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.

Mabs
|August 23, 2023
PubMed

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.

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