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3'-Phosphorylated nucleotides are tight binding inhibitors of nucleoside diphosphate kinase activity
1Unité de Régulation Enzymatique des Activités Cellulaires, CNRS URA 1773, Institut Pasteur, Paris, France.
Abstract:
Nucleoside diphosphate (NDP) kinase catalyzes the phosphorylation of ribo- and deoxyribonucleosides diphosphates into triphosphates. NDP kinase is also involved in malignant tumors and was shown to activate in vitro transcription of the c-myc oncogene by binding to its NHE sequence. The structure of the complex of NDP kinase with bound ADP shows that the nucleotide adopts a different conformation from that observed in other phosphokinases with an internal H bond between the 3'-OH and the beta-O made free by the phosphate transfer. We use intrinsic protein fluorescence to investigate the inhibitory and binding potential of nucleotide analogues phosphorylated in 3'-OH position of the ribose to both wild type and F64W mutant NDP kinase from Dictyostelium discoideum. Due to their 3'-phosphate, 5'-phosphoadenosine 3'-phosphate (PAP) and adenosine 3'-phosphate 5'-phosphosulfate (PAPS) can be regarded as structural analogues of enzyme-bound ADP. The KD of PAPS (10 microM) is three times lower than the KD of ADP. PAPS also acts as a competitive inhibitor toward natural substrates during catalysis, with a KI in agreement with binding data. The crystal structure of the binary complex between Dictyostelium NDP kinase and PAPS was solved at 2.8-A resolution. It shows a new mode of nucleotide binding at the active site with the 3'-phosphate of PAPS located near the catalytic histidine, at the same position as the gamma-phosphate in the transition state. The sulfate group is directed toward the protein surface. PAPS will be useful for the design of high affinity drugs targeted to NDP kinases.
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.