Skip to content

Post-translational chemical modification of E3 ligase for efficient target protein degradation.

Aug 2026 · Bioorganic chemistry (Print) · Vol 181, pp. 110328 · 0 citations · 35 references
Medicine

TL;DR

This work reports the first ligand-directed chemical strategy that converts transient PROTAC-mediated ternary complex formation into binary target recognition via post-translational chemical modification of an E3 ligase, and believes it could provide a platform for next-generation targeted protein degraders to overcome the current limitation of PROTAC approach.

Abstract

Targeted protein degradation (TPD) has emerged as a powerful therapeutic strategy, with proteolysis-targeting chimeras (PROTACs) leading efforts to address previously undruggable targets. However, PROTACs face challenges such as low bioavailability and poor pharmacokinetic properties which limit their biological applications. Here, we report a strategy termed post-translational chemical modification targeting chimera (PTcM-TAC), which integrates ligand-directed chemistry into the PROTAC framework to achieve sustained target protein degradation through covalent modification of E3 ligases. PTcM-TAC incorporates an electrophilic dibromophenyl benzoate warhead into the linker connecting the E3 ligase ligand and the protein-of-interest (POI) ligand, enabling selective transfer of the POI ligand onto the recruited E3 ligase while releasing the E3-binding moiety. Mechanistic studies, including LC-MS/MS peptide mapping, pull-down assays, and structural modeling, demonstrated site-selective modification of CRBN by the PTcM-TAC. The resulting ligand-labeled E3 ligase enables sustained pseudo-catalytic target recognition through a simplified binary interaction, thereby maintaining degradation activity even after compound washout. Furthermore, we successfully applied the PTcM-TAC strategy to another representative E3 ligase, von Hippel-Lindau (VHL), which exhibited substantially sustained degradation activity compared with conventional PROTACs. To our knowledge, PTcM-TAC represents the first ligand-directed chemical strategy that converts transient PROTAC-mediated ternary complex formation into binary target recognition via post-translational chemical modification of an E3 ligase. We believe that PTcM-TAC could provide a platform for next-generation targeted protein degraders to overcome the current limitation of PROTAC approach.

View source

Similar papers

Review Open access Aug 2026

PROTAC-Based Strategies in Neurodegenerative Diseases: Challenges and Perspectives

This review summarizes recent advances in chemical protein degradation strategies for neurodegenerative disorders and highlights potential future perspectives of multifunctional PROTACs for therapeutic development.

Pasquale Degennaro, Imane Ghafir El Idrissi, Rosa Purgatorio et al. · 0 citations
Open access Aug 2026

Harnessing the E3 Ligase KLHL12 for Tumor-Selective Protein Degradation.

KLHL12 is identified as a potentially tumor-selective E3 ligase and the development of the first-in-class KLHL12-recruiting PROTACs are reported, which established KLHL12 as a promising tumor‑selective E3 ligase and provided a KLHL12-recruiting PROTAC platform for cancer therapy.

Shicheng Xu, Xian Zhang, Shun-Bo Hu et al. · 0 citations
Review Jul 2026

Targeted protein degradation: bridging chemical biology and clinical translation.

An overview of the developmental trajectory of the TPD field is provided and how diverse modalities can be leveraged to address intracellular, membrane-associated, and extracellular protein targets are discussed.

Yu-bo Zhang, Junwei Fu, Yue Liu et al. · 0 citations
Jul 2026

Structure-Guided Discovery of Novel Dual-Site FEM1B Ligands and Assessment of Their Use in Targeted Protein Degradation.

Targeted protein degradation (TPD) represents a promising approach for eliminating disease-causing proteins beyond traditional inhibition. However, the reliance on a limited number of E3 ligases remains a major bottleneck. FEM1B, an E3 ligase substrate receptor with multiple substrate-recognition modes, represents an attractive but underexplored TPD platform. In this study, through a structure-guided approach exploiting the spatial proximity between a druggable C-degron-binding pocket and a second binding site containing a reactive cysteine, we developed FL47, a dual-site ligand that combines extensive noncovalent interactions with targeted covalent engagement. FL47 exhibits submicromolar affinity, robust cellular target engagement, and markedly reduced cytotoxicity relative to previously reported covalent recruiters. We further applied FL47 in the development of FEM1B-based PROTACs and incorporated a chemical endocytic prodrug strategy that markedly enhanced degradation activity. This work introduces a novel dual-site binding strategy for E3 ligase ligand discovery and broadens the potential toolbox for TPD applications.

Ling-xiang Xu, Ruyi Huang, Yuying Ma et al. · 0 citations
Jul 2026

Two Mechanisms One Molecule: Developing a 'Truly' Bifunctional Degrader Targeting Rpn13 and CRBN.

Targeted protein degradation (TPD) has emerged as a powerful strategy to eliminate disease-relevant proteins, yet current approaches remain largely constrained to hijacking ubiquitin ligases. We previously introduced ByeTACs, bifunctional molecules that directly recruit proteins to the proteasome for E-ligase independent degradation. Here, we report "Truly" degraders, a new class of dual-mechanism molecules that combine a ligand for the proteasomal receptor Rpn13 with a ligand for cereblon (CRBN) to simultaneously engage both ubiquitin-independent and ubiquitin-dependent degradation pathways. Structure-guided design identified an optimal linker length that supports efficient substrate processing, with the PEG4 derivative (Truly-4) inducing robust depletion of both Rpn13 and CRBN in several cancer cell types. Remarkably, Truly-4 is the first noncovalent small molecule shown to degrade full-length Rpn13, a target previously approached using covalent or domain-restricted strategies. Mechanistic studies confirmed that degradation of Rpn13 proceeds via CRBN-dependent E3 ligase activity, whereas CRBN degradation occurs through an E-ligase independent process, consistent with a ByeTAC mechanism. Importantly, Truly-4 induces selective cytotoxicity in hematologic and solid cancer cell lines but not in healthy cells, despite comparable Rpn13 depletion, indicating that dual degradation can uncouple target engagement from toxicity. These findings establish a generalizable framework for engineering bifunctional degraders that program the proteasome to execute parallel degradation mechanisms and highlight proteasome receptors as druggable nodes for selective destruction of disease-relevant proteins.

Cody A. Loy, Shawn E Vinogradsky, Darci J. Trader · 0 citations
Open access Aug 2026

DCAF11-dependent molecular glue degrader activated by glutathionylation.

It is established that metabolically activated compounds can redirect E3 ligase function, thereby expanding the scope of targeted protein degradation and chemically induced proximity.

Hojong Yoon, Franziska Wachter, Katharine A Barrett et al. · 1 citation

We use cookies to run the site and, with your consent, for analytics and to show ads. See our Cookie Policy.