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Insights into the Interaction Mechanism of DTP3 with MKK7 by Using STD-NMR and Computational Approaches

GADD45 [Formula: see text] /MKK7 complex is a non-redundant, cancer cell-restricted survival module downstream of the NF-kB survival pathway, and it has a pathogenically critical role in multiple myeloma, an incurable malignancy of plasma cells. The first-in-class GADD45 [Formula: see text] /MKK7 in...

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Autores principales: Sandomenico, Annamaria, Di Rienzo, Lorenzo, Calvanese, Luisa, Iaccarino, Emanuela, D’Auria, Gabriella, Falcigno, Lucia, Chambery, Angela, Russo, Rosita, Franzoso, Guido, Tornatore, Laura, D’Abramo, Marco, Ruvo, Menotti, Milanetti, Edoardo, Raimondo, Domenico
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7824710/
https://www.ncbi.nlm.nih.gov/pubmed/33396582
http://dx.doi.org/10.3390/biomedicines9010020
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author Sandomenico, Annamaria
Di Rienzo, Lorenzo
Calvanese, Luisa
Iaccarino, Emanuela
D’Auria, Gabriella
Falcigno, Lucia
Chambery, Angela
Russo, Rosita
Franzoso, Guido
Tornatore, Laura
D’Abramo, Marco
Ruvo, Menotti
Milanetti, Edoardo
Raimondo, Domenico
author_facet Sandomenico, Annamaria
Di Rienzo, Lorenzo
Calvanese, Luisa
Iaccarino, Emanuela
D’Auria, Gabriella
Falcigno, Lucia
Chambery, Angela
Russo, Rosita
Franzoso, Guido
Tornatore, Laura
D’Abramo, Marco
Ruvo, Menotti
Milanetti, Edoardo
Raimondo, Domenico
author_sort Sandomenico, Annamaria
collection PubMed
description GADD45 [Formula: see text] /MKK7 complex is a non-redundant, cancer cell-restricted survival module downstream of the NF-kB survival pathway, and it has a pathogenically critical role in multiple myeloma, an incurable malignancy of plasma cells. The first-in-class GADD45 [Formula: see text] /MKK7 inhibitor DTP3 effectively kills MM cells expressing its molecular target, both in vitro and in vivo, by inducing MKK7/JNK-dependent apoptosis with no apparent toxicity to normal cells. DTP3 combines favorable drug-like properties, with on-target-specific pharmacology, resulting in a safe and cancer-selective therapeutic effect; however, its mode of action is only partially understood. In this work, we have investigated the molecular determinants underlying the MKK7 interaction with DTP3 by combining computational, NMR, and spectroscopic methods. Data gathered by fluorescence quenching and computational approaches consistently indicate that the N-terminal region of MKK7 is the optimal binding site explored by DTP3. These findings further the understanding of the selective mode of action of GADD45 [Formula: see text] /MKK7 inhibitors and inform potential mechanisms of drug resistance. Notably, upon validation of the safety and efficacy of DTP3 in human trials, our results could also facilitate the development of novel DTP3-like therapeutics with improved bioavailability or the capacity to bypass drug resistance.
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spelling pubmed-78247102021-01-24 Insights into the Interaction Mechanism of DTP3 with MKK7 by Using STD-NMR and Computational Approaches Sandomenico, Annamaria Di Rienzo, Lorenzo Calvanese, Luisa Iaccarino, Emanuela D’Auria, Gabriella Falcigno, Lucia Chambery, Angela Russo, Rosita Franzoso, Guido Tornatore, Laura D’Abramo, Marco Ruvo, Menotti Milanetti, Edoardo Raimondo, Domenico Biomedicines Article GADD45 [Formula: see text] /MKK7 complex is a non-redundant, cancer cell-restricted survival module downstream of the NF-kB survival pathway, and it has a pathogenically critical role in multiple myeloma, an incurable malignancy of plasma cells. The first-in-class GADD45 [Formula: see text] /MKK7 inhibitor DTP3 effectively kills MM cells expressing its molecular target, both in vitro and in vivo, by inducing MKK7/JNK-dependent apoptosis with no apparent toxicity to normal cells. DTP3 combines favorable drug-like properties, with on-target-specific pharmacology, resulting in a safe and cancer-selective therapeutic effect; however, its mode of action is only partially understood. In this work, we have investigated the molecular determinants underlying the MKK7 interaction with DTP3 by combining computational, NMR, and spectroscopic methods. Data gathered by fluorescence quenching and computational approaches consistently indicate that the N-terminal region of MKK7 is the optimal binding site explored by DTP3. These findings further the understanding of the selective mode of action of GADD45 [Formula: see text] /MKK7 inhibitors and inform potential mechanisms of drug resistance. Notably, upon validation of the safety and efficacy of DTP3 in human trials, our results could also facilitate the development of novel DTP3-like therapeutics with improved bioavailability or the capacity to bypass drug resistance. MDPI 2020-12-30 /pmc/articles/PMC7824710/ /pubmed/33396582 http://dx.doi.org/10.3390/biomedicines9010020 Text en © 2020 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 (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Sandomenico, Annamaria
Di Rienzo, Lorenzo
Calvanese, Luisa
Iaccarino, Emanuela
D’Auria, Gabriella
Falcigno, Lucia
Chambery, Angela
Russo, Rosita
Franzoso, Guido
Tornatore, Laura
D’Abramo, Marco
Ruvo, Menotti
Milanetti, Edoardo
Raimondo, Domenico
Insights into the Interaction Mechanism of DTP3 with MKK7 by Using STD-NMR and Computational Approaches
title Insights into the Interaction Mechanism of DTP3 with MKK7 by Using STD-NMR and Computational Approaches
title_full Insights into the Interaction Mechanism of DTP3 with MKK7 by Using STD-NMR and Computational Approaches
title_fullStr Insights into the Interaction Mechanism of DTP3 with MKK7 by Using STD-NMR and Computational Approaches
title_full_unstemmed Insights into the Interaction Mechanism of DTP3 with MKK7 by Using STD-NMR and Computational Approaches
title_short Insights into the Interaction Mechanism of DTP3 with MKK7 by Using STD-NMR and Computational Approaches
title_sort insights into the interaction mechanism of dtp3 with mkk7 by using std-nmr and computational approaches
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7824710/
https://www.ncbi.nlm.nih.gov/pubmed/33396582
http://dx.doi.org/10.3390/biomedicines9010020
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