Related Experiment Video
Updated: Feb 15, 2026

A GPC3-targeting Bispecific Antibody, GPC3-S-Fab, with Potent Cytotoxicity
Published on: July 12, 2018
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.
Abstract:
Anti-HER2/CD3, a T-cell-dependent bispecific antibody (TDB) construct, induces T-cell-mediated cell death in cancer cells expressing HER2 by cross-linking tumor HER2 with CD3 on cytotoxic T cells, thereby creating a functional cytolytic synapse. TDB design is a very challenging process that requires consideration of multiple parameters. Although therapeutic antibody design strategy is commonly driven by striving for the highest attainable antigen-binding affinity, little is known about how the affinity of each TDB arm can affect the targeting ability of the other arm and the consequent distribution and efficacy. To our knowledge, no distribution studies have been published using preclinical models wherein the T-cell-targeting arm of the TDB is actively bound to T cells. We used a combined approach involving radiochemistry, invasive biodistribution, and noninvasive single-photon emission tomographic (SPECT) imaging to measure TDB distribution and catabolism in transgenic mice with human CD3ε expression on T cells. Using CD3 affinity variants, we assessed the impact of CD3 affinity on short-term pharmacokinetics, tissue distribution, and cellular uptake. Our experimental approach determined the relative effects of (i) CD3 targeting to normal tissues, (ii) HER2 targeting to HER2-expressing tumors, and (iii) relative HER2/CD3 affinity, all as critical drivers for TDB distribution. We observed a strong correlation between CD3 affinity and distribution to T-cell-rich tissues, with higher CD3 affinity reducing systemic exposure and shifting TDB distribution away from tumor to T-cell-containing tissues. These observations have important implications for clinical translation of bispecific antibodies for cancer immunotherapy. Mol Cancer Ther; 17(4); 776-85. ©2018 AACR.
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.
Related Concept Videos
Affinity and Avidity
Structures of Solids
Metallic Solids
All metallic solids exhibit high thermal and electrical conductivity, metallic luster, and malleability....
Electron Affinity
Antibody Structure
Antibodies, also known as immunoglobulins (Ig), are essential players of the adaptive immune system. These antigen-binding proteins are produced by B cells and make up 20 percent of the total blood plasma by weight. In mammals, antibodies fall into five different classes, which each elicits a different biological response upon antigen binding.
The Y-Shaped Structure of Antibodies Consists of Four Polypeptide Chains
Antibodies consist of four polypeptide chains: two identical heavy...
Network Covalent Solids
To break or to melt a covalent network solid, covalent bonds must be broken. Because covalent bonds are relatively strong, covalent network solids are typically...

