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Grp94 is the endoplasmic reticulum paralog of the hsp90 family of chaperones, which have been targeted for therapeutic intervention via their highly conserved ATP binding sites. The design of paralog-selective inhibitors relies on understanding the protein structural elements that drive higher affinity in selective inhibitors. Here, we determined the structures of Grp94 and Hsp90 in complex with the Grp94-selective inhibitor PU-H36, and of Grp94 with the non-selective inhibitor PU-H71. In Grp94, PU-H36 derives its higher affinity by utilizing Site 2, a Grp94-specific side pocket adjoining the ATP binding cavity, but in Hsp90 PU-H36 occupies Site 1, a side pocket that is accessible in all paralogs with which it makes lower affinity interactions. The structure of Grp94 in complex with PU-H71 shows only Site 1 binding. While changes in the conformation of helices 4 and 5 in the N-terminal domain occur when ligands bind to Site 1 of both Hsp90 and Grp94, large conformational shifts that also involve helix 1 are associated with the engagement of the Site 2 pocket in Grp94 only. Site 2 in Hsp90 is blocked and its helix 1 conformation is insensitive to ligand binding. To understand the role of helix 1 in ligand selectivity, we tested the binding of PU-H36 and other Grp94-selective ligands to chimeric Grp94/Hsp90 constructs. These studies show that helix 1 is the major determinant of selectivity for Site 2 targeted ligands, and also influences the rate of ATPase activity in Hsp90 paralogs.
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http://dx.doi.org/10.1101/2023.07.31.551342 | DOI Listing |
Nat Struct Mol Biol
July 2025
Department of Mechanistic Cell Biology, Center of Medical Biotechnology, Faculty of Biology, University of Duisburg-Essen, Essen, Germany.
Hsp70 and Hsp90 chaperones and their regulatory cochaperones are critical for maintaining protein homeostasis. Glucose-regulated protein 94 (GRP94), the sole Hsp90 chaperone in the secretory pathway of mammalian cells, is essential for the maturation of important secretory and transmembrane proteins. Without the requirement of cochaperones, the Hsp70 protein BiP controls regulatory conformational changes of GRP94, the structural basis of which has remained elusive.
View Article and Find Full Text PDFHeat Shock Protein 90 (HSP90) is a critical molecular chaperone that exists as two cytosolic paralogs, HSP90α and HSP90β, which share high sequence identity but may perform non-redundant functions . Loss of HSP90α in mice results in progressive rod photoreceptor degeneration despite normal retinal development and expression of HSP90β. To investigate whether HSP90β can substitute for HSP90α in photoreceptors, we generated adeno-associated virus (AAV) vectors expressing HA-tagged HSP90α or HSP90β under the control of a short rhodopsin promoter.
View Article and Find Full Text PDFMol Cancer Res
September 2025
Urologic Oncology Branch, Center for Cancer Research, National Cancer Institute, National Institutes of Health, Bethesda, Maryland.
Unlabelled: TRAP1, the mitochondrial isoform of HSP90, has emerged as a key regulator of cancer cell metabolism, yet the mechanisms by which it rewires nutrient utilization remain poorly understood. We previously reported that TRAP1 loss increases glutamine (Gln) dependency of mitochondrial respiration following glucose (Glc) withdrawal. In this study, we investigate how TRAP1 deletion impacts Glc metabolism and the mechanisms enabling Gln retention to support mitochondrial respiration via reductive carboxylation and the oxidative TCA cycle.
View Article and Find Full Text PDFNat Commun
April 2025
Department of Biochemistry at Brandeis University, Waltham, MA, 02453, USA.
Hsp90 chaperones are a long-standing cancer drug target with numerous ATP-competitive inhibitors in clinical trials. Client proteins are transferred from Hsp70 to Hsp90 in a stepwise process of client delivery, loading, and trapping, but little is known about how inhibitors influence these steps. By examining the ER-resident BiP/Grp94 system (Hsp70/Hsp90 paralogs), we discover that some inhibitors allow BiP to push Grp94 into the client loading conformation, whereas other inhibitors block this conformational change and destabilize a BiP/client/Grp94 ternary complex.
View Article and Find Full Text PDFJ Invest Dermatol
September 2025
Department of Dermatology and Venereology, Aarhus University Hospital, Aarhus, Denmark.
HSP90, a molecular chaperone, has been identified as a drug target in inflammatory skin diseases. However, 4 different HSP90 isoforms (HSP90α, HSP90β, GRP94, and TRAP1) exist. Therefore, this study aimed to evaluate the functional role of the HSP90 isoforms in skin inflammation.
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