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Dinh, H. H.

Publications and source records attributed to Dinh, H. H..

3 recordsLinked to original sources

BRCA1 promotes homologous recombination through separable DNA and RAD51 binding activities within its disordered region.

The breast and ovarian tumor suppressor BRCA1 heterodimerizes with BARD1 to promote DNA double-strand break repair by homologous recombination (HR) and to protect stressed DNA replication forks against nuclease attack. The large, intrinsically disordered central region of BRCA1 harbors binding sites for DNA and multiple repair factors, but its lack of stable structure has hindered mechanistic dissection of these activities. Using biochemical mapping and NMR spectroscopy, we delineate the DNA binding and RAD51 interaction interfaces within this region and construct separation-of-function mutants that selectively ablate each activity. Both DNA binding and RAD51 interaction are required for BRCA1-BARD1 to promote RAD51-mediated DNA strand invasion, and DNA binding also contributes to BLM-DNA2 end resection. These findings provide mechanistic insights into how individual ligand binding activities within BRCA1 contribute to genome maintenance.

biochemistry↗

Intrinsically disordered SERBP1 regulates translation through topology-driven G-quadruplex recognition.

Serpine mRNA-binding protein 1 (SERBP1) is an intrinsically disordered RNA-binding protein that regulates translation and ribosome biogenesis through interactions with ribosomes and other molecular complexes. Despite its regulatory importance and implication in cancer development, the molecular basis of SERBP1 RNA recognition remains poorly understood. Here, we characterize the G-quadruplex (G4)-binding properties of SERBP1. Using NMR spectroscopy and biophysical assays, we show that SERBP1 binds parallel G4s, both RNA and DNA, with low micromolar affinity through a conserved mechanism. Molecular dynamics and docking simulations reveal an encircling mechanism in which the RGG box wraps around the G4 while downstream C-terminal serine residues stabilize the complex through hydrogen bonding. Phosphomimetic mutations of key serines disrupt this stabilization and reduce binding affinity, identifying phosphorylation as a regulatory switch for SERBP1 activity. Recognition is driven by G4 topology rather than nucleotide sequence, establishing SERBP1 as a broad-specificity G4-binding protein. We further demonstrate that SERBP1 regulates mTOR expression in glioblastoma cell lines through G4 elements in the mTOR 5 UTR, and that SERBP1 depletion synergizes with mTOR inhibition to reduce cell growth. These results establish SERBP1 as a G4 adaptor protein and represent, to our knowledge, the first detailed characterization of G4 recognition by a fully disordered domain, providing a molecular framework for targeting SERBP1-G4 interactions in cancer. Significance StatementSERBP1 is overexpressed in multiple cancers and regulates key cellular processes, yet how it recognizes its RNA targets has remained unclear. We show that SERBP1 binds G-quadruplex structures through an encircling mechanism in which its RGG box and adjacent C-terminal serine residues lock around the G4 topology, and that phosphorylation of these serines acts as a switch to modulate binding. Recognition is driven by G4 topology rather than nucleotide sequence, positioning SERBP1 as a general G4 adaptor that recruits helicases to resolve these structures and license translation. We demonstrate this principle in glioblastoma, where SERBP1 regulates mTOR expression through direct recognition of G4 elements in the mTOR 5 UTR, and its depletion synergizes with mTOR inhibition. These findings provide the first molecular characterization of G4 recognition by a fully disordered domain and establish a direct link between SERBP1-G4 interactions and cancer-relevant translational regulation.

biophysics↗

RAD52 and RPA act in a concert promoting inverse RNA strand exchange

Recent studies in eukaryotes have revealed an important role of RNA in DNA repair and identified the RAD52 protein as a central player in RNA-dependent repair of DNA. In vitro, RAD52 promotes inverse RNA strand exchange between dsDNA and homologous RNA. This reaction is strongly stimulated by the RAD52 partner, replication protein A (RPA). Here, using NMR and biochemical methods we investigated the mechanism of this stimulation. We identified two RPA-binding sites in the unstructured RAD52 C-terminal domain (CTD), which mediate interaction with RPA70 and RPA32 subunits. These interactions are critical for stimulation of inverse RNA strand exchange. Furthermore, we showed that stimulation of inverse RNA strand exchange requires formation of an RPA-RNA complex that strengthens the RPA-RAD52 interaction and serves to deliver RNA to the RAD52-dsDNA complex for strand exchange. These results elucidate the mechanism of novel inverse RNA strand exchange activity of RAD52 and the role of RAD52-RPA interaction in RNA-dependent DNA repair.

biochemistry↗