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Inhibition of retrograde transport modulates misfolded protein accumulation and clearance in motoneuron diseases

Motoneuron diseases, like spinal bulbar muscular atrophy (SBMA) and amyotrophic lateral sclerosis (ALS), are associated with proteins that because of gene mutation or peculiar structures, acquire aberrant (misfolded) conformations toxic to cells. To prevent misfolded protein toxicity, cells activate...

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Autores principales: Cristofani, Riccardo, Crippa, Valeria, Rusmini, Paola, Cicardi, Maria Elena, Meroni, Marco, Licata, Nausicaa V., Sala, Gessica, Giorgetti, Elisa, Grunseich, Christopher, Galbiati, Mariarita, Piccolella, Margherita, Messi, Elio, Ferrarese, Carlo, Carra, Serena, Poletti, Angelo
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Taylor & Francis 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5584856/
https://www.ncbi.nlm.nih.gov/pubmed/28402699
http://dx.doi.org/10.1080/15548627.2017.1308985
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author Cristofani, Riccardo
Crippa, Valeria
Rusmini, Paola
Cicardi, Maria Elena
Meroni, Marco
Licata, Nausicaa V.
Sala, Gessica
Giorgetti, Elisa
Grunseich, Christopher
Galbiati, Mariarita
Piccolella, Margherita
Messi, Elio
Ferrarese, Carlo
Carra, Serena
Poletti, Angelo
author_facet Cristofani, Riccardo
Crippa, Valeria
Rusmini, Paola
Cicardi, Maria Elena
Meroni, Marco
Licata, Nausicaa V.
Sala, Gessica
Giorgetti, Elisa
Grunseich, Christopher
Galbiati, Mariarita
Piccolella, Margherita
Messi, Elio
Ferrarese, Carlo
Carra, Serena
Poletti, Angelo
author_sort Cristofani, Riccardo
collection PubMed
description Motoneuron diseases, like spinal bulbar muscular atrophy (SBMA) and amyotrophic lateral sclerosis (ALS), are associated with proteins that because of gene mutation or peculiar structures, acquire aberrant (misfolded) conformations toxic to cells. To prevent misfolded protein toxicity, cells activate a protein quality control (PQC) system composed of chaperones and degradative pathways (proteasome and autophagy). Inefficient activation of the PQC system results in misfolded protein accumulation that ultimately leads to neuronal cell death, while efficient macroautophagy/autophagy-mediated degradation of aggregating proteins is beneficial. The latter relies on an active retrograde transport, mediated by dynein and specific chaperones, such as the HSPB8-BAG3-HSPA8 complex. Here, using cellular models expressing aggregate-prone proteins involved in SBMA and ALS, we demonstrate that inhibition of dynein-mediated retrograde transport, which impairs the targeting to autophagy of misfolded species, does not increase their aggregation. Rather, dynein inhibition correlates with a reduced accumulation and an increased clearance of mutant ARpolyQ, SOD1, truncated TARDBP/TDP-43 and expanded polyGP C9ORF72 products. The enhanced misfolded protein clearance is mediated by the proteasome, rather than by autophagy and correlates with the upregulation of the HSPA8 cochaperone BAG1. In line, overexpression of BAG1 increases the proteasome-mediated clearance of these misfolded proteins. Our data suggest that when the misfolded proteins cannot be efficiently transported toward the perinuclear region of the cells, where they are either degraded by autophagy or stored into the aggresome, the cells activate a compensatory mechanism that relies on the induction of BAG1 to target the HSPA8-bound cargo to the proteasome in a dynein-independent manner.
