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Updated: Jun 22, 2026

A GPC3-targeting Bispecific Antibody, GPC3-S-Fab, with Potent Cytotoxicity
Published on: July 12, 2018
Engineering and characterization of a bispecific HER2 x EGFR-binding affibody molecule
Mikaela Friedman1, Sara Lindström, Lina Ekerljung
1Division of Molecular Biotechnology, Royal Institute of Technology (KTH), AlbaNova University Center, SE-106 91 Stockholm, Sweden.
Abstract:
HER2 (human epidermal-growth-factor receptor-2; ErbB2) and EGFR (epidermal-growth-factor receptor) are overexpressed in various forms of cancer, and the co-expression of both HER2 and EGFR has been reported in a number of studies. The simultaneous targeting of HER2 and EGFR has been discussed as a strategy with which to potentially increase efficiency and selectivity in molecular imaging and therapy of certain cancers. In an effort to generate a molecule capable of bispecifically targeting HER2 and EGFR, a gene fragment encoding a bivalent HER2-binding affibody molecule was genetically fused in-frame with a bivalent EGFR-binding affibody molecule via a (G4S)3 [(Gly4-Ser)3]-encoding gene fragment. The encoded 30 kDa affibody construct (ZHER2)2-(G4S)3-(ZEGFR)2, with potential for bs (bispecific) binding to HER2 and EGFR, was expressed in Escherichia coli and characterized in terms of its binding capabilities. The retained ability to bind HER2 and EGFR separately was demonstrated using both biosensor technology and flow-cytometric analysis, the latter using HER2- and EGFR-overexpressing cells. Furthermore, simultaneous binding to HER2 and EGFR was demonstrated in: (i) a sandwich format employing real-time biospecific interaction analysis where the bs affibody molecule bound immobilized EGFR and soluble HER2; (ii) immunofluorescence microscopy, where the bs affibody molecule bound EGFR-overexpressing cells and soluble HER2; and (iii) a cell-cell interaction analysis where the bs affibody molecule bound HER2-overexpressing SKBR-3 cells and EGFR-overexpressing A-431 cells. This is, to our knowledge, the first reported bs affinity protein with potential ability for the simultaneous targeting of HER2 and EGFR. The potential future use of this and similar constructs, capable of bs targeting of receptors to increase the efficacy and selectivity in imaging and therapy, is discussed.
Insights
Researchers developed a novel bispecific affibody molecule for simultaneous targeting of HER2 and EGFR, crucial in cancer therapy and imaging. This engineered protein shows potential for enhanced cancer treatment strategies.
Area of Science:
- Biotechnology
- Molecular Biology
- Oncology
Background:
- HER2 (human epidermal-growth-factor receptor-2) and EGFR (epidermal-growth-factor receptor) are frequently overexpressed in various cancers.
- Co-expression of HER2 and EGFR presents a therapeutic challenge and opportunity for simultaneous targeting.
- Increasing efficiency and selectivity in cancer imaging and therapy is a key goal.
Purpose of the Study:
- To engineer a novel bispecific affibody molecule capable of simultaneously targeting both HER2 and EGFR.
- To characterize the binding capabilities of the engineered bispecific affibody construct.
- To evaluate the potential of this construct for cancer imaging and therapy.
Main Methods:
- Genetic fusion of bivalent HER2-binding and EGFR-binding affibody molecules via a (Gly4-Ser)3 linker.
- Expression of the 30 kDa affibody construct (ZHER2)2-(G4S)3-(ZEGFR)2 in Escherichia coli.
- Binding analysis using biosensor technology, flow cytometry, immunofluorescence microscopy, and cell-cell interaction assays.
Main Results:
- The bispecific affibody construct demonstrated retained binding to both HER2 and EGFR individually.
- Simultaneous binding to HER2 and EGFR was confirmed through various assays, including sandwich format and microscopy.
- The study reports the first bispecific affibody protein with potential for simultaneous HER2 and EGFR targeting.
Conclusions:
- The developed bispecific affibody molecule effectively targets both HER2 and EGFR simultaneously.
- This novel construct holds significant potential for improving the efficacy and selectivity of cancer imaging and therapy.
- Further development of such bispecific targeting agents could advance precision oncology treatments.

