Programmable Attenuation of Antigenic Sensitivity for a Nanobody-Based EGFR Chimeric Antigen Receptor Through Hinge

Scott McComb1,2,3, Tina Nguyen1, Alex Shepherd1,3

  • 1Human Health Therapeutics Research Centre, National Research Council, Ottawa, ON, Canada.

Insights

Modifying chimeric antigen receptor (CAR)-T therapy by adjusting the hinge length of Epidermal growth factor receptor (EGFR)-targeting CARs can improve tumor selectivity and reduce off-tumor toxicity.

Area of Science:

  • Immunology
  • Oncology
  • Biotechnology

Background:

  • Epidermal growth factor receptor (EGFR) is a common target in solid tumors for chimeric antigen receptor (CAR)-T therapy.
  • EGFR is also present in healthy tissues, posing a risk of on-target, off-tumor toxicity.
  • Balancing therapeutic efficacy with safety is crucial for EGFR-targeted CAR-T therapies.

Purpose of the Study:

  • To develop EGFR-targeting CARs (EGFR-sdCARs) with improved selectivity.
  • To investigate the impact of hinge-domain truncation on EGFR-sdCAR function and specificity.
  • To establish hinge length tuning as a strategy for CAR optimization.

Main Methods:

  • Identified camelid single-domain antibodies (nanobodies) for EGFR targeting.
  • Engineered EGFR-sdCARs with progressively truncated CD8 hinge domains.
  • Assessed CAR-T cell binding, activation marker expression (CD69), and cytotoxicity against tumor and healthy cells.
  • Evaluated hinge truncation effects on HER2-CAR and EGFRvIII-specific CARs.

Main Results:

  • Hinge truncation progressively reduced EGFR-sdCAR binding and activation.
  • Truncated EGFR-sdCARs demonstrated enhanced selectivity for EGFR-high tumor cells over EGFR-low cells and fibroblasts.
  • Hinge truncation's effect on antigenic sensitivity depended on epitope location (membrane-proximal vs. membrane-distal).
  • Hinge-modified EGFR-sdCARs showed functional attenuation in Jurkat and primary human T cells, both in vitro and in vivo.

Conclusions:

  • Hinge length tuning is a programmable strategy to modulate antigenic sensitivity in CARs targeting membrane-proximal epitopes.
  • This approach can optimize CARs for improved tumor selectivity and reduced toxicity.
  • The findings offer a method for enhancing the safety and efficacy of CAR-T therapies.