Discovery and optimisation of a covalent ligand for TRIM25 and its application to targeted protein ubiquitination

Abstract

The tripartite motif (TRIM) family of RING-type E3 ligases catalyses the formation of many different types of ubiquitin chains, and as such, plays important roles in diverse cellular functions, ranging from immune regulation to cancer signalling pathways. Few ligands have been discovered for TRIM E3 ligases, and these E3s are under-represented in the rapidly expanding field of induced proximity. Here we present the identification of a novel covalent ligand for the PRYSPRY substrate binding domain of TRIM25. We employ covalent fragment screening coupled with high-throughput chemistry direct-to-biology optimisation to efficiently elaborate covalent fragment hits. We demonstrate that our optimised ligand enhances the in vitro auto-ubiquitination activity of TRIM25 and engages TRIM25 in live cells. We also present the X-ray crystal structure of TRIM25 PRYSPRY in complex with this covalent ligand. Finally, we incorporate our optimised ligand into heterobifunctional proximity-inducing compounds and demonstrate the in vitro targeted ubiquitination of a neosubstrate by TRIM25.

Graphical abstract: Discovery and optimisation of a covalent ligand for TRIM25 and its application to targeted protein ubiquitination

Supplementary files

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Article information

Article type
Edge Article
Submitted
26 Feb 2025
Accepted
30 Apr 2025
First published
12 May 2025
This article is Open Access

All publication charges for this article have been paid for by the Royal Society of Chemistry
Creative Commons BY license

Chem. Sci., 2025, Advance Article

Discovery and optimisation of a covalent ligand for TRIM25 and its application to targeted protein ubiquitination

K. A. McPhie, D. Esposito, J. Pettinger, D. Norman, T. Werner, T. Mathieson, J. T. Bush and K. Rittinger, Chem. Sci., 2025, Advance Article , DOI: 10.1039/D5SC01540E

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