Covalent Degrader of the Oncogenic Transcription Factor β-Catenin

Flor A Gowans1,2, Nafsika Forte1,2, Justin Hatcher1,2

  • 1Department of Chemistry, University of California, Berkeley, Berkeley, CA 94720 USA.

Insights

Researchers identified EN83, a novel covalent ligand that depletes the oncogenic transcription factor β-catenin (CTNNB1) via proteasomal degradation. This breakthrough offers a new strategy for targeting previously "undruggable" cancer-driving proteins.

Area of Science:

  • Oncology
  • Molecular Biology
  • Biochemistry

Background:

  • β-catenin (CTNNB1) is a key oncogenic transcription factor implicated in numerous cancers.
  • Its role in cell adhesion, proliferation, and survival makes it a critical, yet challenging, therapeutic target.
  • Directly targeting CTNNB1 has been difficult, classifying it as an "undruggable" protein.

Approach:

  • A screen of cysteine-reactive covalent ligands identified EN83, a monovalent degrader.
  • EN83 directly and covalently targets four specific cysteines (C439, C466, C520, C619) in CTNNB1's armadillo repeat domain.
  • Covalent chemoproteomic methods were used to confirm direct engagement and assess selectivity in cells.

Key Points:

  • EN83 induces CTNNB1 destabilization and subsequent ubiquitin-proteasome-dependent degradation.
  • Targeting cysteines C466, C520, and C619 is crucial for CTNNB1 degradation.
  • EN83 demonstrates moderate selectivity for CTNNB1 in cellular contexts.
  • The identified degrader can be further optimized for enhanced potency.

Conclusions:

  • Covalent targeting of specific cysteines in CTNNB1 leads to its degradation.
  • Chemoproteomic approaches provide a viable strategy for targeting challenging transcription factors like CTNNB1.
  • This research opens new avenues for developing therapeutics against cancers driven by CTNNB1.

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