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Structure-Based Virtual Screening of Novel Natural Alkaloid Derivatives as Potential Binders of h-telo and c-myc DNA G-Quadruplex Conformations

Several ligands can bind to the non-canonical G-quadruplex DNA structures thereby stabilizing them. These molecules can act as effective anticancer agents by stabilizing the telomeric regions of DNA or by regulating oncogene expression. In order to better interact with the quartets of G-quadruplex s...

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Autores principales: Rocca, Roberta, Moraca, Federica, Costa, Giosuè, Alcaro, Stefano, Distinto, Simona, Maccioni, Elias, Ortuso, Francesco, Artese, Anna, Parrotta, Lucia
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6272608/
https://www.ncbi.nlm.nih.gov/pubmed/25547724
http://dx.doi.org/10.3390/molecules20010206
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author Rocca, Roberta
Moraca, Federica
Costa, Giosuè
Alcaro, Stefano
Distinto, Simona
Maccioni, Elias
Ortuso, Francesco
Artese, Anna
Parrotta, Lucia
author_facet Rocca, Roberta
Moraca, Federica
Costa, Giosuè
Alcaro, Stefano
Distinto, Simona
Maccioni, Elias
Ortuso, Francesco
Artese, Anna
Parrotta, Lucia
author_sort Rocca, Roberta
collection PubMed
description Several ligands can bind to the non-canonical G-quadruplex DNA structures thereby stabilizing them. These molecules can act as effective anticancer agents by stabilizing the telomeric regions of DNA or by regulating oncogene expression. In order to better interact with the quartets of G-quadruplex structures, G-binders are generally characterized by a large aromatic core involved in π-π stacking. Some natural flexible cyclic molecules from Traditional Chinese Medicine have shown high binding affinity with G-quadruplex, such as berbamine and many other alkaloids. Using the structural information available on G-quadruplex structures, we performed a high throughput in silico screening of commercially available alkaloid derivative databases by means of a structure-based approach based on docking and molecular dynamics simulations against the human telomeric sequence d[AG(3)(T(2)AG(3))(3)] and the c-myc promoter structure. We identified 69 best hits reporting an improved theoretical binding affinity with respect to the active set. Among them, a berberine derivative, already known to remarkably inhibit telomerase activity, was related to a better theoretical affinity versus c-myc.
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spelling pubmed-62726082018-12-28 Structure-Based Virtual Screening of Novel Natural Alkaloid Derivatives as Potential Binders of h-telo and c-myc DNA G-Quadruplex Conformations Rocca, Roberta Moraca, Federica Costa, Giosuè Alcaro, Stefano Distinto, Simona Maccioni, Elias Ortuso, Francesco Artese, Anna Parrotta, Lucia Molecules Article Several ligands can bind to the non-canonical G-quadruplex DNA structures thereby stabilizing them. These molecules can act as effective anticancer agents by stabilizing the telomeric regions of DNA or by regulating oncogene expression. In order to better interact with the quartets of G-quadruplex structures, G-binders are generally characterized by a large aromatic core involved in π-π stacking. Some natural flexible cyclic molecules from Traditional Chinese Medicine have shown high binding affinity with G-quadruplex, such as berbamine and many other alkaloids. Using the structural information available on G-quadruplex structures, we performed a high throughput in silico screening of commercially available alkaloid derivative databases by means of a structure-based approach based on docking and molecular dynamics simulations against the human telomeric sequence d[AG(3)(T(2)AG(3))(3)] and the c-myc promoter structure. We identified 69 best hits reporting an improved theoretical binding affinity with respect to the active set. Among them, a berberine derivative, already known to remarkably inhibit telomerase activity, was related to a better theoretical affinity versus c-myc. MDPI 2014-12-24 /pmc/articles/PMC6272608/ /pubmed/25547724 http://dx.doi.org/10.3390/molecules20010206 Text en © 2014 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Rocca, Roberta
Moraca, Federica
Costa, Giosuè
Alcaro, Stefano
Distinto, Simona
Maccioni, Elias
Ortuso, Francesco
Artese, Anna
Parrotta, Lucia
Structure-Based Virtual Screening of Novel Natural Alkaloid Derivatives as Potential Binders of h-telo and c-myc DNA G-Quadruplex Conformations
title Structure-Based Virtual Screening of Novel Natural Alkaloid Derivatives as Potential Binders of h-telo and c-myc DNA G-Quadruplex Conformations
title_full Structure-Based Virtual Screening of Novel Natural Alkaloid Derivatives as Potential Binders of h-telo and c-myc DNA G-Quadruplex Conformations
title_fullStr Structure-Based Virtual Screening of Novel Natural Alkaloid Derivatives as Potential Binders of h-telo and c-myc DNA G-Quadruplex Conformations
title_full_unstemmed Structure-Based Virtual Screening of Novel Natural Alkaloid Derivatives as Potential Binders of h-telo and c-myc DNA G-Quadruplex Conformations
title_short Structure-Based Virtual Screening of Novel Natural Alkaloid Derivatives as Potential Binders of h-telo and c-myc DNA G-Quadruplex Conformations
title_sort structure-based virtual screening of novel natural alkaloid derivatives as potential binders of h-telo and c-myc dna g-quadruplex conformations
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6272608/
https://www.ncbi.nlm.nih.gov/pubmed/25547724
http://dx.doi.org/10.3390/molecules20010206
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