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Updated: Sep 25, 2025

Generation of Human Chimeric Antigen Receptor Regulatory T Cells
Published on: January 3, 2025
Design and Evaluation of TIM-3-CD28 Checkpoint Fusion Proteins to Improve Anti-CD19 CAR T-Cell Function
Franziska Blaeschke1, Eva Ortner1, Dana Stenger1,2
1Department of Pediatric Hematology, Oncology and Stem Cell Transplantation, Dr. von Hauner Children's Hospital, University Hospital, Ludwig Maximilian University of Munich (LMU), Munich, Germany.
Abstract:
Therapeutic targeting of inhibitory checkpoint molecules in combination with chimeric antigen receptor (CAR) T cells is currently investigated in a variety of clinical studies for treatment of hematologic and solid malignancies. However, the impact of co-inhibitory axes and their therapeutic implication remains understudied for the majority of acute leukemias due to their low immunogenicity/mutational load. The inhibitory exhaustion molecule TIM-3 is an important marker for the interaction of T cells with leukemic cells. Moreover, inhibitory signals from malignant cells could be transformed into stimulatory signals by synthetic fusion molecules with extracellular inhibitory receptors fused to an intracellular stimulatory domain. Here, we designed a variety of different TIM-3-CD28 fusion proteins to turn inhibitory signals derived by TIM-3 engagement into T-cell activation through CD28. In the absence of anti-CD19 CAR, two TIM-3-CD28 fusion receptors with large parts of CD28 showed strongest responses in terms of cytokine secretion and proliferation upon stimulation with anti-CD3 antibodies compared to controls. We then combined these two novel TIM-3-CD28 fusion proteins with first- and second-generation anti-CD19 CAR T cells and found that the fusion receptor can increase proliferation, activation, and cytotoxic capacity of conventional anti-CD19 CAR T cells. These additionally armed CAR T cells showed excellent effector function. In terms of safety considerations, the fusion receptors showed exclusively increased cytokine release, when the CAR target CD19 was present. We conclude that combining checkpoint fusion proteins with anti-CD19 CARs has the potential to increase T-cell proliferation capacity with the intention to overcome inhibitory signals during the response against malignant cells.
Insights
Researchers engineered TIM-3-CD28 fusion proteins to enhance chimeric antigen receptor (CAR) T-cell therapy for acute leukemias. These novel fusion proteins boost T-cell activation and cytotoxic function against cancer cells.
Area of Science:
- Immunology
- Cancer Therapy
- Molecular Engineering
Background:
- Chimeric antigen receptor (CAR) T-cell therapy shows promise for hematologic and solid malignancies.
- Acute leukemias often have low immunogenicity, limiting CAR T-cell efficacy.
- T-cell immunoglobulin and mucin-domain containing-3 (TIM-3) is an inhibitory checkpoint molecule implicated in T-cell exhaustion during leukemia.
Purpose of the Study:
- To engineer synthetic fusion proteins combining the inhibitory TIM-3 receptor with the stimulatory CD28 co-stimulatory domain.
- To investigate if TIM-3-CD28 fusion proteins can convert inhibitory TIM-3 signals into T-cell activation.
- To evaluate the efficacy of TIM-3-CD28 fusion proteins when combined with anti-CD19 CAR T cells.
Main Methods:
- Designed and constructed various TIM-3-CD28 fusion proteins.
- Assessed fusion protein function using cytokine secretion and proliferation assays upon anti-CD3 stimulation.
- Combined optimized TIM-3-CD28 fusion proteins with anti-CD19 CAR T cells and evaluated their proliferation, activation, and cytotoxic capacity.
Main Results:
- Two TIM-3-CD28 fusion receptors demonstrated superior cytokine secretion and proliferation compared to controls.
- The addition of TIM-3-CD28 fusion proteins enhanced proliferation, activation, and cytotoxic function of anti-CD19 CAR T cells.
- Fusion receptors exclusively increased cytokine release in the presence of the target CD19, indicating target-specific safety.
Conclusions:
- TIM-3-CD28 fusion proteins can effectively convert inhibitory signals into T-cell activation.
- Combining these fusion proteins with anti-CD19 CARs significantly improves CAR T-cell effector functions.
- This approach holds potential for overcoming inhibitory signals and enhancing CAR T-cell therapy for acute leukemias.

