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Engineering an Enhanced EGFR Engager: Humanization of Cetuximab for Improved Developability
Dennis R Goulet1, Soumili Chatterjee1, Wai-Ping Lee2
1Protein Engineering, SystImmune, Inc., 15318 NE 95th St., Redmond, WA 98052, USA.
Abstract:
The epidermal growth factor receptor (EGFR) is a receptor tyrosine kinase whose proliferative effects can contribute to the development of many types of solid tumors when overexpressed. For this reason, EGFR inhibitors such as cetuximab can play an important role in treating cancers such as colorectal cancer and head and neck cancer. Cetuximab is a chimeric monoclonal antibody containing mouse variable regions that bind to EGFR and prevent it from signaling. Although cetuximab has been used clinically since 2004 to successfully control solid tumors, advances in protein engineering have created the opportunity to address some of its shortcomings. In particular, the presence of mouse sequences could contribute to immunogenicity in the form of anti-cetuximab antibodies, and an occupied glycosylation site in FR3 can contribute to hypersensitivity reactions and product heterogeneity. Using simple framework graft or sequence-/structure-guided approaches, cetuximab was humanized onto 11 new frameworks. In addition to increasing humanness and removing the VH glycosylation site, dynamic light scattering revealed increases in stability, and bio-layer interferometry confirmed minimal changes in binding affinity, with patterns emerging across the humanization method. This work demonstrates the potential to improve the biophysical and clinical properties of first-generation protein therapeutics and highlights the advantages of computationally guided engineering.
Insights
Humanizing cetuximab, an EGFR inhibitor, reduced immunogenicity and improved stability. This protein engineering approach enhances first-generation cancer therapeutics for better clinical outcomes.
Area of Science:
- Oncology
- Immunology
- Biotechnology
Background:
- Epidermal growth factor receptor (EGFR) overexpression drives solid tumor development.
- Cetuximab, an EGFR inhibitor, is a chimeric antibody used since 2004 for cancer treatment.
- Mouse sequences in cetuximab can cause immunogenicity, and a glycosylation site may lead to hypersensitivity.
Purpose of the Study:
- To humanize cetuximab to reduce immunogenicity and improve biophysical properties.
- To engineer a more stable and less immunogenic EGFR inhibitor.
- To explore the potential of computationally guided protein engineering for therapeutic antibodies.
Main Methods:
- Humanization of cetuximab onto 11 new frameworks using framework grafting and sequence-/structure-guided methods.
- Removal of a variable heavy chain (VH) glycosylation site.
- Assessment of stability using dynamic light scattering and binding affinity using bio-layer interferometry.
Main Results:
- Humanization increased the overall 'humanness' of the antibody.
- The VH glycosylation site was successfully removed.
- Enhanced stability and minimal loss of binding affinity to EGFR were observed.
- Consistent improvements were noted across different humanization strategies.
Conclusions:
- Protein engineering can significantly improve first-generation biologics like cetuximab.
- Computational methods offer advantages for enhancing therapeutic antibody properties.
- Humanized cetuximab shows potential for reduced immunogenicity and improved stability in cancer therapy.
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