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Validation of Nanobody and Antibody Based In Vivo Tumor Xenograft NIRF-imaging Experiments in Mice Using Ex Vivo Flow Cytometry and Microscopy
Published on: April 6, 2015
A biparatopic anti-EGFR nanobody efficiently inhibits solid tumour growth
Rob C Roovers1, Maria J W D Vosjan, Toon Laeremans
1Cell Biology, Department of Biology, Science Faculty, Utrecht University, Utrecht, The Netherlands. r.c.roovers@uu.nl
Abstract:
The epidermal growth factor receptor (EGFR) has been shown to be a valid cancer target for antibody-based therapy. At present, several anti-EGFR monoclonal antibodies have been successfully used, such as cetuximab and matuzumab. X-ray crystallography data show that these antibodies bind to different epitopes on the ecto-domain of EGFR, providing a rationale for the combined use of these two antibody specificities. We have previously reported on the successful isolation of antagonistic anti-EGFR nanobodies. In our study, we aimed to improve the efficacy of these molecules by combining nanobodies with specificities similar to both cetuximab and matuzumab into a single biparatopic molecule. Carefully designed phage nanobody selections resulted in two sets of nanobodies that specifically blocked the binding of either matuzumab or cetuximab to EGFR and that did not compete for each others' binding. A combination of nanobodies from both epitope groups into the biparatopic nanobody CONAN-1 was shown to block EGFR activation more efficiently than monovalent or bivalent (monospecific) nanobodies. In addition, this biparatopic nanobody potently inhibited EGF-dependent cell proliferation. Importantly, in an in vivo model of athymic mice bearing A431 xenografts, CONAN-1 inhibited tumour outgrowth with an almost similar potency as the whole mAb cetuximab, despite the fact that CONAN-1 is devoid of an Fc portion that could mediate immune effector functions. Compared to therapy using bivalent, monospecific nanobodies, CONAN-1 was clearly more potent in tumour growth inhibition. These results show that the rational design of biparatopic nanobody-based anticancer therapeutics may yield potent lead molecules for further development.
Insights
We developed a biparatopic nanobody, CONAN-1, targeting the epidermal growth factor receptor (EGFR). This novel molecule enhances cancer therapy by combining specificities of existing antibodies, showing potent inhibition of tumor growth.
Area of Science:
- Oncology
- Immunology
- Biotechnology
Background:
- Epidermal growth factor receptor (EGFR) is a validated target for antibody-based cancer therapies.
- Existing anti-EGFR monoclonal antibodies like cetuximab and matuzumab bind to distinct epitopes, suggesting combined use potential.
- Previous work established antagonistic anti-EGFR nanobodies.
Purpose of the Study:
- To enhance the efficacy of anti-EGFR nanobodies by creating a single biparatopic molecule.
- To combine nanobody specificities mimicking both cetuximab and matuzumab.
- To evaluate the therapeutic potential of the novel biparatopic nanobody CONAN-1.
Main Methods:
- Phage nanobody selection to isolate antibodies targeting distinct EGFR epitopes.
- Construction of a biparatopic nanobody (CONAN-1) by combining selected nanobodies.
- In vitro assays to assess EGFR activation inhibition and cell proliferation.
- In vivo studies using an A431 xenograft mouse model to evaluate tumor growth inhibition.
Main Results:
- Two sets of nanobodies were identified, blocking cetuximab or matuzumab binding to EGFR without competition.
- The biparatopic nanobody CONAN-1 demonstrated superior EGFR activation blockade compared to monospecific nanobodies.
- CONAN-1 potently inhibited EGF-dependent cell proliferation in vitro.
- In vivo, CONAN-1 significantly inhibited tumor outgrowth, comparable to cetuximab, and outperformed monospecific nanobodies.
Conclusions:
- Rational design of biparatopic nanobodies can yield highly effective anticancer therapeutics.
- CONAN-1 represents a promising lead molecule for further development in antibody-based cancer therapy.
- Biparatopic nanobodies offer enhanced potency and efficacy, even without an Fc portion.
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