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Identification of novel RHPS4-derivative ligands with improved toxicological profiles and telomere-targeting activities

The pentacyclic acridinium salt RHPS4 (3,11-difluoro-6,8,13-trimethyl-8H-quino [4,3,2-kl] acridinium methosulfate, compound 1) is one of the most interesting DNA G-quadruplex binding molecules due to its high efficacy in tumor cell growth inhibition both in in vitro models and in vivo against human...

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Autores principales: Rizzo, Angela, Iachettini, Sara, Zizza, Pasquale, Cingolani, Chiara, Porru, Manuela, Artuso, Simona, Stevens, Malcolm, Hummersone, Marc, Biroccio, Annamaria, Salvati, Erica, Leonetti, Carlo
Formato: Online Artículo Texto
Lenguaje:English
Publicado: BioMed Central 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4193996/
https://www.ncbi.nlm.nih.gov/pubmed/25288403
http://dx.doi.org/10.1186/s13046-014-0081-x
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author Rizzo, Angela
Iachettini, Sara
Zizza, Pasquale
Cingolani, Chiara
Porru, Manuela
Artuso, Simona
Stevens, Malcolm
Hummersone, Marc
Biroccio, Annamaria
Salvati, Erica
Leonetti, Carlo
author_facet Rizzo, Angela
Iachettini, Sara
Zizza, Pasquale
Cingolani, Chiara
Porru, Manuela
Artuso, Simona
Stevens, Malcolm
Hummersone, Marc
Biroccio, Annamaria
Salvati, Erica
Leonetti, Carlo
author_sort Rizzo, Angela
collection PubMed
description The pentacyclic acridinium salt RHPS4 (3,11-difluoro-6,8,13-trimethyl-8H-quino [4,3,2-kl] acridinium methosulfate, compound 1) is one of the most interesting DNA G-quadruplex binding molecules due to its high efficacy in tumor cell growth inhibition both in in vitro models and in vivo against human tumor xenografts in combination with conventional chemotherapeutics. Despite compound 1 having desirable chemical and pharmaceutical properties, its potential as a therapeutic agent is compromised by off-target effects on cardiovascular physiology. In this paper we report a new series of structurally-related compounds which were developed in an attempt to minimize its off-target profile, but maintaining the same favorable chemical and pharmacological features of the lead compound. By performing a comparative analysis it was possible to identify which derivatives had the following properties: (i) to show a reduced capacity in respect to compound 1 to inhibit the hERG tail current tested in a patch clamp assay and/or to interact with the human recombinant β2 receptor; (ii) to maintain both a good G4-binding affinity and cancer cell selectivity; and (iii) to trigger DNA damage with specific telomere uncapping. These studies allowed us to identify a novel G4-stabilizing molecule, compound 8, being characterized by reduced off-target effects and potent telomere on-target properties compared to the prototypic compound 1. Moreover, compound 8 shares with compound 1 the same molecular mode of action and an anti-tumour activity specifically restricted to replicating cells, as evident with its particularly efficient activity in combination therapy with a topoisomerase I inhibitor. In conclusion, we have identified a new pentacyclic derivative 8 having suitable properties to be the focus of further investigations as a clinical candidate for cancer therapy.
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spelling pubmed-41939962014-10-12 Identification of novel RHPS4-derivative ligands with improved toxicological profiles and telomere-targeting activities Rizzo, Angela Iachettini, Sara Zizza, Pasquale Cingolani, Chiara Porru, Manuela Artuso, Simona Stevens, Malcolm Hummersone, Marc Biroccio, Annamaria Salvati, Erica Leonetti, Carlo J Exp Clin Cancer Res Research The pentacyclic acridinium salt RHPS4 (3,11-difluoro-6,8,13-trimethyl-8H-quino [4,3,2-kl] acridinium methosulfate, compound 1) is one of the most interesting DNA G-quadruplex binding molecules due to its high efficacy in tumor cell growth inhibition both in in vitro models and in vivo against human tumor xenografts in combination with conventional chemotherapeutics. Despite compound 1 having desirable chemical and pharmaceutical properties, its potential as a therapeutic agent is compromised by off-target effects on cardiovascular physiology. In this paper we report a new series of structurally-related compounds which were developed in an attempt to minimize its off-target profile, but maintaining the same favorable chemical and pharmacological features of the lead compound. By performing a comparative analysis it was possible to identify which derivatives had the following properties: (i) to show a reduced capacity in respect to compound 1 to inhibit the hERG tail current tested in a patch clamp assay and/or to interact with the human recombinant β2 receptor; (ii) to maintain both a good G4-binding affinity and cancer cell selectivity; and (iii) to trigger DNA damage with specific telomere uncapping. These studies allowed us to identify a novel G4-stabilizing molecule, compound 8, being characterized by reduced off-target effects and potent telomere on-target properties compared to the prototypic compound 1. Moreover, compound 8 shares with compound 1 the same molecular mode of action and an anti-tumour activity specifically restricted to replicating cells, as evident with its particularly efficient activity in combination therapy with a topoisomerase I inhibitor. In conclusion, we have identified a new pentacyclic derivative 8 having suitable properties to be the focus of further investigations as a clinical candidate for cancer therapy. BioMed Central 2014-10-06 /pmc/articles/PMC4193996/ /pubmed/25288403 http://dx.doi.org/10.1186/s13046-014-0081-x Text en © Rizzo et al.; licensee BioMed Central Ltd. 2014 This is an Open Access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly credited. The Creative Commons Public Domain Dedication waiver (http://creativecommons.org/publicdomain/zero/1.0/) applies to the data made available in this article, unless otherwise stated.
spellingShingle Research
Rizzo, Angela
Iachettini, Sara
Zizza, Pasquale
Cingolani, Chiara
Porru, Manuela
Artuso, Simona
Stevens, Malcolm
Hummersone, Marc
Biroccio, Annamaria
Salvati, Erica
Leonetti, Carlo
Identification of novel RHPS4-derivative ligands with improved toxicological profiles and telomere-targeting activities
title Identification of novel RHPS4-derivative ligands with improved toxicological profiles and telomere-targeting activities
title_full Identification of novel RHPS4-derivative ligands with improved toxicological profiles and telomere-targeting activities
title_fullStr Identification of novel RHPS4-derivative ligands with improved toxicological profiles and telomere-targeting activities
title_full_unstemmed Identification of novel RHPS4-derivative ligands with improved toxicological profiles and telomere-targeting activities
title_short Identification of novel RHPS4-derivative ligands with improved toxicological profiles and telomere-targeting activities
title_sort identification of novel rhps4-derivative ligands with improved toxicological profiles and telomere-targeting activities
topic Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4193996/
https://www.ncbi.nlm.nih.gov/pubmed/25288403
http://dx.doi.org/10.1186/s13046-014-0081-x
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