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Updated: Jul 12, 2026

A Real-time Potency Assay for Chimeric Antigen Receptor T Cells Targeting Solid and Hematological Cancer Cells
Published on: November 12, 2019
Using protein geometry to optimize cytotoxicity and the cytokine window of a ROR1 specific T cell engager
Xueyuan Zhou1, Felix Klaus Geyer2, Dominic Happel2
1Drug Discovery and Development, Fuse Biotherapeutics, Woburn, MA, United States.
Abstract:
T cell engaging bispecific antibodies have shown clinical proof of concept for hematologic malignancies. Still, cytokine release syndrome, neurotoxicity, and on-target-off-tumor toxicity, especially in the solid tumor setting, represent major obstacles. Second generation TCEs have been described that decouple cytotoxicity from cytokine release by reducing the apparent binding affinity for CD3 and/or the TAA but the results of such engineering have generally led only to reduced maximum induction of cytokine release and often at the expense of maximum cytotoxicity. Using ROR1 as our model TAA and highly modular camelid nanobodies, we describe the engineering of a next generation decoupled TCE that incorporates a "cytokine window" defined as a dose range in which maximal killing is reached but cytokine release may be modulated from very low for safety to nearly that induced by first generation TCEs. This latter attribute supports pro-inflammatory anti-tumor activity including bystander killing and can potentially be used by clinicians to safely titrate patient dose to that which mediates maximum efficacy that is postulated as greater than that possible using standard second generation approaches. We used a combined method of optimizing TCE mediated synaptic distance and apparent affinity tuning of the TAA binding arms to generate a relatively long but persistent synapse that supports a wide cytokine window, potent killing and a reduced propensity towards immune exhaustion. Importantly, this next generation TCE induced significant tumor growth inhibition in vivo but unlike a first-generation non-decoupled benchmark TCE that induced lethal CRS, no signs of adverse events were observed.
Insights
Next-generation T cell engaging bispecific antibodies (TCEs) offer a "cytokine window" for potent tumor killing with modulated cytokine release. This approach demonstrated significant tumor growth inhibition in vivo without adverse events, unlike first-generation TCEs.
Area of Science:
- Immunology
- Oncology
- Biotechnology
Background:
- T cell engaging bispecific antibodies (TCEs) show promise for hematologic cancers but face challenges like cytokine release syndrome and neurotoxicity in solid tumors.
- Current second-generation TCEs decouple cytotoxicity from cytokine release but often compromise maximum efficacy.
Purpose of the Study:
- To engineer a next-generation decoupled TCE with a "cytokine window" for modulated cytokine release and potent tumor cell killing.
- To utilize ROR1 as a model tumor-associated antigen (TAA) and camelid nanobodies for TCE development.
Main Methods:
- Engineered TCEs by optimizing T cell engaging bispecific antibody mediated synaptic distance and tuning apparent affinity of TAA binding arms.
- Developed a "cytokine window" allowing maximal tumor cell killing with adjustable cytokine release levels.
- Utilized ROR1 as the target TAA and modular camelid nanobodies.
Main Results:
- The novel TCE demonstrated a "cytokine window" enabling potent killing while allowing modulation of cytokine release.
- Generated a stable immune synapse that supports potent killing and reduces immune exhaustion.
- Achieved significant tumor growth inhibition in vivo without inducing cytokine release syndrome (CRS) or other adverse events, unlike a first-generation benchmark TCE.
Conclusions:
- This next-generation decoupled TCE offers a promising therapeutic strategy for solid tumors by balancing efficacy and safety.
- The "cytokine window" concept allows for potentially safer and more effective patient-specific dosing.
- The engineered TCE shows potential for enhanced anti-tumor activity, including bystander killing, with a reduced risk of severe adverse events.

