4h5v Citations

New crystal structures of HSC-70 ATP binding domain confirm the role of individual binding pockets and suggest a new method of inhibition.

Biochimie 108 186-92 (2015)
Related entries: 4h5n, 4h5r, 4h5t, 4h5w

Cited: 8 times
EuropePMC logo PMID: 25433210

Abstract

In recent years the chaperone HSC-70 has become a target for drug design with a strong focus in anticancer therapies. In our study of possible inhibitors of HSC-70 enzymatic activity we screened compounds by NMR as well as X-ray crystallography. As part of our screening efforts we crystallized the human HSC-70 ATP binding domain and obtained novel crystal forms in addition to known structures. The new crystal structures highlight the mobility of the entire domain previously described by NMR, which was linked to its chaperone activity but not yet demonstrated by X-ray crystallography. Conformational changes across the entire molecule have been elucidated in response to the binding of small molecule ligands and show a pattern of mobility consistent with postulated signal transduction modes between the nucleotide binding domain (NBD) and the substrate binding domain (SBD). In addition, two crystal structures contained glycerol bound at a new site. Binding studies performed with glycerol analogs proved inhibitory properties of the site, which were further characterized by isothermal calorimetry and in silico docking studies. The presence of two binding pockets enabled us to explore a novel method of inhibition by compounds that bridge the adjacent phosphate and glycerol binding sites. Finally, an example of such a bridged inhibitor is proposed.

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Articles citing this publication (7)

  1. Proteomic analysis of the human KEOPS complex identifies C14ORF142 as a core subunit homologous to yeast Gon7. Wan LC, Maisonneuve P, Szilard RK, Lambert JP, Ng TF, Manczyk N, Huang H, Laister R, Caudy AA, Gingras AC, Durocher D, Sicheri F. Nucleic Acids Res 45 805-817 (2017)
  2. The Plasmodium falciparum Hsp70-x chaperone assists the heat stress response of the malaria parasite. Day J, Passecker A, Beck HP, Vakonakis I. FASEB J 33 14611-14624 (2019)
  3. Disrupted Hydrogen-Bond Network and Impaired ATPase Activity in an Hsc70 Cysteine Mutant. O'Donnell JP, Marsh HM, Sondermann H, Sevier CS. Biochemistry 57 1073-1086 (2018)
  4. Biophysical Consequences of EVEN-PLUS Syndrome Mutations for the Function of Mortalin. Moseng MA, Nix JC, Page RC. J Phys Chem B 123 3383-3396 (2019)
  5. In silico characterisation, homology modelling and structure-based functional annotation of blunt snout bream (Megalobrama amblycephala) Hsp70 and Hsc70 proteins. Tran NT, Jakovlić I, Wang WM. J Anim Sci Technol 57 44 (2015)
  6. Hidden information on protein function in censuses of proteome foldedness. Cox D, Ang CS, Nillegoda NB, Reid GE, Hatters DM. Nat Commun 13 1992 (2022)
  7. Neutron crystallographic analysis of the nucleotide-binding domain of Hsp72 in complex with ADP. Yokoyama T, Fujii S, Ostermann A, Schrader TE, Nabeshima Y, Mizuguchi M. IUCrJ 9 562-572 (2022)