Cargando…

Design, Synthesis, and Antiviral Activities of New Benzotriazole-Based Derivatives

Several human diseases are caused by enteroviruses and are currently clinically untreatable, pushing the research to identify new antivirals. A notable number of benzo[d][1,2,3]triazol-1(2)-yl derivatives were designed, synthesized, and in vitro evaluated for cytotoxicity and antiviral activity agai...

Descripción completa

Detalles Bibliográficos
Autores principales: Ibba, Roberta, Corona, Paola, Nonne, Francesca, Caria, Paola, Serreli, Gabriele, Palmas, Vanessa, Riu, Federico, Sestito, Simona, Nieddu, Maria, Loddo, Roberta, Sanna, Giuseppina, Piras, Sandra, Carta, Antonio
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10054465/
https://www.ncbi.nlm.nih.gov/pubmed/36986528
http://dx.doi.org/10.3390/ph16030429
_version_ 1785015677575233536
author Ibba, Roberta
Corona, Paola
Nonne, Francesca
Caria, Paola
Serreli, Gabriele
Palmas, Vanessa
Riu, Federico
Sestito, Simona
Nieddu, Maria
Loddo, Roberta
Sanna, Giuseppina
Piras, Sandra
Carta, Antonio
author_facet Ibba, Roberta
Corona, Paola
Nonne, Francesca
Caria, Paola
Serreli, Gabriele
Palmas, Vanessa
Riu, Federico
Sestito, Simona
Nieddu, Maria
Loddo, Roberta
Sanna, Giuseppina
Piras, Sandra
Carta, Antonio
author_sort Ibba, Roberta
collection PubMed
description Several human diseases are caused by enteroviruses and are currently clinically untreatable, pushing the research to identify new antivirals. A notable number of benzo[d][1,2,3]triazol-1(2)-yl derivatives were designed, synthesized, and in vitro evaluated for cytotoxicity and antiviral activity against a wide spectrum of RNA positive- and negative-sense viruses. Five of them (11b, 18e, 41a, 43a, 99b) emerged for their selective antiviral activity against Coxsackievirus B5, a human enteroviruses member among the Picornaviridae family. The EC(50) values ranged between 6 and 18.5 μM. Among all derivatives, compounds 18e and 43a were interestingly active against CVB5 and were selected to better define the safety profile on cell monolayers by transepithelial resistance test (TEER). Results indicated compound 18e as the hit compound to investigate the potential mechanism of action by apoptosis assay, virucidal activity test, and the time of addition assay. CVB5 is known to be cytotoxic by inducing apoptosis in infected cells; in this study, compound 18e was proved to protect cells from viral infection. Notably, cells were mostly protected when pre-treated with derivative 18e, which had, however, no virucidal activity. From the performed biological assays, compound 18e turned out to be non-cytotoxic as well as cell protective against CVB5 infection, with a mechanism of action ascribable to an interaction on the early phase of infection, by hijacking the viral attachment process.
format Online
Article
Text
id pubmed-10054465
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-100544652023-03-30 Design, Synthesis, and Antiviral Activities of New Benzotriazole-Based Derivatives Ibba, Roberta Corona, Paola Nonne, Francesca Caria, Paola Serreli, Gabriele Palmas, Vanessa Riu, Federico Sestito, Simona Nieddu, Maria Loddo, Roberta Sanna, Giuseppina Piras, Sandra Carta, Antonio Pharmaceuticals (Basel) Article Several human diseases are caused by enteroviruses and are currently clinically untreatable, pushing the research to identify new antivirals. A notable number of benzo[d][1,2,3]triazol-1(2)-yl derivatives were designed, synthesized, and in vitro evaluated for cytotoxicity and antiviral activity against a wide spectrum of RNA positive- and negative-sense viruses. Five of them (11b, 18e, 41a, 43a, 99b) emerged for their selective antiviral activity against Coxsackievirus B5, a human enteroviruses member among the Picornaviridae family. The EC(50) values ranged between 6 and 18.5 μM. Among all derivatives, compounds 18e and 43a were interestingly active against CVB5 and were selected to better define the safety profile on cell monolayers by transepithelial resistance test (TEER). Results indicated compound 18e as the hit compound to investigate the potential mechanism of action by apoptosis assay, virucidal activity test, and the time of addition assay. CVB5 is known to be cytotoxic by inducing apoptosis in infected cells; in this study, compound 18e was proved to protect cells from viral infection. Notably, cells were mostly protected when pre-treated with derivative 18e, which had, however, no virucidal activity. From the performed biological assays, compound 18e turned out to be non-cytotoxic as well as cell protective against CVB5 infection, with a mechanism of action ascribable to an interaction on the early phase of infection, by hijacking the viral attachment process. MDPI 2023-03-11 /pmc/articles/PMC10054465/ /pubmed/36986528 http://dx.doi.org/10.3390/ph16030429 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Ibba, Roberta
Corona, Paola
Nonne, Francesca
Caria, Paola
Serreli, Gabriele
Palmas, Vanessa
Riu, Federico
Sestito, Simona
Nieddu, Maria
Loddo, Roberta
Sanna, Giuseppina
Piras, Sandra
Carta, Antonio
Design, Synthesis, and Antiviral Activities of New Benzotriazole-Based Derivatives
title Design, Synthesis, and Antiviral Activities of New Benzotriazole-Based Derivatives
title_full Design, Synthesis, and Antiviral Activities of New Benzotriazole-Based Derivatives
title_fullStr Design, Synthesis, and Antiviral Activities of New Benzotriazole-Based Derivatives
title_full_unstemmed Design, Synthesis, and Antiviral Activities of New Benzotriazole-Based Derivatives
title_short Design, Synthesis, and Antiviral Activities of New Benzotriazole-Based Derivatives
title_sort design, synthesis, and antiviral activities of new benzotriazole-based derivatives
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10054465/
https://www.ncbi.nlm.nih.gov/pubmed/36986528
http://dx.doi.org/10.3390/ph16030429
work_keys_str_mv AT ibbaroberta designsynthesisandantiviralactivitiesofnewbenzotriazolebasedderivatives
AT coronapaola designsynthesisandantiviralactivitiesofnewbenzotriazolebasedderivatives
AT nonnefrancesca designsynthesisandantiviralactivitiesofnewbenzotriazolebasedderivatives
AT cariapaola designsynthesisandantiviralactivitiesofnewbenzotriazolebasedderivatives
AT serreligabriele designsynthesisandantiviralactivitiesofnewbenzotriazolebasedderivatives
AT palmasvanessa designsynthesisandantiviralactivitiesofnewbenzotriazolebasedderivatives
AT riufederico designsynthesisandantiviralactivitiesofnewbenzotriazolebasedderivatives
AT sestitosimona designsynthesisandantiviralactivitiesofnewbenzotriazolebasedderivatives
AT nieddumaria designsynthesisandantiviralactivitiesofnewbenzotriazolebasedderivatives
AT loddoroberta designsynthesisandantiviralactivitiesofnewbenzotriazolebasedderivatives
AT sannagiuseppina designsynthesisandantiviralactivitiesofnewbenzotriazolebasedderivatives
AT pirassandra designsynthesisandantiviralactivitiesofnewbenzotriazolebasedderivatives
AT cartaantonio designsynthesisandantiviralactivitiesofnewbenzotriazolebasedderivatives