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spelling pubmed-55848562017-09-11 Inhibition of retrograde transport modulates misfolded protein accumulation and clearance in motoneuron diseases Cristofani, Riccardo Crippa, Valeria Rusmini, Paola Cicardi, Maria Elena Meroni, Marco Licata, Nausicaa V. Sala, Gessica Giorgetti, Elisa Grunseich, Christopher Galbiati, Mariarita Piccolella, Margherita Messi, Elio Ferrarese, Carlo Carra, Serena Poletti, Angelo Autophagy Basic Research Paper Motoneuron diseases, like spinal bulbar muscular atrophy (SBMA) and amyotrophic lateral sclerosis (ALS), are associated with proteins that because of gene mutation or peculiar structures, acquire aberrant (misfolded) conformations toxic to cells. To prevent misfolded protein toxicity, cells activate a protein quality control (PQC) system composed of chaperones and degradative pathways (proteasome and autophagy). Inefficient activation of the PQC system results in misfolded protein accumulation that ultimately leads to neuronal cell death, while efficient macroautophagy/autophagy-mediated degradation of aggregating proteins is beneficial. The latter relies on an active retrograde transport, mediated by dynein and specific chaperones, such as the HSPB8-BAG3-HSPA8 complex. Here, using cellular models expressing aggregate-prone proteins involved in SBMA and ALS, we demonstrate that inhibition of dynein-mediated retrograde transport, which impairs the targeting to autophagy of misfolded species, does not increase their aggregation. Rather, dynein inhibition correlates with a reduced accumulation and an increased clearance of mutant ARpolyQ, SOD1, truncated TARDBP/TDP-43 and expanded polyGP C9ORF72 products. The enhanced misfolded protein clearance is mediated by the proteasome, rather than by autophagy and correlates with the upregulation of the HSPA8 cochaperone BAG1. In line, overexpression of BAG1 increases the proteasome-mediated clearance of these misfolded proteins. Our data suggest that when the misfolded proteins cannot be efficiently transported toward the perinuclear region of the cells, where they are either degraded by autophagy or stored into the aggresome, the cells activate a compensatory mechanism that relies on the induction of BAG1 to target the HSPA8-bound cargo to the proteasome in a dynein-independent manner. Taylor & Francis 2017-04-12 /pmc/articles/PMC5584856/ /pubmed/28402699 http://dx.doi.org/10.1080/15548627.2017.1308985 Text en © 2017 The Author(s). Published with license by Taylor & Francis http://creativecommons.org/licenses/by-nc/3.0/ This is an Open Access article distributed under the terms of the Creative Commons Attribution-Non-Commercial License (http://creativecommons.org/licenses/by-nc/3.0/), which permits unrestricted non-commercial use, distribution, and reproduction in any medium, provided the original work is properly cited. The moral rights of the named author(s) have been asserted.
spellingShingle Basic Research Paper
Cristofani, Riccardo
Crippa, Valeria
Rusmini, Paola
Cicardi, Maria Elena
Meroni, Marco
Licata, Nausicaa V.
Sala, Gessica
Giorgetti, Elisa
Grunseich, Christopher
Galbiati, Mariarita
Piccolella, Margherita
Messi, Elio
Ferrarese, Carlo
Carra, Serena
Poletti, Angelo
Inhibition of retrograde transport modulates misfolded protein accumulation and clearance in motoneuron diseases
title Inhibition of retrograde transport modulates misfolded protein accumulation and clearance in motoneuron diseases
title_full Inhibition of retrograde transport modulates misfolded protein accumulation and clearance in motoneuron diseases
title_fullStr Inhibition of retrograde transport modulates misfolded protein accumulation and clearance in motoneuron diseases
title_full_unstemmed Inhibition of retrograde transport modulates misfolded protein accumulation and clearance in motoneuron diseases
title_short Inhibition of retrograde transport modulates misfolded protein accumulation and clearance in motoneuron diseases
title_sort inhibition of retrograde transport modulates misfolded protein accumulation and clearance in motoneuron diseases
topic Basic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5584856/
https://www.ncbi.nlm.nih.gov/pubmed/28402699
http://dx.doi.org/10.1080/15548627.2017.1308985
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