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Conditionally active T cell engagers for the treatment of solid tumors: rationale and clinical development
1Maverick Therapeutics, Inc., a wholly owned subsidiary of Takeda Development Center Americas, Inc, Brisbane, CA, USA.
Introduction:
T cell engagers are a class of bispecific molecules that induce highly potent T cell-dependent cytotoxicity by bringing T cell activating receptors into proximity with cancer-associated cell surface antigens. However, because of their high potency, there is a greater risk of on-target/off-tumor toxicity owing to normal tissues having tumor antigen expression even at low levels. To reduce these adverse events, the dysregulated activity of proteases within the tumor microenvironment has recently been explored to create inert prodrugs that become conditionally active engagers after their cleavage by these enzymes.
Areas Covered:
T-cell engagers that have been introduced for clinical use, and their respective successes and failures are reviewed. The unique challenges of these bispecific molecules for treating solid tumors and prior technologies used to exploit the proteolytic tumor microenvironment to create better-tolerated prodrugs and how that experience has led to the current series of conditionally active T-cell engagers are discussed.
Expert Opinion:
Methods for modulating the serum half-life of both inert and activated T cell engagers could have important ramifications in how they infiltrate tumors and prevent toxicity. Alternative features of the tumor microenvironment can also be leveraged in the development of conditional T cell engagers.
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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