Characterization of an Anti-CD70 Half-Life Extended Bispecific T-Cell Engager (HLE-BiTE) and Associated On-Target

Tod Harper1, Amy Sharma1, Sarav Kaliyaperumal1

  • 1Translational Safety and Bioanalytical Sciences, Amgen, South San Francisco, California, 94080, USA.

Insights

Bispecific T-cell engagers targeting CD70 showed potent anti-cancer activity but caused unexpected inflammation. This highlights the need to understand antigen expression, even at low levels, to predict and prevent on-target/off-tumor toxicities.

Area of Science:

  • Immunology
  • Oncology
  • Pharmacology

Background:

  • Bispecific T-cell engagers (BiTEs) are promising cancer therapeutics.
  • On-target/off-tumor toxicities can arise from targeting tumor-specific antigens.
  • CD70 is a target antigen found in several cancers.

Purpose of the Study:

  • To characterize a novel anti-CD70 half-life extended BiTE molecule (N6P).
  • To evaluate the therapeutic efficacy and safety profile of N6P.
  • To investigate potential on-target/off-tumor toxicities associated with N6P.

Main Methods:

  • In vitro cytotoxicity assays.
  • Orthotopic xenograft mouse studies.
  • In vitro characterization of specificity and potency.
  • Tissue expression analysis.
  • Repeat-dose toxicology study in cynomolgus monkeys.
  • Immunohistochemistry analysis.

Main Results:

  • N6P demonstrated potent killing of CD70+ cancer cells in vitro and in vivo.
  • N6P showed specificity for CD70 and equipotent activity against human and cynomolgus monkey cells.
  • CD70 is primarily restricted to lymphocytes in normal tissues.
  • Adverse N6P-mediated inflammation occurred in cynomolgus monkeys, involving mesothelium and epithelium.
  • CD70 expression was detected in injured tissues with inflammation, suggesting antigen upregulation.

Conclusions:

  • N6P exhibits therapeutic potential against CD70+ cancers.
  • Unexpected inflammation suggests CD70 can be expressed or upregulated in non-lymphoid tissues.
  • Thorough understanding of antigen expression and upregulation is crucial for predicting and mitigating BiTE-related toxicities.

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