ArticleThe Journal of biological chemistry2026
The nucleotide exchange factor, GrpE, modulates substrate affinity by interaction of its N-terminal tails with the DnaK substrate-binding domain.
Article in The Journal of biological chemistry, 2026. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Not yet cited in PubMed.
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Abstract
The 70-kDa heat shock proteins assist in protein folding through allosteric communication between their nucleotide-binding domains and substrate-binding domains (SBDs), which are connected by an interdomain linker. Their nucleotide-dependent allosteric cycle is modulated by ligand binding and cochaperones, including nucleotide exchange factors. GrpE, the nucleotide exchange factor for the Escherichia coli 70-kDa heat shock protein, DnaK, has been proposed to have a dual effect on the chaperone, facilitating the exchange of ADP for ATP in the nucleotide-binding domain 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 built on these findings and provide new evidence supporting 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 and provides a direct mechanism to facilitate substrate release in addition to the potential more indirect allosteric mechanism arising from a GrpE-SBD conformational shift. Moreover, we identified the DnaK binding motif in GrpE's N-terminal disordered tails as
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