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April 23, 2026ACS Sensors4 citationsOpen Access

Proximity Binding Assay for PROTAC Ternary Complex Analysis

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IPIrene PonzoASAlice SoldàCCCharlotte Crowe

Key Points

  • To develop a proximity binding assay for analyzing binary and ternary interactions of protein complexes relevant to targeted protein degradation.
  • Utilized a Y-shaped DNA scaffold to tether proteins for proximity-based analysis.
  • Employed fluorescence energy transfer (FRET) and fluorescence quenching to detect interactions.
  • Ran automated workflows for real-time sensor data from small sample sizes.
  • Successfully measured the formation of ternary complexes involving PROTACs and target proteins.
  • Demonstrated the ability to analyze binding kinetics in a multiplexed format.
  • Highlighted the potential for improving PROTAC design and efficacy in drug development.

Abstract

The engineered formation of ternary complexes, in which two proteins are bridged by small molecules such as PROTACs or molecular glues, is a prerequisite for the targeted enzymatic degradation of pathogenic proteins; however, the combined analysis of these ternary interactions during the drug discovery process remains challenging. Here, we introduce a proximity binding assay for the simultaneous measurement of binary and ternary interaction kinetics on a biosensor surface. Target proteins and the substrate binding subunit of ubiquitin E3 ligase are tethered to mobile swivel arms of a Y-shaped DNA scaffold. The Y-structure induces spatial proximity between the proteins and presents them to PROTAC analytes flown across the sensor. PROTAC-induced ternary complex formation is measured by fluorescence energy transfer (FRET), while binary interactions are detected by fluorescence quenching. The assay is applied to cereblon (CRBN) and von Hippel-Lindau (VHL) as E3 ligase substrate receptors, a range of compounds including AT1, MZ1, dBETs, and ARV-825 as PROTACs, and the two bromodomains of BRD2, BRD3, BRD4, and BRDT proteins as targets. Automated workflows enable the measurement of 384 real-time sensorgrams in a single run using picomole sample quantities. The insights into proximity-mediated binding kinetics can enable the development of PROTACs and molecular glues with improved properties for targeted protein degradation.

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Cite This Study

Ponzo et al. (2026) studied this question.

synapsesocial.com/papers/69e9b9e385696592c86ec6achttps://doi.org/10.1021/acssensors.5c04944
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Proximity Biosensor Assay for PROTAC Ternary Complex Analysis2024 · 3 citations
  2. 2Linker-Driven Sampling of PROTAC-Induced Ternary Complexes2026 · 1 citations
  3. 3Interplay of PROTAC Complex Dynamics for Undruggable Targets: Insights into Ternary Complex Behavior and Linker Design2024 · 10 citations
  4. 4Benchmarking Deep Learning for <scp>PROTAC</scp> Ternary Complex Prediction2026
  5. 5Construction of PROTAC-Mediated Ternary Complex Structure Distribution Profiles Using Extensive Conformational Search2024 · 3 citations