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Modular self-assembly system for development of oligomeric, highly internalizing and potent cytotoxic conjugates
Marta Poźniak1, Natalia Porębska1, Kamil Jastrzębski2
1Faculty of Biotechnology, Department of Protein Engineering, University of Wroclaw, Joliot-Curie 14a, 50-383, Wroclaw, Poland.
Background:
Overexpression of FGFR1 is observed in numerous tumors and therefore this receptor constitutes an attractive molecular target for selective cancer treatment with cytotoxic conjugates. The success of cancer therapy with cytotoxic conjugates largely relies on the precise recognition of a cancer-specific marker by a targeting molecule within the conjugate and its subsequent cellular internalization by receptor mediated endocytosis. We have recently demonstrated that efficiency and mechanism of FGFR1 internalization are governed by spatial distribution of the receptor in the plasma membrane, where clustering of FGFR1 into larger oligomers stimulated fast and highly efficient uptake of the receptor by simultaneous engagement of multiple endocytic routes. Based on these findings we aimed to develop a modular, self-assembly system for generation of oligomeric cytotoxic conjugates, capable of FGFR1 clustering, for targeting FGFR1-overproducing cancer cells.
Methods:
Engineered FGF1 was used as FGFR1-recognition molecule and tailored for enhanced stability and site-specific attachment of the cytotoxic drug. Modified streptavidin, allowing for controlled oligomerization of FGF1 variant was used for self-assembly of well-defined FGF1 oligomers of different valency and oligomeric cytotoxic conjugate. Protein biochemistry methods were applied to obtain highly pure FGF1 oligomers and the oligomeric cytotoxic conjugate. Diverse biophysical, biochemical and cell biology tests were used to evaluate FGFR1 binding, internalization and the cytotoxicity of obtained oligomers.
Results:
Developed multivalent FGF1 complexes are characterized by well-defined architecture, enhanced FGFR1 binding and improved cellular uptake. This successful strategy was applied to construct tetrameric cytotoxic conjugate targeting FGFR1-producing cancer cells. We have shown that enhanced affinity for the receptor and improved internalization result in a superior cytotoxicity of the tetrameric conjugate compared to the monomeric one.
Conclusions:
Our data implicate that oligomerization of the targeting molecules constitutes an attractive strategy for improvement of the cytotoxicity of conjugates recognizing cancer-specific biomarkers. Importantly, the presented approach can be easily adapted for other tumor markers.
Insights
Oligomerizing cancer-targeting molecules enhances their ability to kill tumor cells. This strategy improves the uptake and effectiveness of cytotoxic conjugates against FGFR1-overexpressing cancers.
Area of Science:
- Biochemistry
- Molecular Biology
- Oncology
Background:
- Fibroblast Growth Factor Receptor 1 (FGFR1) overexpression is common in many tumors, making it a promising target for cancer therapy.
- FGFR1 internalization efficiency is influenced by its clustering in the plasma membrane, which can enhance receptor-mediated endocytosis.
- Targeted cytotoxic conjugates require precise cancer marker recognition and cellular uptake for effective treatment.
Purpose of the Study:
- To develop a modular, self-assembly system for creating oligomeric cytotoxic conjugates.
- To design conjugates capable of inducing FGFR1 clustering for enhanced targeting of FGFR1-overproducing cancer cells.
Main Methods:
- Engineered Fibroblast Growth Factor 1 (FGF1) as the FGFR1-recognition molecule, modified for drug attachment.
- Utilized modified streptavidin for controlled self-assembly of FGF1 variants into defined oligomers of varying valency.
- Employed protein biochemistry, biophysical, biochemical, and cell biology assays to assess binding, internalization, and cytotoxicity.
Main Results:
- Successfully developed multivalent FGF1 complexes with defined architecture, improved FGFR1 binding, and enhanced cellular uptake.
- Constructed a tetrameric cytotoxic conjugate that effectively targets FGFR1-producing cancer cells.
- Demonstrated superior cytotoxicity of the tetrameric conjugate compared to its monomeric counterpart due to enhanced receptor affinity and internalization.
Conclusions:
- Oligomerization of targeting molecules is a viable strategy to enhance the cytotoxicity of antibody-drug conjugates.
- The presented self-assembly approach is adaptable for targeting other tumor-specific biomarkers.
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