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Inhibition of XPO-1 Mediated Nuclear Export through the Michael-Acceptor Character of Chalcones

The nuclear export receptor exportin-1 (XPO1, CRM1) mediates the nuclear export of proteins that contain a leucine-rich nuclear export signal (NES) towards the cytoplasm. XPO1 is considered a relevant target in different human diseases, particularly in hematological malignancies, tumor resistance, i...

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Autores principales: Gargantilla, Marta, López-Fernández, José, Camarasa, Maria-Jose, Persoons, Leentje, Daelemans, Dirk, Priego, Eva-Maria, Pérez-Pérez, María-Jesús
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8621101/
https://www.ncbi.nlm.nih.gov/pubmed/34832913
http://dx.doi.org/10.3390/ph14111131
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author Gargantilla, Marta
López-Fernández, José
Camarasa, Maria-Jose
Persoons, Leentje
Daelemans, Dirk
Priego, Eva-Maria
Pérez-Pérez, María-Jesús
author_facet Gargantilla, Marta
López-Fernández, José
Camarasa, Maria-Jose
Persoons, Leentje
Daelemans, Dirk
Priego, Eva-Maria
Pérez-Pérez, María-Jesús
author_sort Gargantilla, Marta
collection PubMed
description The nuclear export receptor exportin-1 (XPO1, CRM1) mediates the nuclear export of proteins that contain a leucine-rich nuclear export signal (NES) towards the cytoplasm. XPO1 is considered a relevant target in different human diseases, particularly in hematological malignancies, tumor resistance, inflammation, neurodegeneration and viral infections. Thus, its pharmacological inhibition is of significant therapeutic interest. The best inhibitors described so far (leptomycin B and SINE compounds) interact with XPO1 through a covalent interaction with Cys528 located in the NES-binding cleft of XPO1. Based on the well-established feature of chalcone derivatives to react with thiol groups via hetero-Michael addition reactions, we have synthesized two series of chalcones. Their capacity to react with thiol groups was tested by incubation with GSH to afford the hetero-Michael adducts that evolved backwards to the initial chalcone through a retro-Michael reaction, supporting that the covalent interaction with thiols could be reversible. The chalcone derivatives were evaluated in antiproliferative assays against a panel of cancer cell lines and as XPO1 inhibitors, and a good correlation was observed with the results obtained in both assays. Moreover, no inhibition of the cargo export was observed when the two prototype chalcones 9 and 10 were tested against a XPO1-mutated Jurkat cell line (XPO1C528S), highlighting the importance of the Cys at the NES-binding cleft for inhibition. Finally, their interaction at the molecular level at the NES-binding cleft was studied by applying the computational tool CovDock.
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spelling pubmed-86211012021-11-27 Inhibition of XPO-1 Mediated Nuclear Export through the Michael-Acceptor Character of Chalcones Gargantilla, Marta López-Fernández, José Camarasa, Maria-Jose Persoons, Leentje Daelemans, Dirk Priego, Eva-Maria Pérez-Pérez, María-Jesús Pharmaceuticals (Basel) Article The nuclear export receptor exportin-1 (XPO1, CRM1) mediates the nuclear export of proteins that contain a leucine-rich nuclear export signal (NES) towards the cytoplasm. XPO1 is considered a relevant target in different human diseases, particularly in hematological malignancies, tumor resistance, inflammation, neurodegeneration and viral infections. Thus, its pharmacological inhibition is of significant therapeutic interest. The best inhibitors described so far (leptomycin B and SINE compounds) interact with XPO1 through a covalent interaction with Cys528 located in the NES-binding cleft of XPO1. Based on the well-established feature of chalcone derivatives to react with thiol groups via hetero-Michael addition reactions, we have synthesized two series of chalcones. Their capacity to react with thiol groups was tested by incubation with GSH to afford the hetero-Michael adducts that evolved backwards to the initial chalcone through a retro-Michael reaction, supporting that the covalent interaction with thiols could be reversible. The chalcone derivatives were evaluated in antiproliferative assays against a panel of cancer cell lines and as XPO1 inhibitors, and a good correlation was observed with the results obtained in both assays. Moreover, no inhibition of the cargo export was observed when the two prototype chalcones 9 and 10 were tested against a XPO1-mutated Jurkat cell line (XPO1C528S), highlighting the importance of the Cys at the NES-binding cleft for inhibition. Finally, their interaction at the molecular level at the NES-binding cleft was studied by applying the computational tool CovDock. MDPI 2021-11-06 /pmc/articles/PMC8621101/ /pubmed/34832913 http://dx.doi.org/10.3390/ph14111131 Text en © 2021 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
Gargantilla, Marta
López-Fernández, José
Camarasa, Maria-Jose
Persoons, Leentje
Daelemans, Dirk
Priego, Eva-Maria
Pérez-Pérez, María-Jesús
Inhibition of XPO-1 Mediated Nuclear Export through the Michael-Acceptor Character of Chalcones
title Inhibition of XPO-1 Mediated Nuclear Export through the Michael-Acceptor Character of Chalcones
title_full Inhibition of XPO-1 Mediated Nuclear Export through the Michael-Acceptor Character of Chalcones
title_fullStr Inhibition of XPO-1 Mediated Nuclear Export through the Michael-Acceptor Character of Chalcones
title_full_unstemmed Inhibition of XPO-1 Mediated Nuclear Export through the Michael-Acceptor Character of Chalcones
title_short Inhibition of XPO-1 Mediated Nuclear Export through the Michael-Acceptor Character of Chalcones
title_sort inhibition of xpo-1 mediated nuclear export through the michael-acceptor character of chalcones
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8621101/
https://www.ncbi.nlm.nih.gov/pubmed/34832913
http://dx.doi.org/10.3390/ph14111131
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