Cargando…

Neuroprotective astrocyte-derived insulin/insulin-like growth factor 1 stimulates endocytic processing and extracellular release of neuron-bound Aβ oligomers

Synaptopathy underlying memory deficits in Alzheimer’s disease (AD) is increasingly thought to be instigated by toxic oligomers of the amyloid beta peptide (AβOs). Given the long latency and incomplete penetrance of AD dementia with respect to Aβ pathology, we hypothesized that factors present in th...

Descripción completa

Detalles Bibliográficos
Autores principales: Pitt, Jason, Wilcox, Kyle C., Tortelli, Vanessa, Diniz, Luan Pereira, Oliveira, Maira S., Dobbins, Cassandra, Yu, Xiao-Wen, Nandamuri, Sathwik, Gomes, Flávia C. A., DiNunno, Nadia, Viola, Kirsten L., De Felice, Fernanda G., Ferreira, Sergio T., Klein, William L.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The American Society for Cell Biology 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5620371/
https://www.ncbi.nlm.nih.gov/pubmed/28963439
http://dx.doi.org/10.1091/mbc.E17-06-0416
_version_ 1783267572669480960
author Pitt, Jason
Wilcox, Kyle C.
Tortelli, Vanessa
Diniz, Luan Pereira
Oliveira, Maira S.
Dobbins, Cassandra
Yu, Xiao-Wen
Nandamuri, Sathwik
Gomes, Flávia C. A.
DiNunno, Nadia
Viola, Kirsten L.
De Felice, Fernanda G.
Ferreira, Sergio T.
Klein, William L.
author_facet Pitt, Jason
Wilcox, Kyle C.
Tortelli, Vanessa
Diniz, Luan Pereira
Oliveira, Maira S.
Dobbins, Cassandra
Yu, Xiao-Wen
Nandamuri, Sathwik
Gomes, Flávia C. A.
DiNunno, Nadia
Viola, Kirsten L.
De Felice, Fernanda G.
Ferreira, Sergio T.
Klein, William L.
author_sort Pitt, Jason
collection PubMed
description Synaptopathy underlying memory deficits in Alzheimer’s disease (AD) is increasingly thought to be instigated by toxic oligomers of the amyloid beta peptide (AβOs). Given the long latency and incomplete penetrance of AD dementia with respect to Aβ pathology, we hypothesized that factors present in the CNS may physiologically protect neurons from the deleterious impact of AβOs. Here we employed physically separated neuron–astrocyte cocultures to investigate potential non–cell autonomous neuroprotective factors influencing AβO toxicity. Neurons cultivated in the absence of an astrocyte feeder layer showed abundant AβO binding to dendritic processes and associated synapse deterioration. In contrast, neurons in the presence of astrocytes showed markedly reduced AβO binding and synaptopathy. Results identified the protective factors released by astrocytes as insulin and insulin-like growth factor-1 (IGF1). The protective mechanism involved release of newly bound AβOs into the extracellular medium dependent upon trafficking that was sensitive to exosome pathway inhibitors. Delaying insulin treatment led to AβO binding that was no longer releasable. The neuroprotective potential of astrocytes was itself sensitive to chronic AβO exposure, which reduced insulin/IGF1 expression. Our findings support the idea that physiological protection against synaptotoxic AβOs can be mediated by astrocyte-derived insulin/IGF1, but that this protection itself is vulnerable to AβO buildup.
format Online
Article
Text
id pubmed-5620371
institution National Center for Biotechnology Information
language English
publishDate 2017
publisher The American Society for Cell Biology
record_format MEDLINE/PubMed
spelling pubmed-56203712017-12-16 Neuroprotective astrocyte-derived insulin/insulin-like growth factor 1 stimulates endocytic processing and extracellular release of neuron-bound Aβ oligomers Pitt, Jason Wilcox, Kyle C. Tortelli, Vanessa Diniz, Luan Pereira Oliveira, Maira S. Dobbins, Cassandra Yu, Xiao-Wen Nandamuri, Sathwik Gomes, Flávia C. A. DiNunno, Nadia Viola, Kirsten L. De Felice, Fernanda G. Ferreira, Sergio T. Klein, William L. Mol Biol Cell Articles Synaptopathy underlying memory deficits in Alzheimer’s disease (AD) is increasingly thought to be instigated by toxic oligomers of the amyloid beta peptide (AβOs). Given the long latency and incomplete penetrance of AD dementia with respect to Aβ pathology, we hypothesized that factors present in the CNS may physiologically protect neurons from the deleterious impact of AβOs. Here we employed physically separated neuron–astrocyte cocultures to investigate potential non–cell autonomous neuroprotective factors influencing AβO toxicity. Neurons cultivated in the absence of an astrocyte feeder layer showed abundant AβO binding to dendritic processes and associated synapse deterioration. In contrast, neurons in the presence of astrocytes showed markedly reduced AβO binding and synaptopathy. Results identified the protective factors released by astrocytes as insulin and insulin-like growth factor-1 (IGF1). The protective mechanism involved release of newly bound AβOs into the extracellular medium dependent upon trafficking that was sensitive