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Hope, I.

Publications and source records attributed to Hope, I..

2 recordsLinked to original sources

FragLite mapping to identify the BRD4 recruitment site of P-TEFb

The eukaryotic positive transcription elongation factor b (P-TEFb), composed of CDK9 and cyclin T, plays a central role in regulating RNA polymerase II (RNAPII). Phosphorylation of the RNAPII C-terminal domain (CTD) by P-TEFb promotes promoter proximal pause release and enables productive transcriptional elongation across many genes. Cyclin T mediates protein-protein interactions, several of which have been structurally characterised, that help to recruit and fine-tune P-TEFb activity to ensure a tight regulation of transcription. We have previously reported a set of halogenated chemical fragments termed FragLites that can prospectively identify protein interaction sites. Here, we report the FragLite map of cyclin T2, revealing binding sites corresponding to structurally defined cyclin T partners CDK9, AFF4, and HIV-1 Tat. Furthermore, we demonstrate the utility of FragLites in identifying a previously uncharacterised BRD4 binding site. By integrating FragLite clustering with biophysical analyses and AlphaFold3 modelling, we delineate the cyclin T-BRD4 interface. These analyses provide a comprehensive, chemically enriched fragment map highlighting functionally relevant sites to support future probe and modulator development to selectively target P-TEFb.

biophysics↗

Crystallographic fragment screening of CDK2-cyclin A: FragLites map sites of protein-protein interaction

Protein-protein interaction sites (PPIs) are potentially more selective therapeutic binding sites than protein substrate binding sites. PPIs include distinct regions frequently called "hotspots," sites of key amino acid interactions. Prospective identification of these hotspots through X-ray crystallographic screening could assist in the identification of separation of function mutants for experimental validation, enhance confidence in AI-generated multiprotein complex predictions and accelerate development of selective chemical probes. To explore these applications, we utilize the FragLite library to examine the binding surfaces of CDK2-cyclin A. The many protein- and peptide-CDK2-cyclin A complexes that have been structurally characterised make this complex an appropriate test case. We show that FragLites comprehensively map both known sites of protein-protein interaction on CDK2-cyclin A and identify a possible uncharacterised site, providing a structural method toward directing mechanistic studies and providing starting points for chemical probe design.

biophysics↗