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Heat Shock Protein Beta-1 Modifies Anterior to Posterior Purkinje Cell Vulnerability in a Mouse Model of Niemann-Pick Type C Disease

Selective neuronal vulnerability is characteristic of most degenerative disorders of the CNS, yet mechanisms underlying this phenomenon remain poorly characterized. Many forms of cerebellar degeneration exhibit an anterior-to-posterior gradient of Purkinje cell loss including Niemann-Pick type C1 (N...

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Autores principales: Chung, Chan, Elrick, Matthew J., Dell’Orco, James M., Qin, Zhaohui S., Kalyana-Sundaram, Shanker, Chinnaiyan, Arul M., Shakkottai, Vikram G., Lieberman, Andrew P.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4859571/
https://www.ncbi.nlm.nih.gov/pubmed/27152617
http://dx.doi.org/10.1371/journal.pgen.1006042
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author Chung, Chan
Elrick, Matthew J.
Dell’Orco, James M.
Qin, Zhaohui S.
Kalyana-Sundaram, Shanker
Chinnaiyan, Arul M.
Shakkottai, Vikram G.
Lieberman, Andrew P.
author_facet Chung, Chan
Elrick, Matthew J.
Dell’Orco, James M.
Qin, Zhaohui S.
Kalyana-Sundaram, Shanker
Chinnaiyan, Arul M.
Shakkottai, Vikram G.
Lieberman, Andrew P.
author_sort Chung, Chan
collection PubMed
description Selective neuronal vulnerability is characteristic of most degenerative disorders of the CNS, yet mechanisms underlying this phenomenon remain poorly characterized. Many forms of cerebellar degeneration exhibit an anterior-to-posterior gradient of Purkinje cell loss including Niemann-Pick type C1 (NPC) disease, a lysosomal storage disorder characterized by progressive neurological deficits that often begin in childhood. Here, we sought to identify candidate genes underlying vulnerability of Purkinje cells in anterior cerebellar lobules using data freely available in the Allen Brain Atlas. This approach led to the identification of 16 candidate neuroprotective or susceptibility genes. We demonstrate that one candidate gene, heat shock protein beta-1 (HSPB1), promoted neuronal survival in cellular models of NPC disease through a mechanism that involved inhibition of apoptosis. Additionally, we show that over-expression of wild type HSPB1 or a phosphomimetic mutant in NPC mice slowed the progression of motor impairment and diminished cerebellar Purkinje cell loss. We confirmed the modulatory effect of Hspb1 on Purkinje cell degeneration in vivo, as knockdown by Hspb1 shRNA significantly enhanced neuron loss. These results suggest that strategies to promote HSPB1 activity may slow the rate of cerebellar degeneration in NPC disease and highlight the use of bioinformatics tools to uncover pathways leading to neuronal protection in neurodegenerative disorders.
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spelling pubmed-48595712016-05-13 Heat Shock Protein Beta-1 Modifies Anterior to Posterior Purkinje Cell Vulnerability in a Mouse Model of Niemann-Pick Type C Disease Chung, Chan Elrick, Matthew J. Dell’Orco, James M. Qin, Zhaohui S. Kalyana-Sundaram, Shanker Chinnaiyan, Arul M. Shakkottai, Vikram G. Lieberman, Andrew P. PLoS Genet Research Article Selective neuronal vulnerability is characteristic of most degenerative disorders of the CNS, yet mechanisms underlying this phenomenon remain poorly characterized. Many forms of cerebellar degeneration exhibit an anterior-to-posterior gradient of Purkinje cell loss including Niemann-Pick type C1 (NPC) disease, a lysosomal storage disorder characterized by progressive neurological deficits that often begin in childhood. Here, we sought to identify candidate genes underlying vulnerability of Purkinje cells in anterior cerebellar lobules using data freely available in the Allen Brain Atlas. This approach led to the identification of 16 candidate neuroprotective or susceptibility genes. We demonstrate that one candidate gene, heat shock protein beta-1 (HSPB1), promoted neuronal survival in cellular models of NPC disease through a mechanism that involved inhibition of apoptosis. Additionally, we show that over-expression of wild type HSPB1 or a phosphomimetic mutant in NPC mice slowed the progression of motor impairment and diminished cerebellar Purkinje cell loss. We confirmed the modulatory effect of Hspb1 on Purkinje cell degeneration in vivo, as knockdown by Hspb1 shRNA significantly enhanced neuron loss. These results suggest that strategies to promote HSPB1 activity may slow the rate of cerebellar degeneration in NPC disease and highlight the use of bioinformatics tools to uncover pathways leading to neuronal protection in neurodegenerative disorders. Public Library of Science 2016-05-06 /pmc/articles/PMC4859571/ /pubmed/27152617 http://dx.doi.org/10.1371/journal.pgen.1006042 Text en © 2016 Chung et al http://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Chung, Chan
Elrick, Matthew J.
Dell’Orco, James M.
Qin, Zhaohui S.
Kalyana-Sundaram, Shanker
Chinnaiyan, Arul M.
Shakkottai, Vikram G.
Lieberman, Andrew P.
Heat Shock Protein Beta-1 Modifies Anterior to Posterior Purkinje Cell Vulnerability in a Mouse Model of Niemann-Pick Type C Disease
title Heat Shock Protein Beta-1 Modifies Anterior to Posterior Purkinje Cell Vulnerability in a Mouse Model of Niemann-Pick Type C Disease
title_full Heat Shock Protein Beta-1 Modifies Anterior to Posterior Purkinje Cell Vulnerability in a Mouse Model of Niemann-Pick Type C Disease
title_fullStr Heat Shock Protein Beta-1 Modifies Anterior to Posterior Purkinje Cell Vulnerability in a Mouse Model of Niemann-Pick Type C Disease
title_full_unstemmed Heat Shock Protein Beta-1 Modifies Anterior to Posterior Purkinje Cell Vulnerability in a Mouse Model of Niemann-Pick Type C Disease
title_short Heat Shock Protein Beta-1 Modifies Anterior to Posterior Purkinje Cell Vulnerability in a Mouse Model of Niemann-Pick Type C Disease
title_sort heat shock protein beta-1 modifies anterior to posterior purkinje cell vulnerability in a mouse model of niemann-pick type c disease
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4859571/
https://www.ncbi.nlm.nih.gov/pubmed/27152617
http://dx.doi.org/10.1371/journal.pgen.1006042
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