Relative Target Affinities of T-Cell-Dependent Bispecific Antibodies Determine Biodistribution in a Solid Tumor Mouse

Danielle Mandikian1, Nene Takahashi2, Amy A Lo1

  • 1Genentech, Inc., South San Francisco, California.

Insights

Bispecific antibody (TDB) design impacts cancer immunotherapy. Higher T-cell CD3 affinity reduces systemic exposure and shifts TDB distribution from tumors to T-cells, influencing efficacy.

Area of Science:

  • Immunology
  • Oncology
  • Pharmacology

Background:

  • T-cell-dependent bispecific antibodies (TDBs) target cancer by linking tumor cells to T cells.
  • Optimizing TDB design is complex, with limited understanding of how individual arm affinities affect overall performance.
  • No prior studies have examined TDB distribution in preclinical models with active T-cell binding.

Purpose of the Study:

  • To investigate the impact of CD3 affinity on TDB distribution and pharmacokinetics.
  • To determine how HER2 and CD3 targeting, and their relative affinities, influence TDB biodistribution.
  • To assess TDB distribution and catabolism using advanced imaging and biodistribution techniques.

Main Methods:

  • Utilized radiochemistry, invasive biodistribution, and single-photon emission tomographic (SPECT) imaging.
  • Employed transgenic mice expressing human CD3ε on T cells.
  • Assessed TDB variants with differing CD3 affinities to analyze pharmacokinetics, tissue distribution, and cellular uptake.

Main Results:

  • Demonstrated a strong correlation between CD3 affinity and distribution to T-cell-rich tissues.
  • Observed that higher CD3 affinity significantly reduced systemic TDB exposure.
  • Found that increased CD3 affinity shifted TDB distribution away from tumors towards T-cell-rich tissues.

Conclusions:

  • CD3 affinity is a critical determinant of TDB distribution and systemic exposure.
  • Optimizing CD3 affinity can modulate TDB biodistribution, impacting therapeutic potential.
  • These findings are crucial for the clinical translation of TDBs in cancer immunotherapy.

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