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Updated: May 19, 2026

A GPC3-targeting Bispecific Antibody, GPC3-S-Fab, with Potent Cytotoxicity
Published on: July 12, 2018
Generation and evaluation of bispecific affibody molecules for simultaneous targeting of EGFR and HER2
Lina Ekerljung1, Helena Wållberg, Azita Sohrabian
1Department of Radiology, Oncology and Radiation Sciences, Uppsala University, Sweden.
Abstract:
Coexpression of several ErbB receptors has been found in many cancers and has been linked with increased aggressiveness of tumors and a worse patient prognosis. This makes the simultaneous targeting of two surface receptors by using bispecific constructs an increasingly appreciated strategy. Here, we have generated six such bispecific targeting proteins, each comprising two monomeric affibody molecules with specific binding to either of the two human epidermal growth factor receptors, EGFR and HER2, respectively. The bispecific constructs were designed with (i) alternative positioning (N- or C-terminal) of the different affibody molecules, (ii) two alternative peptide linkers (Gly(4)Ser)(3) or (Ser(4)Gly)(3), and (iii) affibody molecules with different affinity (nanomolar or picomolar) for HER2. Using both Biacore technology and cell binding assays, it was demonstrated that all six constructs could bind simultaneously to both their target proteins. N-terminal positioning of the inherent monomeric affibody molecules was favorable to promote the binding to the respective target. Interestingly, bispecific constructs containing the novel (Ser(4)Gly)(3) linker displayed a higher affinity in cell binding, as compared to constructs containing the more conventional linker, (Gly(4)Ser)(3). It could further be concluded that bispecific constructs (but not the monomeric affibody molecules) induced dimer formation and phosphorylation of EGFR in SKBR3 cells, which express fairly high levels of both receptors. It was also investigated whether the bispecific binding would influence cell growth or sensitize cells for ionizing radiation, but no such effects were observed.
Insights
Bispecific affibody constructs targeting EGFR and HER2 receptors were developed. These constructs showed simultaneous binding and induced EGFR dimerization and phosphorylation, offering potential cancer therapy strategies.
Area of Science:
- Oncology
- Molecular Biology
- Biotechnology
Background:
- Coexpression of ErbB receptors (EGFR, HER2) is common in cancers, correlating with tumor aggressiveness and poor prognosis.
- Simultaneous targeting of multiple surface receptors using bispecific constructs is a promising therapeutic strategy.
Purpose of the Study:
- To generate and characterize bispecific affibody constructs targeting both EGFR and HER2.
- To evaluate the impact of construct design (affibody positioning, linker type, HER2 affinity) on binding and biological activity.
Main Methods:
- Generation of six bispecific affibody constructs with variations in affibody order, linker sequences ((Gly4Ser)3 or (Ser4Gly)3), and HER2 affinity.
- Biacore technology and cell binding assays to assess simultaneous target binding.
- Analysis of EGFR dimerization, phosphorylation, cell growth, and radiosensitization in SKBR3 cancer cells.
Main Results:
- All six bispecific constructs demonstrated simultaneous binding to both EGFR and HER2.
- N-terminal positioning of affibody molecules enhanced target binding.
- The (Ser4Gly)3 linker resulted in higher binding affinity compared to the (Gly4Ser)3 linker.
- Bispecific constructs induced EGFR dimerization and phosphorylation in SKBR3 cells, unlike monomeric affibodies.
Conclusions:
- Bispecific affibody constructs can effectively target both EGFR and HER2 simultaneously.
- Construct design, particularly linker choice and affibody positioning, significantly influences binding affinity and biological activity.
- Induced EGFR dimerization and phosphorylation by bispecific constructs warrants further investigation for therapeutic applications.
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