Cargando…

Ligand binding to telomeric G-quadruplex DNA investigated by funnel-metadynamics simulations

G-quadruplexes (G4s) are higher-order DNA structures typically present at promoter regions of genes and telomeres. Here, the G4 formation decreases the replicative DNA at each cell cycle, finally leading to apoptosis. The ability to control this mitotic clock, particularly in cancer cells, is fascin...

Descripción completa

Detalles Bibliográficos
Autores principales: Moraca, Federica, Amato, Jussara, Ortuso, Francesco, Artese, Anna, Pagano, Bruno, Novellino, Ettore, Alcaro, Stefano, Parrinello, Michele, Limongelli, Vittorio
Formato: Online Artículo Texto
Lenguaje:English
Publicado: National Academy of Sciences 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5358390/
https://www.ncbi.nlm.nih.gov/pubmed/28232513
http://dx.doi.org/10.1073/pnas.1612627114
_version_ 1782516222162632704
author Moraca, Federica
Amato, Jussara
Ortuso, Francesco
Artese, Anna
Pagano, Bruno
Novellino, Ettore
Alcaro, Stefano
Parrinello, Michele
Limongelli, Vittorio
author_facet Moraca, Federica
Amato, Jussara
Ortuso, Francesco
Artese, Anna
Pagano, Bruno
Novellino, Ettore
Alcaro, Stefano
Parrinello, Michele
Limongelli, Vittorio
author_sort Moraca, Federica
collection PubMed
description G-quadruplexes (G4s) are higher-order DNA structures typically present at promoter regions of genes and telomeres. Here, the G4 formation decreases the replicative DNA at each cell cycle, finally leading to apoptosis. The ability to control this mitotic clock, particularly in cancer cells, is fascinating and passes through a rational understanding of the ligand/G4 interaction. We demonstrate that an accurate description of the ligand/G4 binding mechanism is possible using an innovative free-energy method called funnel-metadynamics (FM), which we have recently developed to investigate ligand/protein interaction. Using FM simulations, we have elucidated the binding mechanism of the anticancer alkaloid berberine to the human telomeric G4 (d[AG(3)(T(2)AG(3))(3)]), computing also the binding free-energy landscape. Two ligand binding modes have been identified as the lowest energy states. Furthermore, we have found prebinding sites, which are preparatory to reach the final binding mode. In our simulations, the ions and the water molecules have been explicitly represented and the energetic contribution of the solvent during ligand binding evaluated. Our theoretical results provide an accurate estimate of the absolute ligand/DNA binding free energy ([Formula: see text] = −10.3 ± 0.5 kcal/mol) that we validated through steady-state fluorescence binding assays. The good agreement between the theoretical and experimental value demonstrates that FM is a most powerful method to investigate ligand/DNA interaction and can be a useful tool for the rational design also of G4 ligands.
format Online
Article
Text
id pubmed-5358390
institution National Center for Biotechnology Information
language English
publishDate 2017
publisher National Academy of Sciences
record_format MEDLINE/PubMed
spelling pubmed-53583902017-03-24 Ligand binding to telomeric G-quadruplex DNA investigated by funnel-metadynamics simulations Moraca, Federica Amato, Jussara Ortuso, Francesco Artese, Anna Pagano, Bruno Novellino, Ettore Alcaro, Stefano Parrinello, Michele Limongelli, Vittorio Proc Natl Acad Sci U S A PNAS Plus G-quadruplexes (G4s) are higher-order DNA structures typically present at promoter regions of genes and telomeres. Here, the G4 formation decreases the replicative DNA at each cell cycle, finally leading to apoptosis. The ability to control this mitotic clock, particularly in cancer cells, is fascinating and passes through a rational understanding of the ligand/G4 interaction. We demonstrate that an accurate description of the ligand/G4 binding mechanism is possible using an innovative free-energy method called funnel-metadynamics (FM), which we have recently developed to investigate ligand/protein interaction. Using FM simulations, we have elucidated the binding mechanism of the anticancer alkaloid berberine to the human telomeric G4 (d[AG(3)(T(2)AG(3))(3)]), computing also the binding free-energy landscape. Two ligand binding modes have been identified as the lowest energy states. Furthermore, we have found prebinding sites, which are preparatory to reach the final binding mode. In our simulations, the ions and the water molecules have been explicitly represented and the energetic contribution of the solvent during ligand binding evaluated. Our theoretical results provide an accurate estimate of the absolute ligand/DNA binding free energy ([Formula: see text] = −10.3 ± 0.5 kcal/mol) that we validated through steady-state fluorescence binding assays. The good agreement between the theoretical and experimental value demonstrates that FM is a most powerful method to investigate ligand/DNA interaction and can be a useful tool for the rational design also of G4 ligands. National Academy of Sciences 2017-03-14 2017-02-23 /pmc/articles/PMC5358390/ /pubmed/28232513 http://dx.doi.org/10.1073/pnas.1612627114 Text en Freely available online through the PNAS open access option.
spellingShingle PNAS Plus
Moraca, Federica
Amato, Jussara
Ortuso, Francesco
Artese, Anna
Pagano, Bruno
Novellino, Ettore
Alcaro, Stefano
Parrinello, Michele
Limongelli, Vittorio
Ligand binding to telomeric G-quadruplex DNA investigated by funnel-metadynamics simulations
title Ligand binding to telomeric G-quadruplex DNA investigated by funnel-metadynamics simulations
title_full Ligand binding to telomeric G-quadruplex DNA investigated by funnel-metadynamics simulations
title_fullStr Ligand binding to telomeric G-quadruplex DNA investigated by funnel-metadynamics simulations
title_full_unstemmed Ligand binding to telomeric G-quadruplex DNA investigated by funnel-metadynamics simulations
title_short Ligand binding to telomeric G-quadruplex DNA investigated by funnel-metadynamics simulations
title_sort ligand binding to telomeric g-quadruplex dna investigated by funnel-metadynamics simulations
topic PNAS Plus
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5358390/
https://www.ncbi.nlm.nih.gov/pubmed/28232513
http://dx.doi.org/10.1073/pnas.1612627114
work_keys_str_mv AT moracafederica ligandbindingtotelomericgquadruplexdnainvestigatedbyfunnelmetadynamicssimulations
AT amatojussara ligandbindingtotelomericgquadruplexdnainvestigatedbyfunnelmetadynamicssimulations
AT ortusofrancesco ligandbindingtotelomericgquadruplexdnainvestigatedbyfunnelmetadynamicssimulations
AT arteseanna ligandbindingtotelomericgquadruplexdnainvestigatedbyfunnelmetadynamicssimulations
AT paganobruno ligandbindingtotelomericgquadruplexdnainvestigatedbyfunnelmetadynamicssimulations
AT novellinoettore ligandbindingtotelomericgquadruplexdnainvestigatedbyfunnelmetadynamicssimulations
AT alcarostefano ligandbindingtotelomericgquadruplexdnainvestigatedbyfunnelmetadynamicssimulations
AT parrinellomichele ligandbindingtotelomericgquadruplexdnainvestigatedbyfunnelmetadynamicssimulations
AT limongellivittorio ligandbindingtotelomericgquadruplexdnainvestigatedbyfunnelmetadynamicssimulations