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Williams, R. V.

Publications and source records attributed to Williams, R. V..

2 recordsLinked to original sources

The nucleotide exchange factor, GrpE, modulates substrate affinity by interaction of its N-terminal tails with the DnaK substrate-binding domain.

The 70-kDa heat shock proteins (Hsp70s) assist in protein folding through allosteric communication between their nucleotide-binding domains (NBDs) and substrate-binding domains (SBDs), which are connected by an interdomain linker. Their nucleotide-dependent allosteric cycle is modulated by ligand binding and co-chaperones, including nucleotide exchange factors (NEFs). GrpE, the NEF for the E. coli Hsp70, DnaK, has been proposed to have a dual effect on the chaperone, facilitating the exchange of ADP for ATP in the NBD in a temperature-dependent fashion and promoting substrate release from the SBD. We recently reported NMR-based evidence that GrpE binding to DnaK has a direct structural effect on the SBD. Here, we expanded on these findings and obtained new evidence for a model in which the disordered N-terminal tails of GrpE facilitate peptide dissociation from the nucleotide-free DnaK/GrpE complex by transiently binding to the canonical substrate-binding site in the SBD. This GrpE/SBD interaction, while weak, is favored by the high local concentration of the tails around the SBD after complex formation. Moreover, we identified the DnaK binding motif in GrpEs N-terminal disordered tails as 17IIM19, which is conserved across many bacterial species. Excitingly, our data further suggest a mechanism for the temperature-dependence of GrpEs modulation of DnaKs refolding activity: as the temperature increases, unfolding of GrpEs coiled-coil weakens its contacts with the SBD, reducing N-terminal tail binding, and thus increasing DnaK affinity to substrates.

biochemistry↗

The cysteine-rich domain of SEP15, a selenoprotein co-chaperone of the ER chaperone, UDP-glucose:glycoprotein glucosyltransferase, adopts a novel fold

Proteins targeted to the secretory pathway are involved in a myriad of biological processes but can only do so when properly folded. Within the endoplasmic reticulum, glycoprotein folding is regulated by the enzyme UDP-glucose:glycoprotein glucosyltransferase (UGGT) and its oxidoreductase partner, the 15-kDa selenoprotein (SEP15 aka SELENOF). The interaction between these two chaperones is poorly understood, limiting understanding of their function. SEP15 is comprised of two domains, a C-terminal thioredoxin-like domain, the structure of which has been reported (PDB 2A4H), and an approximately 50-residue long N-terminal cysteine-rich domain (CRD), of unknown structure. Here, we use a combination of AlphaFold structural predictions and NMR spectroscopy to elucidate the structure of the SEP15 CRD, which mediates the interaction with UGGT. These data reveal that this domain forms a previously undescribed helical fold stabilized by three disulfide bonds between residues C10-C42, C21-C43, and C24-C39. Furthermore, our results validate our reported model of the UGGT/SEP15 complex and lay the foundation for future studies of its interaction with glycoprotein substrates.

biochemistry↗