIII gene in the pIT2 phagemid. The capability of the constructed phage to recognize EGFR-overexpressing cells was monitored by fluorescence microscopy, fluorescence-activated cell sorting (FACS), and cell-based ELISA experiments. FACS analysis showed a significant shift in the mean fluorescence intensity (MFI) of the cells treated with phage displaying sfGFP-EGF compared to phage displaying only sfGFP. The binding of phage displaying sfGFP-EGF to A-431 cells, monitored by fluorescence microscopy, indicated the formation of the sfGFP-EGF-EGFR complex on the surface of the treated cells. Cell-based ELISA experiments showed that phages displaying either EGF or sfGFP-EGF can specifically bind EGFR-expressing cells. The vector constructed in the current study has the potential to be engineered for gene delivery purposes as well as cell-based imaging for tumor detection.
Insights
Researchers developed phage particles to target cancer cells by displaying epidermal growth factor (EGF) and green fluorescent protein (GFP). This phage technology shows promise for targeted gene therapy and tumor imaging in EGFR-expressing cancers.
Area of Science:
- Biotechnology
- Molecular Biology
- Oncology
Background:
- Epidermal growth factor receptor (EGFR) dysregulation is linked to epithelial cancers.
- EGFR is a key target for cancer gene therapy and diagnostics.
Purpose of the Study:
- To engineer phage particles displaying EGF and GFP for targeting EGFR-expressing cells.
- To evaluate the phage's efficacy in recognizing and binding to cancer cells.
Main Methods:
- Constructed a phage display vector by inserting sfGFP-EGF into the pIII gene of the pIT2 phagemid.
- Utilized fluorescence microscopy, FACS, and cell-based ELISA to assess phage binding.
- Quantified EGFR-expressing cell targeting using mean fluorescence intensity (MFI).
Main Results:
- Phage displaying sfGFP-EGF showed significantly higher MFI in FACS analysis compared to control phage.
- Fluorescence microscopy confirmed sfGFP-EGF-EGFR complex formation on EGFR-overexpressing A-431 cells.
- Cell-based ELISA demonstrated specific binding of engineered phages to EGFR-expressing cells.
Conclusions:
- Engineered phages effectively target and bind to EGFR-expressing cells.
- This phage-based system has potential for targeted gene delivery and tumor imaging applications.
- The developed vector offers a versatile platform for cancer research and therapy.

