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Mitochondrial Functions, Energy Metabolism and Protein Glycosylation are Interconnected Processes Mediating Resistance to Bortezomib in Multiple Myeloma Cells

The proteasome inhibitor bortezomib (BTZ) has emerged as an effective drug for the treatment of multiple myeloma even though many patients relapse from BTZ therapy. The present study investigated the metabolic pathways underlying the acquisition of bortezomib resistance in multiple myeloma. We used...

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Autores principales: Tibullo, Daniele, Giallongo, Cesarina, Romano, Alessandra, Vicario, Nunzio, Barbato, Alessandro, Puglisi, Fabrizio, Parenti, Rosalba, Amorini, Angela Maria, Saab, Miriam Wissam, Tavazzi, Barbara, Mangione, Renata, Brundo, Maria Violetta, Lazzarino, Giacomo, Palumbo, Giuseppe Alberto, Li Volti, Giovanni, Di Raimondo, Francesco, Lazzarino, Giuseppe
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7277183/
https://www.ncbi.nlm.nih.gov/pubmed/32365811
http://dx.doi.org/10.3390/biom10050696
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author Tibullo, Daniele
Giallongo, Cesarina
Romano, Alessandra
Vicario, Nunzio
Barbato, Alessandro
Puglisi, Fabrizio
Parenti, Rosalba
Amorini, Angela Maria
Saab, Miriam Wissam
Tavazzi, Barbara
Mangione, Renata
Brundo, Maria Violetta
Lazzarino, Giacomo
Palumbo, Giuseppe Alberto
Li Volti, Giovanni
Di Raimondo, Francesco
Lazzarino, Giuseppe
author_facet Tibullo, Daniele
Giallongo, Cesarina
Romano, Alessandra
Vicario, Nunzio
Barbato, Alessandro
Puglisi, Fabrizio
Parenti, Rosalba
Amorini, Angela Maria
Saab, Miriam Wissam
Tavazzi, Barbara
Mangione, Renata
Brundo, Maria Violetta
Lazzarino, Giacomo
Palumbo, Giuseppe Alberto
Li Volti, Giovanni
Di Raimondo, Francesco
Lazzarino, Giuseppe
author_sort Tibullo, Daniele
collection PubMed
description The proteasome inhibitor bortezomib (BTZ) has emerged as an effective drug for the treatment of multiple myeloma even though many patients relapse from BTZ therapy. The present study investigated the metabolic pathways underlying the acquisition of bortezomib resistance in multiple myeloma. We used two different clones of multiple myeloma cell lines exhibiting different sensitivities to BTZ (U266 and U266-R) and compared them in terms of metabolic profile, mitochondrial fitness and redox balance homeostasis capacity. Our results showed that the BTZ-resistant clone (U266-R) presented increased glycosylated UDP-derivatives when compared to BTZ-sensitive cells (U266), thus also suggesting higher activities of the hexosamine biosynthetic pathway (HBP), regulating not only protein O- and N-glycosylation but also mitochondrial functions. Notably, U266-R displayed increased mitochondrial biogenesis and mitochondrial dynamics associated with stronger antioxidant defenses. Furthermore, U266-R maintained a significantly higher concentration of substrates for protein glycosylation when compared to U266, particularly for UDP-GlcNac, thus further suggesting the importance of glycosylation in the BTZ pharmacological response. Moreover, BTZ-treated U266-R showed significantly higher ATP/ADP ratios and levels of ECP and also exhibited increased mitochondrial fitness and antioxidant response. In conclusions, our findings suggest that the HBP may play a major role in mitochondrial fitness, driving BTZ resistance in multiple myeloma and thus representing a possible target for new drug development for BTZ-resistant patients.
