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Structural Insights into the Inhibition of Cytosolic 5′-Nucleotidase II (cN-II) by Ribonucleoside 5′-Monophosphate Analogues

Cytosolic 5′-nucleotidase II (cN-II) regulates the intracellular nucleotide pools within the cell by catalyzing the dephosphorylation of 6-hydroxypurine nucleoside 5′-monophosphates. Beside this physiological function, high level of cN-II expression is correlated with abnormal patient outcome when t...

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Autores principales: Gallier, Franck, Lallemand, Perrine, Meurillon, Maïa, Jordheim, Lars P., Dumontet, Charles, Périgaud, Christian, Lionne, Corinne, Peyrottes, Suzanne, Chaloin, Laurent
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2011
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3234209/
https://www.ncbi.nlm.nih.gov/pubmed/22174667
http://dx.doi.org/10.1371/journal.pcbi.1002295
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author Gallier, Franck
Lallemand, Perrine
Meurillon, Maïa
Jordheim, Lars P.
Dumontet, Charles
Périgaud, Christian
Lionne, Corinne
Peyrottes, Suzanne
Chaloin, Laurent
author_facet Gallier, Franck
Lallemand, Perrine
Meurillon, Maïa
Jordheim, Lars P.
Dumontet, Charles
Périgaud, Christian
Lionne, Corinne
Peyrottes, Suzanne
Chaloin, Laurent
author_sort Gallier, Franck
collection PubMed
description Cytosolic 5′-nucleotidase II (cN-II) regulates the intracellular nucleotide pools within the cell by catalyzing the dephosphorylation of 6-hydroxypurine nucleoside 5′-monophosphates. Beside this physiological function, high level of cN-II expression is correlated with abnormal patient outcome when treated with cytotoxic nucleoside analogues. To identify its specific role in the resistance phenomenon observed during cancer therapy, we screened a particular class of chemical compounds, namely ribonucleoside phosphonates to predict them as potential cN-II inhibitors. These compounds incorporate a chemically and enzymatically stable phosphorus-carbon linkage instead of a regular phosphoester bond. Amongst them, six compounds were predicted as better ligands than the natural substrate of cN-II, inosine 5′-monophosphate (IMP). The study of purine and pyrimidine containing analogues and the introduction of chemical modifications within the phosphonate chain has allowed us to define general rules governing the theoretical affinity of such ligands. The binding strength of these compounds was scrutinized in silico and explained by an impressive number of van der Waals contacts, highlighting the decisive role of three cN-II residues that are Phe 157, His 209 and Tyr 210. Docking predictions were confirmed by experimental measurements of the nucleotidase activity in the presence of the three best available phosphonate analogues. These compounds were shown to induce a total inhibition of the cN-II activity at 2 mM. Altogether, this study emphasizes the importance of the non-hydrolysable phosphonate bond in the design of new competitive cN-II inhibitors and the crucial hydrophobic stacking promoted by three protein residues.
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spelling pubmed-32342092011-12-15 Structural Insights into the Inhibition of Cytosolic 5′-Nucleotidase II (cN-II) by Ribonucleoside 5′-Monophosphate Analogues Gallier, Franck Lallemand, Perrine Meurillon, Maïa Jordheim, Lars P. Dumontet, Charles Périgaud, Christian Lionne, Corinne Peyrottes, Suzanne Chaloin, Laurent PLoS Comput Biol Research Article Cytosolic 5′-nucleotidase II (cN-II) regulates the intracellular nucleotide pools within the cell by catalyzing the dephosphorylation of 6-hydroxypurine nucleoside 5′-monophosphates. Beside this physiological function, high level of cN-II expression is correlated with abnormal patient outcome when treated with cytotoxic nucleoside analogues. To identify its specific role in the resistance phenomenon observed during cancer therapy, we screened a particular class of chemical compounds, namely ribonucleoside phosphonates to predict them as potential cN-II inhibitors. These compounds incorporate a chemically and enzymatically stable phosphorus-carbon linkage instead of a regular phosphoester bond. Amongst them, six compounds were predicted as better ligands than the natural substrate of cN-II, inosine 5′-monophosphate (IMP). The study of purine and pyrimidine containing analogues and the introduction of chemical modifications within the phosphonate chain has allowed us to define general rules governing the theoretical affinity of such ligands. The binding strength of these compounds was scrutinized in silico and explained by an impressive number of van der Waals contacts, highlighting the decisive role of three cN-II residues that are Phe 157, His 209 and Tyr 210. Docking predictions were confirmed by experimental measurements of the nucleotidase activity in the presence of the three best available phosphonate analogues. These compounds were shown to induce a total inhibition of the cN-II activity at 2 mM. Altogether, this study emphasizes the importance of the non-hydrolysable phosphonate bond in the design of new competitive cN-II inhibitors and the crucial hydrophobic stacking promoted by three protein residues. Public Library of Science 2011-12-08 /pmc/articles/PMC3234209/ /pubmed/22174667 http://dx.doi.org/10.1371/journal.pcbi.1002295 Text en Gallier et al. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Gallier, Franck
Lallemand, Perrine
Meurillon, Maïa
Jordheim, Lars P.
Dumontet, Charles
Périgaud, Christian
Lionne, Corinne
Peyrottes, Suzanne
Chaloin, Laurent
Structural Insights into the Inhibition of Cytosolic 5′-Nucleotidase II (cN-II) by Ribonucleoside 5′-Monophosphate Analogues
title Structural Insights into the Inhibition of Cytosolic 5′-Nucleotidase II (cN-II) by Ribonucleoside 5′-Monophosphate Analogues
title_full Structural Insights into the Inhibition of Cytosolic 5′-Nucleotidase II (cN-II) by Ribonucleoside 5′-Monophosphate Analogues
title_fullStr Structural Insights into the Inhibition of Cytosolic 5′-Nucleotidase II (cN-II) by Ribonucleoside 5′-Monophosphate Analogues
title_full_unstemmed Structural Insights into the Inhibition of Cytosolic 5′-Nucleotidase II (cN-II) by Ribonucleoside 5′-Monophosphate Analogues
title_short Structural Insights into the Inhibition of Cytosolic 5′-Nucleotidase II (cN-II) by Ribonucleoside 5′-Monophosphate Analogues
title_sort structural insights into the inhibition of cytosolic 5′-nucleotidase ii (cn-ii) by ribonucleoside 5′-monophosphate analogues
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3234209/
https://www.ncbi.nlm.nih.gov/pubmed/22174667
http://dx.doi.org/10.1371/journal.pcbi.1002295
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