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KRIT1 Loss-Of-Function Associated with Cerebral Cavernous Malformation Disease Leads to Enhanced S-Glutathionylation of Distinct Structural and Regulatory Proteins

Loss-of-function mutations in the KRIT1 gene are associated with the pathogenesis of cerebral cavernous malformations (CCMs), a major cerebrovascular disease still awaiting therapies. Accumulating evidence demonstrates that KRIT1 plays an important role in major redox-sensitive mechanisms, including...

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Autores principales: Cianfruglia, Laura, Perrelli, Andrea, Fornelli, Claudia, Magini, Alessandro, Gorbi, Stefania, Salzano, Anna Maria, Antognelli, Cinzia, Retta, Francesca, Benedetti, Valerio, Cassoni, Paola, Emiliani, Carla, Principato, Giovanni, Scaloni, Andrea, Armeni, Tatiana, Retta, Saverio Francesco
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6356485/
https://www.ncbi.nlm.nih.gov/pubmed/30658464
http://dx.doi.org/10.3390/antiox8010027
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author Cianfruglia, Laura
Perrelli, Andrea
Fornelli, Claudia
Magini, Alessandro
Gorbi, Stefania
Salzano, Anna Maria
Antognelli, Cinzia
Retta, Francesca
Benedetti, Valerio
Cassoni, Paola
Emiliani, Carla
Principato, Giovanni
Scaloni, Andrea
Armeni, Tatiana
Retta, Saverio Francesco
author_facet Cianfruglia, Laura
Perrelli, Andrea
Fornelli, Claudia
Magini, Alessandro
Gorbi, Stefania
Salzano, Anna Maria
Antognelli, Cinzia
Retta, Francesca
Benedetti, Valerio
Cassoni, Paola
Emiliani, Carla
Principato, Giovanni
Scaloni, Andrea
Armeni, Tatiana
Retta, Saverio Francesco
author_sort Cianfruglia, Laura
collection PubMed
description Loss-of-function mutations in the KRIT1 gene are associated with the pathogenesis of cerebral cavernous malformations (CCMs), a major cerebrovascular disease still awaiting therapies. Accumulating evidence demonstrates that KRIT1 plays an important role in major redox-sensitive mechanisms, including transcriptional pathways and autophagy, which play major roles in cellular homeostasis and defense against oxidative stress, raising the possibility that KRIT1 loss has pleiotropic effects on multiple redox-sensitive systems. Using previously established cellular models, we found that KRIT1 loss-of-function affects the glutathione (GSH) redox system, causing a significant decrease in total GSH levels and increase in oxidized glutathione disulfide (GSSG), with a consequent deficit in the GSH/GSSG redox ratio and GSH-mediated antioxidant capacity. Redox proteomic analyses showed that these effects are associated with increased S-glutathionylation of distinct proteins involved in adaptive responses to oxidative stress, including redox-sensitive chaperonins, metabolic enzymes, and cytoskeletal proteins, suggesting a novel molecular signature of KRIT1 loss-of-function. Besides providing further insights into the emerging pleiotropic functions of KRIT1, these findings point definitively to KRIT1 as a major player in redox biology, shedding new light on the mechanistic relationship between KRIT1 loss-of-function and enhanced cell sensitivity to oxidative stress, which may eventually lead to cellular dysfunctions and CCM disease pathogenesis.
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spelling pubmed-63564852019-02-04 KRIT1 Loss-Of-Function Associated with Cerebral Cavernous Malformation Disease Leads to Enhanced S-Glutathionylation of Distinct Structural and Regulatory Proteins Cianfruglia, Laura Perrelli, Andrea Fornelli, Claudia Magini, Alessandro Gorbi, Stefania Salzano, Anna Maria Antognelli, Cinzia Retta, Francesca Benedetti, Valerio Cassoni, Paola Emiliani, Carla Principato, Giovanni Scaloni, Andrea Armeni, Tatiana Retta, Saverio Francesco Antioxidants (Basel) Article Loss-of-function mutations in the KRIT1 gene are associated with the pathogenesis of cerebral cavernous malformations (CCMs), a major cerebrovascular disease still awaiting therapies. Accumulating evidence demonstrates that KRIT1 plays an important role in major redox-sensitive mechanisms, including transcriptional pathways and autophagy, which play major roles in cellular homeostasis and defense against oxidative stress, raising the possibility that KRIT1 loss has pleiotropic effects on multiple redox-sensitive systems. Using previously established cellular models, we found that KRIT1 loss-of-function affects the glutathione (GSH) redox system, causing a significant decrease in total GSH levels and increase in oxidized glutathione disulfide (GSSG), with a consequent deficit in the GSH/GSSG redox ratio and GSH-mediated antioxidant capacity. Redox proteomic analyses showed that these effects are associated with increased S-glutathionylation of distinct proteins involved in adaptive responses to oxidative stress, including redox-sensitive chaperonins, metabolic enzymes, and cytoskeletal proteins, suggesting a novel molecular signature of KRIT1 loss-of-function. Besides providing further insights into the emerging pleiotropic functions of KRIT1, these findings point definitively to KRIT1 as a major player in redox biology, shedding new light on the mechanistic relationship between KRIT1 loss-of-function and enhanced cell sensitivity to oxidative stress, which may eventually lead to cellular dysfunctions and CCM disease pathogenesis. MDPI 2019-01-17 /pmc/articles/PMC6356485/ /pubmed/30658464 http://dx.doi.org/10.3390/antiox8010027 Text en © 2019 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
Cianfruglia, Laura
Perrelli, Andrea
Fornelli, Claudia
Magini, Alessandro
Gorbi, Stefania
Salzano, Anna Maria
Antognelli, Cinzia
Retta, Francesca
Benedetti, Valerio
Cassoni, Paola
Emiliani, Carla
Principato, Giovanni
Scaloni, Andrea
Armeni, Tatiana
Retta, Saverio Francesco
KRIT1 Loss-Of-Function Associated with Cerebral Cavernous Malformation Disease Leads to Enhanced S-Glutathionylation of Distinct Structural and Regulatory Proteins
title KRIT1 Loss-Of-Function Associated with Cerebral Cavernous Malformation Disease Leads to Enhanced S-Glutathionylation of Distinct Structural and Regulatory Proteins
title_full KRIT1 Loss-Of-Function Associated with Cerebral Cavernous Malformation Disease Leads to Enhanced S-Glutathionylation of Distinct Structural and Regulatory Proteins
title_fullStr KRIT1 Loss-Of-Function Associated with Cerebral Cavernous Malformation Disease Leads to Enhanced S-Glutathionylation of Distinct Structural and Regulatory Proteins
title_full_unstemmed KRIT1 Loss-Of-Function Associated with Cerebral Cavernous Malformation Disease Leads to Enhanced S-Glutathionylation of Distinct Structural and Regulatory Proteins
title_short KRIT1 Loss-Of-Function Associated with Cerebral Cavernous Malformation Disease Leads to Enhanced S-Glutathionylation of Distinct Structural and Regulatory Proteins
title_sort krit1 loss-of-function associated with cerebral cavernous malformation disease leads to enhanced s-glutathionylation of distinct structural and regulatory proteins
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6356485/
https://www.ncbi.nlm.nih.gov/pubmed/30658464
http://dx.doi.org/10.3390/antiox8010027
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