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Brain Intraventricular Injection of Amyloid-β in Zebrafish Embryo Impairs Cognition and Increases Tau Phosphorylation, Effects Reversed by Lithium

Alzheimer’s disease (AD) is a devastating neurodegenerative disorder with no effective treatment and commonly diagnosed only on late stages. Amyloid-β (Aβ) accumulation and exacerbated tau phosphorylation are molecular hallmarks of AD implicated in cognitive deficits and synaptic and neuronal loss....

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Autores principales: Nery, Laura Roesler, Eltz, Natalia Silva, Hackman, Cristiana, Fonseca, Raphaela, Altenhofen, Stefani, Guerra, Heydi Noriega, Freitas, Vanessa Morais, Bonan, Carla Denise, Vianna, Monica Ryff Moreira Roca
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4154875/
https://www.ncbi.nlm.nih.gov/pubmed/25187954
http://dx.doi.org/10.1371/journal.pone.0105862
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author Nery, Laura Roesler
Eltz, Natalia Silva
Hackman, Cristiana
Fonseca, Raphaela
Altenhofen, Stefani
Guerra, Heydi Noriega
Freitas, Vanessa Morais
Bonan, Carla Denise
Vianna, Monica Ryff Moreira Roca
author_facet Nery, Laura Roesler
Eltz, Natalia Silva
Hackman, Cristiana
Fonseca, Raphaela
Altenhofen, Stefani
Guerra, Heydi Noriega
Freitas, Vanessa Morais
Bonan, Carla Denise
Vianna, Monica Ryff Moreira Roca
author_sort Nery, Laura Roesler
collection PubMed
description Alzheimer’s disease (AD) is a devastating neurodegenerative disorder with no effective treatment and commonly diagnosed only on late stages. Amyloid-β (Aβ) accumulation and exacerbated tau phosphorylation are molecular hallmarks of AD implicated in cognitive deficits and synaptic and neuronal loss. The Aβ and tau connection is beginning to be elucidated and attributed to interaction with different components of common signaling pathways. Recent evidences suggest that non-fibrillary Aβ forms bind to membrane receptors and modulate GSK-3β activity, which in turn phosphorylates the microtubule-associated tau protein leading to axonal disruption and toxic accumulation. Available AD animal models, ranging from rodent to invertebrates, significantly contributed to our current knowledge, but complementary platforms for mechanistic and candidate drug screenings remain critical for the identification of early stage biomarkers and potential disease-modifying therapies. Here we show that Aβ1–42 injection in the hindbrain ventricle of 24 hpf zebrafish embryos results in specific cognitive deficits and increased tau phosphorylation in GSK-3β target residues at 5dpf larvae. These effects are reversed by lithium incubation and not accompanied by apoptotic markers. We believe this may represent a straightforward platform useful to identification of cellular and molecular mechanisms of early stage AD-like symptoms and the effects of neuroactive molecules in pharmacological screenings.
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spelling pubmed-41548752014-09-08 Brain Intraventricular Injection of Amyloid-β in Zebrafish Embryo Impairs Cognition and Increases Tau Phosphorylation, Effects Reversed by Lithium Nery, Laura Roesler Eltz, Natalia Silva Hackman, Cristiana Fonseca, Raphaela Altenhofen, Stefani Guerra, Heydi Noriega Freitas, Vanessa Morais Bonan, Carla Denise Vianna, Monica Ryff Moreira Roca PLoS One Research Article Alzheimer’s disease (AD) is a devastating neurodegenerative disorder with no effective treatment and commonly diagnosed only on late stages. Amyloid-β (Aβ) accumulation and exacerbated tau phosphorylation are molecular hallmarks of AD implicated in cognitive deficits and synaptic and neuronal loss. The Aβ and tau connection is beginning to be elucidated and attributed to interaction with different components of common signaling pathways. Recent evidences suggest that non-fibrillary Aβ forms bind to membrane receptors and modulate GSK-3β activity, which in turn phosphorylates the microtubule-associated tau protein leading to axonal disruption and toxic accumulation. Available AD animal models, ranging from rodent to invertebrates, significantly contributed to our current knowledge, but complementary platforms for mechanistic and candidate drug screenings remain critical for the identification of early stage biomarkers and potential disease-modifying therapies. Here we show that Aβ1–42 injection in the hindbrain ventricle of 24 hpf zebrafish embryos results in specific cognitive deficits and increased tau phosphorylation in GSK-3β target residues at 5dpf larvae. These effects are reversed by lithium incubation and not accompanied by apoptotic markers. We believe this may represent a straightforward platform useful to identification of cellular and molecular mechanisms of early stage AD-like symptoms and the effects of neuroactive molecules in pharmacological screenings. Public Library of Science 2014-09-04 /pmc/articles/PMC4154875/ /pubmed/25187954 http://dx.doi.org/10.1371/journal.pone.0105862 Text en © 2014 Nery 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, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Nery, Laura Roesler
Eltz, Natalia Silva
Hackman, Cristiana
Fonseca, Raphaela
Altenhofen, Stefani
Guerra, Heydi Noriega
Freitas, Vanessa Morais
Bonan, Carla Denise
Vianna, Monica Ryff Moreira Roca
Brain Intraventricular Injection of Amyloid-β in Zebrafish Embryo Impairs Cognition and Increases Tau Phosphorylation, Effects Reversed by Lithium
title Brain Intraventricular Injection of Amyloid-β in Zebrafish Embryo Impairs Cognition and Increases Tau Phosphorylation, Effects Reversed by Lithium
title_full Brain Intraventricular Injection of Amyloid-β in Zebrafish Embryo Impairs Cognition and Increases Tau Phosphorylation, Effects Reversed by Lithium
title_fullStr Brain Intraventricular Injection of Amyloid-β in Zebrafish Embryo Impairs Cognition and Increases Tau Phosphorylation, Effects Reversed by Lithium
title_full_unstemmed Brain Intraventricular Injection of Amyloid-β in Zebrafish Embryo Impairs Cognition and Increases Tau Phosphorylation, Effects Reversed by Lithium
title_short Brain Intraventricular Injection of Amyloid-β in Zebrafish Embryo Impairs Cognition and Increases Tau Phosphorylation, Effects Reversed by Lithium
title_sort brain intraventricular injection of amyloid-β in zebrafish embryo impairs cognition and increases tau phosphorylation, effects reversed by lithium
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4154875/
https://www.ncbi.nlm.nih.gov/pubmed/25187954
http://dx.doi.org/10.1371/journal.pone.0105862
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