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Adaptive preconditioning in neurological diseases – therapeutic insights from proteostatic perturbations

In neurological disorders, both acute and chronic neural stress can disrupt cellular proteostasis, resulting in the generation of pathological protein. However in most cases, neurons adapt to these proteostatic perturbations by activating a range of cellular protective and repair responses, thus mai...

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Autores principales: Mollereau, B., Rzechorzek, N.M., Roussel, B.D., Sedru, M., Van den Brink, D.M., Bailly-Maitre, B., Palladino, F., Medinas, D.B., Domingos, P.M., Hunot, S., Chandran, S., Birman, S., Baron, T., Vivien, D., Duarte, C.B., Ryoo, H.D., Steller, H., Urano, F., Chevet, E., Kroemer, G., Ciechanover, A., Calabrese, E.J., Kaufman, R.J., Hetz, C.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier/North-Holland Biomedical Press 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5010532/
https://www.ncbi.nlm.nih.gov/pubmed/26923166
http://dx.doi.org/10.1016/j.brainres.2016.02.033
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author Mollereau, B.
Rzechorzek, N.M.
Roussel, B.D.
Sedru, M.
Van den Brink, D.M.
Bailly-Maitre, B.
Palladino, F.
Medinas, D.B.
Domingos, P.M.
Hunot, S.
Chandran, S.
Birman, S.
Baron, T.
Vivien, D.
Duarte, C.B.
Ryoo, H.D.
Steller, H.
Urano, F.
Chevet, E.
Kroemer, G.
Ciechanover, A.
Calabrese, E.J.
Kaufman, R.J.
Hetz, C.
author_facet Mollereau, B.
Rzechorzek, N.M.
Roussel, B.D.
Sedru, M.
Van den Brink, D.M.
Bailly-Maitre, B.
Palladino, F.
Medinas, D.B.
Domingos, P.M.
Hunot, S.
Chandran, S.
Birman, S.
Baron, T.
Vivien, D.
Duarte, C.B.
Ryoo, H.D.
Steller, H.
Urano, F.
Chevet, E.
Kroemer, G.
Ciechanover, A.
Calabrese, E.J.
Kaufman, R.J.
Hetz, C.
author_sort Mollereau, B.
collection PubMed
description In neurological disorders, both acute and chronic neural stress can disrupt cellular proteostasis, resulting in the generation of pathological protein. However in most cases, neurons adapt to these proteostatic perturbations by activating a range of cellular protective and repair responses, thus maintaining cell function. These interconnected adaptive mechanisms comprise a ‘proteostasis network’ and include the unfolded protein response, the ubiquitin proteasome system and autophagy. Interestingly, several recent studies have shown that these adaptive responses can be stimulated by preconditioning treatments, which confer resistance to a subsequent toxic challenge – the phenomenon known as hormesis. In this review we discuss the impact of adaptive stress responses stimulated in diverse human neuropathologies including Parkinson׳s disease, Wolfram syndrome, brain ischemia, and brain cancer. Further, we examine how these responses and the molecular pathways they recruit might be exploited for therapeutic gain. This article is part of a Special Issue entitled SI:ER stress.
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spelling pubmed-50105322016-10-01 Adaptive preconditioning in neurological diseases – therapeutic insights from proteostatic perturbations Mollereau, B. Rzechorzek, N.M. Roussel, B.D. Sedru, M. Van den Brink, D.M. Bailly-Maitre, B. Palladino, F. Medinas, D.B. Domingos, P.M. Hunot, S. Chandran, S. Birman, S. Baron, T. Vivien, D. Duarte, C.B. Ryoo, H.D. Steller, H. Urano, F. Chevet, E. Kroemer, G. Ciechanover, A. Calabrese, E.J. Kaufman, R.J. Hetz, C. Brain Res Article In neurological disorders, both acute and chronic neural stress can disrupt cellular proteostasis, resulting in the generation of pathological protein. However in most cases, neurons adapt to these proteostatic perturbations by activating a range of cellular protective and repair responses, thus maintaining cell function. These interconnected adaptive mechanisms comprise a ‘proteostasis network’ and include the unfolded protein response, the ubiquitin proteasome system and autophagy. Interestingly, several recent studies have shown that these adaptive responses can be stimulated by preconditioning treatments, which confer resistance to a subsequent toxic challenge – the phenomenon known as hormesis. In this review we discuss the impact of adaptive stress responses stimulated in diverse human neuropathologies including Parkinson׳s disease, Wolfram syndrome, brain ischemia, and brain cancer. Further, we examine how these responses and the molecular pathways they recruit might be exploited for therapeutic gain. This article is part of a Special Issue entitled SI:ER stress. Elsevier/North-Holland Biomedical Press 2016-10-01 /pmc/articles/PMC5010532/ /pubmed/26923166 http://dx.doi.org/10.1016/j.brainres.2016.02.033 Text en © 2016 The Authors http://creativecommons.org/licenses/by/4.0/ This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Mollereau, B.
Rzechorzek, N.M.
Roussel, B.D.
Sedru, M.
Van den Brink, D.M.
Bailly-Maitre, B.
Palladino, F.
Medinas, D.B.
Domingos, P.M.
Hunot, S.
Chandran, S.
Birman, S.
Baron, T.
Vivien, D.
Duarte, C.B.
Ryoo, H.D.
Steller, H.
Urano, F.
Chevet, E.
Kroemer, G.
Ciechanover, A.
Calabrese, E.J.
Kaufman, R.J.
Hetz, C.
Adaptive preconditioning in neurological diseases – therapeutic insights from proteostatic perturbations
title Adaptive preconditioning in neurological diseases – therapeutic insights from proteostatic perturbations
title_full Adaptive preconditioning in neurological diseases – therapeutic insights from proteostatic perturbations
title_fullStr Adaptive preconditioning in neurological diseases – therapeutic insights from proteostatic perturbations
title_full_unstemmed Adaptive preconditioning in neurological diseases – therapeutic insights from proteostatic perturbations
title_short Adaptive preconditioning in neurological diseases – therapeutic insights from proteostatic perturbations
title_sort adaptive preconditioning in neurological diseases – therapeutic insights from proteostatic perturbations
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5010532/
https://www.ncbi.nlm.nih.gov/pubmed/26923166
http://dx.doi.org/10.1016/j.brainres.2016.02.033
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