to exosome pathway inhibitors. Delaying insulin treatment led to AβO binding that was no longer releasable. The neuroprotective potential of astrocytes was itself sensitive to chronic AβO exposure, which reduced insulin/IGF1 expression. Our findings support the idea that physiological protection against synaptotoxic AβOs can be mediated by astrocyte-derived insulin/IGF1, but that this protection itself is vulnerable to AβO buildup. The American Society for Cell Biology 2017-10-01 /pmc/articles/PMC5620371/ /pubmed/28963439 http://dx.doi.org/10.1091/mbc.E17-06-0416 Text en © 2017 Pitt et al. This article is distributed by The American Society for Cell Biology under license from the author(s). Two months after publication it is available to the public under an Attribution–Noncommercial–Share Alike 3.0 Unported Creative Commons License (http://creativecommons.org/licenses/by-nc-sa/3.0). “ASCB®,” “The American Society for Cell Biology®,” and “Molecular Biology of the Cell®” are registered trademarks of The American Society for Cell Biology.
spellingShingle Articles
Pitt, Jason
Wilcox, Kyle C.
Tortelli, Vanessa
Diniz, Luan Pereira
Oliveira, Maira S.
Dobbins, Cassandra
Yu, Xiao-Wen
Nandamuri, Sathwik
Gomes, Flávia C. A.
DiNunno, Nadia
Viola, Kirsten L.
De Felice, Fernanda G.
Ferreira, Sergio T.
Klein, William L.
Neuroprotective astrocyte-derived insulin/insulin-like growth factor 1 stimulates endocytic processing and extracellular release of neuron-bound Aβ oligomers
title Neuroprotective astrocyte-derived insulin/insulin-like growth factor 1 stimulates endocytic processing and extracellular release of neuron-bound Aβ oligomers
title_full Neuroprotective astrocyte-derived insulin/insulin-like growth factor 1 stimulates endocytic processing and extracellular release of neuron-bound Aβ oligomers
title_fullStr Neuroprotective astrocyte-derived insulin/insulin-like growth factor 1 stimulates endocytic processing and extracellular release of neuron-bound Aβ oligomers
title_full_unstemmed Neuroprotective astrocyte-derived insulin/insulin-like growth factor 1 stimulates endocytic processing and extracellular release of neuron-bound Aβ oligomers
title_short Neuroprotective astrocyte-derived insulin/insulin-like growth factor 1 stimulates endocytic processing and extracellular release of neuron-bound Aβ oligomers
title_sort neuroprotective astrocyte-derived insulin/insulin-like growth factor 1 stimulates endocytic processing and extracellular release of neuron-bound aβ oligomers
topic Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5620371/
https://www.ncbi.nlm.nih.gov/pubmed/28963439
http://dx.doi.org/10.1091/mbc.E17-06-0416
work_keys_str_mv AT pittjason neuroprotectiveastrocytederivedinsulininsulinlikegrowthfactor1stimulatesendocyticprocessingandextracellularreleaseofneuronboundaboligomers
AT wilcoxkylec neuroprotectiveastrocytederivedinsulininsulinlikegrowthfactor1stimulatesendocyticprocessingandextracellularreleaseofneuronboundaboligomers
AT tortellivanessa neuroprotectiveastrocytederivedinsulininsulinlikegrowthfactor1stimulatesendocyticprocessingandextracellularreleaseofneuronboundaboligomers
AT dinizluanpereira neuroprotectiveastrocytederivedinsulininsulinlikegrowthfactor1stimulatesendocyticprocessingandextracellularreleaseofneuronboundaboligomers
AT oliveiramairas neuroprotectiveastrocytederivedinsulininsulinlikegrowthfactor1stimulatesendocyticprocessingandextracellularreleaseofneuronboundaboligomers
AT dobbinscassandra neuroprotectiveastrocytederivedinsulininsulinlikegrowthfactor1stimulatesendocyticprocessingandextracellularreleaseofneuronboundaboligomers
AT yuxiaowen neuroprotectiveastrocytederivedinsulininsulinlikegrowthfactor1stimulatesendocyticprocessingandextracellularreleaseofneuronboundaboligomers
AT nandamurisathwik neuroprotectiveastrocytederivedinsulininsulinlikegrowthfactor1stimulatesendocyticprocessingandextracellularreleaseofneuronboundaboligomers
AT gomesflaviaca neuroprotectiveastrocytederivedinsulininsulinlikegrowthfactor1stimulatesendocyticprocessingandextracellularreleaseofneuronboundaboligomers
AT dinunnonadia neuroprotectiveastrocytederivedinsulininsulinlikegrowthfactor1stimulatesendocyticprocessingandextracellularreleaseofneuronboundaboligomers
AT violakirstenl neuroprotectiveastrocytederivedinsulininsulinlikegrowthfactor1stimulatesendocyticprocessingandextracellularreleaseofneuronboundaboligomers
AT defelicefernandag neuroprotectiveastrocytederivedinsulininsulinlikegrowthfactor1stimulatesendocyticprocessingandextracellularreleaseofneuronboundaboligomers
AT ferreirasergiot neuroprotectiveastrocytederivedinsulininsulinlikegrowthfactor1stimulatesendocyticprocessingandextracellularreleaseofneuronboundaboligomers
AT kleinwilliaml neuroprotectiveastrocytederivedinsulininsulinlikegrowthfactor1stimulatesendocyticprocessingandextracellularreleaseofneuronboundaboligomers