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Published on: September 15, 2020
Characterization of a single reporter-gene potency assay for T-cell-dependent bispecific molecules
Ho Young Lee1, Ames Register1, Jeongsup Shim1
1Biological Technologies, Department of Analytical Development and Quality Control, Genentech, A member of the Roche group , South San Francisco , CA , USA.
Abstract:
T-cell-dependent bispecific antibodies (TDBs) are promising cancer immunotherapies that recruit patients' T cells to kill cancer cells. There are many TDBs in clinical trials, demonstrating their widely recognized therapeutic potential. However, their complex, multi-step mechanism of action (MoA), which includes bispecific antigen binding, T-cell activation, and target-cell killing, presents unique challenges for biological characterization and potency assay selection. Here, we describe the development of a single reporter-gene potency assay for a TDB (TDB1) that is MoA reflective and sensitive to binding of both antigens. Our reporter-gene assay measures T-cell activation using Jurkat cells engineered to express luciferase under the control of an NFkB response element. The potencies of select samples were measured both by this assay and by a flow-cytometry-based cell-killing assay using human lymphocytes as effector cells. Correlating the two sets of potency results clearly establishes our reporter-gene assay as MoA reflective. Furthermore, correlating potencies for the same panel of samples against binding data measured by binding assays for each individual arm demonstrates that the reporter-gene potency assay reflects dual-antigen binding and can detect changes in affinity for either arm. This work demonstrates that one reporter-gene assay can be used to measure the potency of TDB1 while capturing key aspects of its MoA, thus serving as a useful case study of selection and justification of reporter-gene potency assays for TDBs. Furthermore, our strategy of correlating reporter-gene potency, target-cell killing, and antigen binding for each individual arm serves as a useful example of a thorough, holistic approach to biological characterization for TDBs that can be applied to other bispecific molecules.
Insights
We developed a novel reporter-gene assay for T-cell-dependent bispecific antibodies (TDBs) that accurately measures potency and reflects their complex mechanism of action. This assay supports robust characterization of TDB immunotherapies.
Area of Science:
- Biotechnology
- Immunotherapy
- Assay Development
Background:
- T-cell-dependent bispecific antibodies (TDBs) are a promising class of cancer immunotherapies.
- Their complex mechanism of action presents challenges for biological characterization and potency assay selection.
- Accurate potency assays are crucial for the development and clinical evaluation of TDBs.
Purpose of the Study:
- To develop a single reporter-gene potency assay for a TDB (TDB1) that is mechanism of action (MoA) reflective.
- To demonstrate the assay's sensitivity to dual-antigen binding and its ability to correlate with cell-killing activity.
- To provide a case study for the selection and justification of potency assays for TDBs.
Main Methods:
- Developed a luciferase-based reporter-gene assay using engineered Jurkat cells to measure T-cell activation.
- Measured TDB1 sample potencies using the reporter-gene assay and a flow cytometry-based cell-killing assay.
- Correlated reporter-gene assay potencies with cell-killing data and antigen-binding data for each antibody arm.
Main Results:
- The reporter-gene assay demonstrated strong correlation with the cell-killing assay, confirming its MoA reflectivity.
- The assay accurately reflected dual-antigen binding and detected changes in binding affinity for either antibody arm.
- Established the reporter-gene assay as a suitable method for measuring TDB1 potency and characterizing its MoA.
Conclusions:
- A single reporter-gene assay can effectively measure TDB potency while capturing key aspects of its MoA.
- The developed assay serves as a valuable tool for the biological characterization of TDBs.
- The strategy of correlating potency, cell killing, and binding provides a holistic approach for bispecific molecule characterization.
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