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.

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.