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3'-Phosphorylated nucleotides are tight binding inhibitors of nucleoside diphosphate kinase activity

B Schneider1, Y W Xu, J Janin

  • 1Unité de Régulation Enzymatique des Activités Cellulaires, CNRS URA 1773, Institut Pasteur, Paris, France.

Insights

Nucleoside diphosphate (NDP) kinase plays a role in cancer. Adenosine 3′-phosphate 5′-phosphosulfate (PAPS) binds tightly to NDP kinase, offering potential for new drug design targeting this enzyme.

Area of Science:

  • Biochemistry
  • Enzymology
  • Structural Biology

Background:

  • Nucleoside diphosphate (NDP) kinase is crucial for nucleotide phosphorylation.
  • NDP kinase is implicated in malignant tumors and oncogene activation.
  • Previous studies revealed unique nucleotide binding conformations in NDP kinase.

Purpose of the Study:

  • To investigate the binding and inhibitory potential of nucleotide analogues.
  • To explore NDP kinase interactions with 5'-phosphoadenosine 3'-phosphate (PAP) and adenosine 3'-phosphate 5'-phosphosulfate (PAPS).
  • To characterize the structural basis of PAPS binding to NDP kinase.

Main Methods:

  • Intrinsic protein fluorescence spectroscopy was used to study binding and inhibition.
  • Kinetic assays were performed to determine inhibition constants (KI).
  • X-ray crystallography was employed to determine the structure of the NDP kinase-PAPS complex.

Main Results:

  • PAPS exhibited a lower dissociation constant (KD) than ADP, indicating tighter binding.
  • PAPS acted as a competitive inhibitor of NDP kinase.
  • The crystal structure revealed a novel nucleotide binding mode with PAPS's 3'-phosphate near the catalytic histidine.

Conclusions:

  • PAPS is a high-affinity ligand and competitive inhibitor of NDP kinase.
  • The unique binding mode of PAPS provides insights into NDP kinase active site.
  • PAPS serves as a valuable scaffold for designing high-affinity drugs targeting NDP kinases.

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