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Biology subjects

Wildsmith, G.

Publications and source records attributed to Wildsmith, G..

2 recordsLinked to original sources

Mechanism of K63-linked polyubiquitin recognition and cleavage by the BRCA1-A complex

Deubiquitylases modulate cellular processes by cleaving monoubiquitin or polyubiquitin chains. The ARISC-RAP80 complex partners with BRCA1-BARD1 to form the BRCA1-A super-complex, which recognizes K63-linked ubiquitin chains at DNA damage sites. ARISC-RAP80 contains multiple ubiquitin-binding sites, yet how these influence recognition and cleavage of K63-polyubiquitylated substrates remains unknown. We discover that a composite three-subunit interface allows ARISC-RAP80 to position K63-linked polyubiquitin chains in its catalytic site. Substrate recognition is further supported by RAP80 and non-catalytic ubiquitin-binding sites that impose a compact conformation to K63-polyubiquitylated substrates. This mechanism exploits the inherent flexibility of long ubiquitin chains and differs considerably from other deubiquitylases. Structure-guided mutagenesis validate ubiquitin chain interactions, and cell-based assays demonstrate a functional role of the observed interfaces in chromatin recruitment. Our findings define mechanisms of polyubiquitin chain decoding and cleavage by ARISC-RAP80, linking ubiquitin reading and erasing functions to BRCA1-A mediated DNA damage responses.

biochemistry↗

Mechanism of Interaction Between the Transactivation Domain of N-MYC and the DNA-Binding Surface of TFIIIC5

N-myc is a member of the myc family of transcription factors, which are powerful drivers of cellular growth and consequently, important oncoproteins. N-myc interacts with many factors and complexes to affect transcription. One such complex is the RNA Polymerase III assembly factor, TFIIIC, a six-member complex that is essential for the transcription of small, structured RNA. TFIIIC and N-myc mutually restrict each others chromatin association, and their complex contributes to quality control in mRNA transcription. We previously demonstrated that the largely intrinsically disordered transactivation domain of N-myc interacts directly with a sub-complex of TFIIIC, {tau}A. Structural studies by others show that DNA binding of {tau}A is largely mediated by TFIIIC3, which suggests that TFIIIC5 is at most a secondary binding site for DNA. Here we identified the DNA binding domain of TFIIIC5 as a key binding site for N-myc. We used an integrated approach combining NMR, HDX mass spectrometry, pull-downs and biophysical assays to elucidate the molecular basis of the interaction. Two sequences in the transactivation domain of N-myc bind to the DNA binding interface of TFIIIC5. AlphaFold modelling predicts a high-confidence binding mode for the higher affinity N-myc motif that overlaps with the predicted intramolecular binding site of the C-terminal acidic plug of TFIIIC5, removal of which enhances the binding of N-myc. The same two motifs in N-myc also interact with Aurora-A kinase, which competes with N-myc for TFIIIC binding during S-phase. This model elucidates how the N-myc:TFIIIC5 interaction competes with other interactions, providing a basis for their mutual censoring function and regulation. GRAPHICAL ABSTRACT O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=125 SRC="FIGDIR/small/619198v1_ufig1.gif" ALT="Figure 1"> View larger version (33K): org.highwire.dtl.DTLVardef@1e4a76aorg.highwire.dtl.DTLVardef@ab349corg.highwire.dtl.DTLVardef@af85dorg.highwire.dtl.DTLVardef@37dd2f_HPS_FORMAT_FIGEXP M_FIG C_FIG

molecular biology↗