Conditionally active T cell engagers for the treatment of solid tumors: rationale and clinical development

T Timothy Chen1

  • 1Maverick Therapeutics, Inc., a wholly owned subsidiary of Takeda Development Center Americas, Inc, Brisbane, CA, USA.

Abstract

Insights

Conditional T cell engagers are designed to reduce toxicity by activating only within the tumor microenvironment. This approach leverages tumor-specific proteases to control the activity of these potent bispecific molecules.

Area of Science:

  • Immunology
  • Oncology
  • Pharmacology

Background:

  • T cell engagers are bispecific molecules that activate T cells to kill cancer cells.
  • High potency can lead to on-target/off-tumor toxicity due to low-level antigen expression in normal tissues.
  • Tumor microenvironment proteases offer a strategy to create targeted therapies.

Purpose of the Study:

  • To review clinical T cell engagers, their successes, and failures.
  • To discuss challenges in treating solid tumors with T cell engagers.
  • To explore the development of conditionally active T cell engagers using the tumor microenvironment.

Main Methods:

  • Review of existing clinical T cell engager data.
  • Analysis of strategies exploiting tumor microenvironment proteases.
  • Discussion of methods to modulate T cell engager half-life and tumor infiltration.

Main Results:

  • Conditional T cell engagers offer a path to reduce on-target/off-tumor toxicity.
  • Leveraging tumor-specific enzymes enables targeted activation of T cell engagers.
  • Modulating serum half-life is crucial for effective tumor infiltration and safety.

Conclusions:

  • Conditionally active T cell engagers represent an advancement in targeted cancer therapy.
  • Exploiting the tumor microenvironment is key to improving safety profiles.
  • Future developments may further refine T cell engager design for enhanced efficacy and tolerability.

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