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GRP78 Overexpression Triggers PINK1-IP(3)R-Mediated Neuroprotective Mitophagy

An experimental model of spinal root avulsion (RA) is useful to study causal molecular programs that drive retrograde neurodegeneration after neuron-target disconnection. This neurodegenerative process shares common characteristics with neuronal disease-related processes such as the presence of endo...

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Autores principales: Leiva-Rodríguez, Tatiana, Romeo-Guitart, David, Herrando-Grabulosa, Mireia, Muñoz-Guardiola, Pau, Polo, Miriam, Bañuls, Celia, Petegnief, Valerie, Bosch, Assumpció, Lizcano, Jose Miguel, Apostolova, Nadezda, Forés, Joaquim, Casas, Caty
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8391647/
https://www.ncbi.nlm.nih.gov/pubmed/34440243
http://dx.doi.org/10.3390/biomedicines9081039
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author Leiva-Rodríguez, Tatiana
Romeo-Guitart, David
Herrando-Grabulosa, Mireia
Muñoz-Guardiola, Pau
Polo, Miriam
Bañuls, Celia
Petegnief, Valerie
Bosch, Assumpció
Lizcano, Jose Miguel
Apostolova, Nadezda
Forés, Joaquim
Casas, Caty
author_facet Leiva-Rodríguez, Tatiana
Romeo-Guitart, David
Herrando-Grabulosa, Mireia
Muñoz-Guardiola, Pau
Polo, Miriam
Bañuls, Celia
Petegnief, Valerie
Bosch, Assumpció
Lizcano, Jose Miguel
Apostolova, Nadezda
Forés, Joaquim
Casas, Caty
author_sort Leiva-Rodríguez, Tatiana
collection PubMed
description An experimental model of spinal root avulsion (RA) is useful to study causal molecular programs that drive retrograde neurodegeneration after neuron-target disconnection. This neurodegenerative process shares common characteristics with neuronal disease-related processes such as the presence of endoplasmic reticulum (ER) stress and autophagy flux blockage. We previously found that the overexpression of GRP78 promoted motoneuronal neuroprotection after RA. After that, we aimed to unravel the underlying mechanism by carrying out a comparative unbiased proteomic analysis and pharmacological and genetic interventions. Unexpectedly, mitochondrial factors turned out to be most altered when GRP78 was overexpressed, and the abundance of engulfed mitochondria, a hallmark of mitophagy, was also observed by electronic microscopy in RA-injured motoneurons after GRP78 overexpression. In addition, GRP78 overexpression increased LC3-mitochondria tagging, promoted PINK1 translocation, mitophagy induction, and recovered mitochondrial function in ER-stressed cells. Lastly, we found that GRP78-promoted pro-survival mitophagy was mediated by PINK1 and IP3R in our in vitro model of motoneuronal death. This data indicates a novel relationship between the GRP78 chaperone and mitophagy, opening novel therapeutical options for drug design to achieve neuroprotection.
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spelling pubmed-83916472021-08-28 GRP78 Overexpression Triggers PINK1-IP(3)R-Mediated Neuroprotective Mitophagy Leiva-Rodríguez, Tatiana Romeo-Guitart, David Herrando-Grabulosa, Mireia Muñoz-Guardiola, Pau Polo, Miriam Bañuls, Celia Petegnief, Valerie Bosch, Assumpció Lizcano, Jose Miguel Apostolova, Nadezda Forés, Joaquim Casas, Caty Biomedicines Article An experimental model of spinal root avulsion (RA) is useful to study causal molecular programs that drive retrograde neurodegeneration after neuron-target disconnection. This neurodegenerative process shares common characteristics with neuronal disease-related processes such as the presence of endoplasmic reticulum (ER) stress and autophagy flux blockage. We previously found that the overexpression of GRP78 promoted motoneuronal neuroprotection after RA. After that, we aimed to unravel the underlying mechanism by carrying out a comparative unbiased proteomic analysis and pharmacological and genetic interventions. Unexpectedly, mitochondrial factors turned out to be most altered when GRP78 was overexpressed, and the abundance of engulfed mitochondria, a hallmark of mitophagy, was also observed by electronic microscopy in RA-injured motoneurons after GRP78 overexpression. In addition, GRP78 overexpression increased LC3-mitochondria tagging, promoted PINK1 translocation, mitophagy induction, and recovered mitochondrial function in ER-stressed cells. Lastly, we found that GRP78-promoted pro-survival mitophagy was mediated by PINK1 and IP3R in our in vitro model of motoneuronal death. This data indicates a novel relationship between the GRP78 chaperone and mitophagy, opening novel therapeutical options for drug design to achieve neuroprotection. MDPI 2021-08-18 /pmc/articles/PMC8391647/ /pubmed/34440243 http://dx.doi.org/10.3390/biomedicines9081039 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
Leiva-Rodríguez, Tatiana
Romeo-Guitart, David
Herrando-Grabulosa, Mireia
Muñoz-Guardiola, Pau
Polo, Miriam
Bañuls, Celia
Petegnief, Valerie
Bosch, Assumpció
Lizcano, Jose Miguel
Apostolova, Nadezda
Forés, Joaquim
Casas, Caty
GRP78 Overexpression Triggers PINK1-IP(3)R-Mediated Neuroprotective Mitophagy
title GRP78 Overexpression Triggers PINK1-IP(3)R-Mediated Neuroprotective Mitophagy
title_full GRP78 Overexpression Triggers PINK1-IP(3)R-Mediated Neuroprotective Mitophagy
title_fullStr GRP78 Overexpression Triggers PINK1-IP(3)R-Mediated Neuroprotective Mitophagy
title_full_unstemmed GRP78 Overexpression Triggers PINK1-IP(3)R-Mediated Neuroprotective Mitophagy
title_short GRP78 Overexpression Triggers PINK1-IP(3)R-Mediated Neuroprotective Mitophagy
title_sort grp78 overexpression triggers pink1-ip(3)r-mediated neuroprotective mitophagy
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8391647/
https://www.ncbi.nlm.nih.gov/pubmed/34440243
http://dx.doi.org/10.3390/biomedicines9081039
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