Abstract
Transcriptional enhanced associated domain (TEAD) proteins, activated by YAP/TAZ, are oncogenic drivers. While parallel synthesis has advanced lead discovery, most libraries are assembled randomly or in a scaffold-centric manner, which results in low efficiency for inhibitor discovery. In this study, we leveraged a strategy integrating structure-based design with CuAAC-enabled parallel synthesis to build a covalent, hydrophobic-fragment library. Combined with in situ screening, this approach rapidly identified hits at 8.33%, among which LC-TEAD01 emerged as a selective inhibitor showing a 17-fold preference for NF2-deficient NCI-H226 cells. Biochemical and structural studies confirmed covalent engagement of the conserved cysteine and occupancy of the hydrophobic channel, disrupting YAP–TEAD interaction and suppressing TEAD-dependent transcription. In vivo, LC-TEAD01 inhibited tumor growth in NF2-deficient xenografts. Collectively, this work integrates structure-based design with CuAAC-enabled parallel synthesis and in situ screening, enabling rapid discovery of TEAD inhibitors and offering a generalizable route for targets with structurally defined pockets.
| Original language | English |
|---|---|
| Pages (from-to) | 10905-10923 |
| Number of pages | 19 |
| Journal | Journal of Medicinal Chemistry |
| Volume | 69 |
| Issue number | 9 |
| DOIs | |
| State | Published - 14 May 2026 |
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