» Articles » PMID: 15606776

Mechanistic Studies on Bovine Cytosolic 5'-nucleotidase II, an Enzyme Belonging to the HAD Superfamily

Overview
Journal Eur J Biochem
Specialty Biochemistry
Date 2004 Dec 21
PMID 15606776
Citations 14
Authors
Affiliations
Soon will be listed here.
Abstract

Cytosolic 5'-nucleotidase/phosphotransferase specific for 6-hydroxypurine monophosphate derivatives (cN-II), belongs to a class of phosphohydrolases that act through the formation of an enzyme-phosphate intermediate. Sequence alignment with members of the P-type ATPases/L-2-haloacid dehalogenase superfamily identified three highly conserved motifs in cN-II and other cytosolic nucleotidases. Mutagenesis studies at specific amino acids occurring in cN-II conserved motifs were performed. The modification of the measured kinetic parameters, caused by conservative and nonconservative substitutions, suggested that motif I is involved in the formation and stabilization of the covalent enzyme-phosphate intermediate. Similarly, T249 in motif II as well as K292 in motif III also contribute to stabilize the phospho-enzyme adduct. Finally, D351 and D356 in motif III coordinate magnesium ion, which is required for catalysis. These findings were consistent with data already determined for P-type ATPases, haloacid dehalogenases and phosphotransferases, thus suggesting that cN-II and other mammalian 5'-nucleotidases are characterized by a 3D arrangement related to the 2-haloacid dehalogenase superfold. Structural determinants involved in differential regulation by nonprotein ligands and redox reagents of the two naturally occurring cN-II forms generated by proteolysis were ascertained by combined biochemical and mass spectrometric investigations. These experiments indicated that the C-terminal region of cN-II contains a cysteine prone to form a disulfide bond, thereby inactivating the enzyme. Proteolysis events that generate the observed cN-II forms, eliminating this C-terminal portion, may prevent loss of enzymic activity and can be regarded as regulatory phenomena.

Citing Articles

Metabolic Aspects of Adenosine Functions in the Brain.

Garcia-Gil M, Camici M, Allegrini S, Pesi R, Tozzi M Front Pharmacol. 2021; 12:672182.

PMID: 34054547 PMC: 8160517. DOI: 10.3389/fphar.2021.672182.


Cytosolic 5'-Nucleotidase II Is a Sensor of Energy Charge and Oxidative Stress: A Possible Function as Metabolic Regulator.

Pesi R, Allegrini S, Balestri F, Garcia-Gil M, Cividini F, Colombaioni L Cells. 2021; 10(1).

PMID: 33477638 PMC: 7831490. DOI: 10.3390/cells10010182.


Evidence for a Cross-Talk Between Cytosolic 5'-Nucleotidases and AMP-Activated Protein Kinase.

Camici M, Garcia-Gil M, Allegrini S, Pesi R, Tozzi M Front Pharmacol. 2021; 11:609849.

PMID: 33408634 PMC: 7781041. DOI: 10.3389/fphar.2020.609849.


Expanding the clinical relevance of the 5'-nucleotidase cN-II/NT5C2.

Jordheim L Purinergic Signal. 2018; 14(4):321-329.

PMID: 30362044 PMC: 6298924. DOI: 10.1007/s11302-018-9627-2.


Cytosolic 5'-Nucleotidase II Silencing in a Human Lung Carcinoma Cell Line Opposes Cancer Phenotype with a Concomitant Increase in p53 Phosphorylation.

Pesi R, Petrotto E, Colombaioni L, Allegrini S, Garcia-Gil M, Camici M Int J Mol Sci. 2018; 19(7).

PMID: 30037008 PMC: 6073589. DOI: 10.3390/ijms19072115.