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Ex vivo Expansion of Tumor-reactive T Cells by Means of Bryostatin 1/Ionomycin and the Common Gamma Chain Cytokines Formulation
Published on: January 14, 2011
Targeted chain-exchange-mediated reconstitution of a split type-I cytokine for conditional immunotherapy
Vedran Vasic1, Can Buldun1,2, Manfred Ritz1,3
1Roche Pharma Research and Early Development (pRED), Large Molecule Research, Roche Innovation Center Munich, Penzberg, Germany.
Abstract:
Antibody-cytokine fusions targeted against tumor-associated antigens (TAAs) are promising cancer immunotherapy agents, with many such molecules currently undergoing clinical trials. However, due to the limited number of tumor-specific targets, on-target off-tumor effects can lead to systemic toxicity. Additionally, targeted cytokines can be scavenged by cytokine receptors on peripheral cells, decreasing tumor penetration. This study aims at overcoming these issues by engineering a platform for targeted conditionally active type I cytokines. Building on our previously reported PACE (Prodrug-Activating Chain Exchange) platform, we split the type I cytokine interleukin-4 (IL-4) to create two inactive IL-4 prodrugs, and fused these split IL-4 counterparts to the C-termini of antibody-like molecules that undergo proximity-induced chain exchange. In doing so, we developed IL-4 prodrugs that preferentially reconstitute into active IL-4 on target cells. We demonstrate that pre-assembled split IL-4 (without additional inactivation) retains activity and present two different strategies of splitting and inactivating IL-4. Using an IL-4 responsive cell-line, we show that IL-4 prodrugs are targeted to TAAs on target cells and regain activity upon chain exchange, primarily in a cis-activation setting. Furthermore, we demonstrate that split IL-4 complementation is also possible in a trans-activation setting, which opens up the possibility for activation of immune cells in the tumor vicinity. We demonstrate that targeted on-cell prodrug conversion is more efficient than nonspecific activation in-solution. Due to the structural similarity between IL-4 and other type I cytokines relevant in cancer immunotherapy such as IL-2, IL-15, and IL-21, cytokine-PACE may be expanded to develop a variety of targeted conditionally active cytokines for cancer immunotherapy.
Insights
This study introduces a novel prodrug-activating chain exchange (PACE) platform to engineer conditionally active interleukin-4 (IL-4) for targeted cancer immunotherapy, reducing toxicity and enhancing tumor penetration.
Area of Science:
- Immunology
- Oncology
- Biotechnology
Background:
- Antibody-cytokine fusions show promise in cancer immunotherapy but face challenges like on-target off-tumor toxicity and limited tumor penetration.
- Existing therapies can be hindered by cytokine scavenging by peripheral cells, reducing efficacy.
Purpose of the Study:
- To engineer a platform for targeted, conditionally active type I cytokines to overcome limitations of current antibody-cytokine fusions.
- To develop a system for targeted activation of interleukin-4 (IL-4) prodrugs specifically on tumor cells.
Main Methods:
- Utilized the Prodrug-Activating Chain Exchange (PACE) platform to split IL-4 into two inactive prodrugs.
- Fused split IL-4 components to antibody-like molecules for proximity-induced chain exchange and reconstitution into active IL-4.
- Evaluated prodrug activity and specificity using an IL-4 responsive cell line and assessed cis- and trans-activation settings.
Main Results:
- Demonstrated that split IL-4 prodrugs are preferentially reconstituted into active IL-4 on target cells expressing tumor-associated antigens (TAAs).
- Showcased targeted on-cell prodrug conversion as more efficient than non-specific in-solution activation.
- Confirmed both cis- and trans-activation of split IL-4, enabling localized immune cell activation.
Conclusions:
- The engineered PACE platform successfully creates targeted, conditionally active IL-4 prodrugs, mitigating systemic toxicity and improving tumor penetration.
- This approach offers a versatile strategy for developing targeted conditionally active type I cytokines, including IL-2, IL-15, and IL-21, for enhanced cancer immunotherapy.

