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Updated: Nov 2, 2025

Author Spotlight: Evaluating Biophysical Assays for Characterizing PROTACS Ternary Complexes
Published on: January 12, 2024
Structural variation of protein-ligand complexes of the first bromodomain of BRD4
Ellen E Guest1, Stephen D Pickett2, Jonathan D Hirst1
1School of Chemistry, University of Nottingham, University Park, Nottingham, NG7 2RD, UK. jonathan.hirst@nottingham.ac.uk.
Abstract:
The bromodomain-containing protein 4 (BRD4), a member of the bromodomain and extra-terminal domain (BET) family, plays a key role in several diseases, especially cancers. With increased interest in BRD4 as a therapeutic target, many X-ray crystal structures of the protein in complex with small molecule inhibitors are publicly available over the recent decade. In this study, we use this structural information to investigate the conformations of the first bromodomain (BD1) of BRD4. Structural alignment of 297 BRD4-BD1 complexes shows a high level of similarity between the structures of BRD4-BD1, regardless of the bound ligand. We employ WONKA, a tool for detailed analyses of protein binding sites, to compare the active site of over 100 of these crystal structures. The positions of key binding site residues show a high level of conformational similarity, with the exception of Trp81. A focused analysis on the highly conserved water network in the binding site of BRD4-BD1 is performed to identify the positions of these water molecules across the crystal structures. The importance of the water network is illustrated using molecular docking and absolute free energy perturbation simulations. 82% of the ligand poses were better predicted when including water molecules as part of the receptor. Our analysis provides guidance for the design of new BRD4-BD1 inhibitors and the selection of the best structure of BRD4-BD1 to use in structure-based drug design, an important approach for faster and more cost-efficient lead discovery.
Insights
Bromodomain-containing protein 4 (BRD4) BD1 structures are highly similar, guiding new inhibitor design. Including water molecules improves ligand pose prediction in structure-based drug design for BRD4.
Area of Science:
- Structural biology
- Medicinal chemistry
- Computational drug discovery
Background:
- Bromodomain-containing protein 4 (BRD4), a BET family member, is a key target in cancer therapy.
- Numerous X-ray crystal structures of BRD4 inhibitors are available, offering insights into its binding site.
- Understanding BRD4's conformational landscape is crucial for effective drug design.
Purpose of the Study:
- To investigate the conformational diversity of the first bromodomain (BD1) of BRD4 using available crystal structures.
- To analyze the conserved water network within the BRD4-BD1 binding site and its role in ligand binding.
- To provide guidance for structure-based drug design of novel BRD4 inhibitors.
Main Methods:
- Structural alignment of 297 BRD4-BD1 complexes.
- Analysis of protein-ligand binding sites using the WONKA tool.
- Molecular docking and absolute free energy perturbation simulations incorporating water molecules.
Main Results:
- High conformational similarity observed across BRD4-BD1 structures, irrespective of the bound ligand.
- Key binding site residues exhibit conserved positions, with Trp81 as a notable exception.
- Inclusion of water molecules in simulations improved ligand pose prediction by 82%.
Conclusions:
- BRD4-BD1 maintains a consistent conformation, facilitating structure-based inhibitor design.
- The conserved water network plays a significant role in BRD4-BD1 ligand interactions.
- This study offers valuable insights for selecting optimal BRD4-BD1 structures for drug discovery efforts.
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