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spelling pubmed-72771832020-06-15 Mitochondrial Functions, Energy Metabolism and Protein Glycosylation are Interconnected Processes Mediating Resistance to Bortezomib in Multiple Myeloma Cells Tibullo, Daniele Giallongo, Cesarina Romano, Alessandra Vicario, Nunzio Barbato, Alessandro Puglisi, Fabrizio Parenti, Rosalba Amorini, Angela Maria Saab, Miriam Wissam Tavazzi, Barbara Mangione, Renata Brundo, Maria Violetta Lazzarino, Giacomo Palumbo, Giuseppe Alberto Li Volti, Giovanni Di Raimondo, Francesco Lazzarino, Giuseppe Biomolecules Article The proteasome inhibitor bortezomib (BTZ) has emerged as an effective drug for the treatment of multiple myeloma even though many patients relapse from BTZ therapy. The present study investigated the metabolic pathways underlying the acquisition of bortezomib resistance in multiple myeloma. We used two different clones of multiple myeloma cell lines exhibiting different sensitivities to BTZ (U266 and U266-R) and compared them in terms of metabolic profile, mitochondrial fitness and redox balance homeostasis capacity. Our results showed that the BTZ-resistant clone (U266-R) presented increased glycosylated UDP-derivatives when compared to BTZ-sensitive cells (U266), thus also suggesting higher activities of the hexosamine biosynthetic pathway (HBP), regulating not only protein O- and N-glycosylation but also mitochondrial functions. Notably, U266-R displayed increased mitochondrial biogenesis and mitochondrial dynamics associated with stronger antioxidant defenses. Furthermore, U266-R maintained a significantly higher concentration of substrates for protein glycosylation when compared to U266, particularly for UDP-GlcNac, thus further suggesting the importance of glycosylation in the BTZ pharmacological response. Moreover, BTZ-treated U266-R showed significantly higher ATP/ADP ratios and levels of ECP and also exhibited increased mitochondrial fitness and antioxidant response. In conclusions, our findings suggest that the HBP may play a major role in mitochondrial fitness, driving BTZ resistance in multiple myeloma and thus representing a possible target for new drug development for BTZ-resistant patients. MDPI 2020-04-30 /pmc/articles/PMC7277183/ /pubmed/32365811 http://dx.doi.org/10.3390/biom10050696 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
Tibullo, Daniele
Giallongo, Cesarina
Romano, Alessandra
Vicario, Nunzio
Barbato, Alessandro
Puglisi, Fabrizio
Parenti, Rosalba
Amorini, Angela Maria
Saab, Miriam Wissam
Tavazzi, Barbara
Mangione, Renata
Brundo, Maria Violetta
Lazzarino, Giacomo
Palumbo, Giuseppe Alberto
Li Volti, Giovanni
Di Raimondo, Francesco
Lazzarino, Giuseppe
Mitochondrial Functions, Energy Metabolism and Protein Glycosylation are Interconnected Processes Mediating Resistance to Bortezomib in Multiple Myeloma Cells
title Mitochondrial Functions, Energy Metabolism and Protein Glycosylation are Interconnected Processes Mediating Resistance to Bortezomib in Multiple Myeloma Cells
title_full Mitochondrial Functions, Energy Metabolism and Protein Glycosylation are Interconnected Processes Mediating Resistance to Bortezomib in Multiple Myeloma Cells
title_fullStr Mitochondrial Functions, Energy Metabolism and Protein Glycosylation are Interconnected Processes Mediating Resistance to Bortezomib in Multiple Myeloma Cells
title_full_unstemmed Mitochondrial Functions, Energy Metabolism and Protein Glycosylation are Interconnected Processes Mediating Resistance to Bortezomib in Multiple Myeloma Cells
title_short Mitochondrial Functions, Energy Metabolism and Protein Glycosylation are Interconnected Processes Mediating Resistance to Bortezomib in Multiple Myeloma Cells
title_sort mitochondrial functions, energy metabolism and protein glycosylation are interconnected processes mediating resistance to bortezomib in multiple myeloma cells
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7277183/
https://www.ncbi.nlm.nih.gov/pubmed/32365811
http://dx.doi.org/10.3390/biom10050696
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