Jul 2026· Journal of Proteome Research· Vol 25, pp. 4005 - 4017· 0 citations· 48 references
Medicine
TL;DR
The results reveal distinct ATP- and ADP-state dimer conformations that coexist in equilibrium, and demonstrate that the Hsc70 dimer population is structurally heterogeneous and depends on nucleotide state and cochaperone interactions.
Abstract
Heat shock cognate protein 70 (Hsc70) is a 71 kDa molecular chaperone belonging to the Hsp70 family of heat shock proteins. These proteins act as ATP-dependent molecular machines that assist protein folding under both physiological and stress conditions such as hypoxia, heat shock, and pH fluctuations. In addition to general chaperone functions, Hsc70 performs specialized roles, including uncoating clathrin-coated vesicles, facilitating protein transport into organelles, and targeting proteins for lysosomal degradation. Members of the Hsp70 family are known to form dimers and higher oligomers, but the structural organization and functional relevance of these assemblies remain poorly understood. Earlier studies also suggested that J-domain proteins (JDPs) can promote Hsp70 dimerization. In this study, we used chemical cross-linking, high-resolution Fourier transform mass spectrometry (FTMS), 15N isotopic labeling, and advanced data analysis to investigate the structural organization of Hsc70 dimers. Cross-link-derived distance restraints enabled structural modeling of Hsc70 monomers and dimers using AlphaLink2. Our results reveal distinct ATP- and ADP-state dimer conformations that coexist in equilibrium. In the presence of the cochaperone DnaJB1, we observed a shift in the dimer–monomer equilibrium, accompanied by enhanced ATP hydrolysis and formation of intermediate species. These findings demonstrate that the Hsc70 dimer population is structurally heterogeneous and depends on nucleotide state and cochaperone interactions.
These findings demonstrate that the conformational plasticity of HOP can be strategically exploited for targeted protein-protein interaction (PPI) disruption in cancer therapy.
Gagandeep Singh, T. Chaudhuri· Biochimica et Biophysica Act...· 0 citations
This chapter outlines experimental and computational strategies for MS-based analysis of the ubiquitin chaperone code, including di-glycine peptide enrichment, site identification, quantitative analysis, and validation.
Ayush Nigam, Prasun Kumar Bhunia, T. Basak et al.· Methods in Enzymology· 0 citations
A FRET-based approach to simultaneously monitor HSF1 conformational change and oligomeric state throughout activation and inactivation is developed and previously contradictory view on Hsp90’s role in HSF1 regulation is unify.
T. Owens, K. Schaefer, Trenton M. Peters-Clarke et al.· bioRxiv· 0 citations
In numerous neurodegenerative diseases known collectively as tauopathies, the microtubule‐associated protein tau forms fibrillar aggregates that are hallmarks of disease pathology. Tauopathies represent a substantial fraction of diseases associated with protein misfolding. Cellular chaperones known as small heat shock...
M. Cervantes, Maria K. Janowska, L. M. Tuttle et al.· Protein Science· 0 citations
It is shown that short nucleic acids containing Gquadruplex (G4) structure can also catalyze protein folding and uncovers a previously underappreciated role for nucleic acid in proteostasis and offers a new strategy for studying nucleic acid structure-function relationship at residue level.