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Updated: Aug 21, 2026

Quantifying Antibody-Dependent Cellular Cytotoxicity in a Tumor Spheroid Model: Application for Drug Discovery
Published on: April 26, 2024
Bispecific minibodies targeting HER2/neu and CD16 exhibit improved tumor lysis when placed in a divalent tumor
Lillian S Shahied1, Yong Tang, R Katherine Alpaugh
1Department of Medical Oncology, Fox Chase Cancer Center, Philadelphia, Pennsylvania 19111, USA.
Abstract:
Unconjugated monoclonal antibodies have emerged as important therapeutic agents for selected malignancies. One mechanism by which antibodies can exert cytotoxic effects is antibody-dependent cellular cytotoxicity (ADCC). In an effort to increase the efficiency of ADCC at tumor sites, we have focused on the construction of bispecific antibodies specific for the tumor antigen HER2/neu and the Fc gamma RIII-activating receptor (CD16) found on NK cells, mononuclear phagocytes, and neutrophils. Here, we describe the production of bispecific minibodies in two distinct binding formats. The parent minibody was constructed such that the IgG1 C(H)3 constant domain serves as the oligomerization domain and is attached to an anti-CD16 and an anti-HER2/ neu single-chain Fv via 19- and 29-amino acid linkers, respectively. This molecule can be expressed in mammalian cells from a dicistronic vector and has been purified using sequential affinity purification techniques. Analysis by surface plasmon resonance shows that the bispecific minibody can bind to HER2/neu and CD16, both individually and simultaneously. Furthermore, cytotoxicity studies show that the minibody can induce significant tumor cell lysis at a concentration as low as 20 nm. A trimeric, bispecific minibody (TriBi) that binds dimerically to HER2/neu and monomerically to CD16 induces equivalent cytotoxicity at lower antibody concentrations than either the parent minibody or the corresponding single-chain dimer. Both minibody constructs are stable in mouse and human serum for up to 72 h at 37 degrees C. These minibodies have the potential to target solid tumors and promote tumor lysis by natural killer cells and mononuclear phagocytes.
Insights
Researchers developed novel bispecific minibodies targeting HER2/neu and CD16 receptors to enhance antibody-dependent cellular cytotoxicity (ADCC) for cancer therapy. These engineered antibodies effectively induce tumor cell lysis, showing promise for solid tumor treatment.
Area of Science:
- Immunology
- Oncology
- Biotechnology
Background:
- Unconjugated monoclonal antibodies are key therapeutics for malignancies.
- Antibody-dependent cellular cytotoxicity (ADCC) is a mechanism for antibody-mediated tumor cell killing.
- Enhancing ADCC at tumor sites is crucial for improving therapeutic efficacy.
Purpose of the Study:
- To construct and characterize bispecific minibodies targeting HER2/neu and CD16 (Fc gamma RIII).
- To evaluate the ability of these minibodies to induce antibody-dependent cellular cytotoxicity (ADCC).
- To assess the potential of bispecific minibodies in targeting solid tumors and promoting tumor lysis.
Main Methods:
- Construction of bispecific minibodies with anti-HER2/neu and anti-CD16 single-chain Fv domains.
- Expression in mammalian cells and purification using sequential affinity chromatography.
- Characterization using surface plasmon resonance (SPR) for binding affinity and cytotoxicity assays.
Main Results:
- Bispecific minibodies demonstrated binding to both HER2/neu and CD16 receptors.
- Significant tumor cell lysis was induced by minibodies at concentrations as low as 20 nm.
- A trimeric bispecific minibody (TriBi) showed enhanced cytotoxicity at lower concentrations compared to other formats.
- Both minibody constructs exhibited stability in mouse and human serum for up to 72 hours.
Conclusions:
- Bispecific minibodies targeting HER2/neu and CD16 are effective in inducing ADCC.
- Engineered minibodies, particularly the TriBi format, show potential for enhanced tumor lysis.
- These novel bispecific minibodies offer a promising strategy for targeting solid tumors and activating immune cells for cancer therapy.
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