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Precision Mapping of Amyloid-β Binding Reveals Perisynaptic Localization and Spatially Restricted Plasticity Deficits

Secreted amyloid-β (Aβ) peptide forms neurotoxic oligomeric assemblies thought to cause synaptic deficits associated with Alzheimer’s disease (AD). Soluble Aβ oligomers (Aβo) directly bind to neurons with high affinity and block plasticity mechanisms related to learning and memory, trigger loss of e...

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Autores principales: Actor-Engel, Hannah S., Schwartz, Samantha L., Crosby, Kevin C., Sinnen, Brooke L., Prikhodko, Olga, Ramsay, Harrison J., Bourne, Jennifer N., Winborn, Christina S., Lucas, Alexandra, Smith, Katharine R., Dell’Acqua, Mark L., Kennedy, Matthew J.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Society for Neuroscience 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8687484/
https://www.ncbi.nlm.nih.gov/pubmed/34789478
http://dx.doi.org/10.1523/ENEURO.0416-21.2021
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author Actor-Engel, Hannah S.
Schwartz, Samantha L.
Crosby, Kevin C.
Sinnen, Brooke L.
Prikhodko, Olga
Ramsay, Harrison J.
Bourne, Jennifer N.
Winborn, Christina S.
Lucas, Alexandra
Smith, Katharine R.
Dell’Acqua, Mark L.
Kennedy, Matthew J.
author_facet Actor-Engel, Hannah S.
Schwartz, Samantha L.
Crosby, Kevin C.
Sinnen, Brooke L.
Prikhodko, Olga
Ramsay, Harrison J.
Bourne, Jennifer N.
Winborn, Christina S.
Lucas, Alexandra
Smith, Katharine R.
Dell’Acqua, Mark L.
Kennedy, Matthew J.
author_sort Actor-Engel, Hannah S.
collection PubMed
description Secreted amyloid-β (Aβ) peptide forms neurotoxic oligomeric assemblies thought to cause synaptic deficits associated with Alzheimer’s disease (AD). Soluble Aβ oligomers (Aβo) directly bind to neurons with high affinity and block plasticity mechanisms related to learning and memory, trigger loss of excitatory synapses and eventually cause cell death. While Aβo toxicity has been intensely investigated, it remains unclear precisely where Aβo initially binds to the surface of neurons and whether sites of binding relate to synaptic deficits. Here, we used a combination of live cell, super-resolution and ultrastructural imaging techniques to investigate the kinetics, reversibility and nanoscale location of Aβo binding. Surprisingly, Aβo does not bind directly at the synaptic cleft as previously thought but, instead, forms distinct nanoscale clusters encircling the postsynaptic membrane with a significant fraction also binding presynaptic axon terminals. Synaptic plasticity deficits were observed at Aβo-bound synapses but not closely neighboring Aβo-free synapses. Thus, perisynaptic Aβo binding triggers spatially restricted signaling mechanisms to disrupt synaptic function. These data provide new insight into the earliest steps of Aβo pathology and lay the groundwork for future studies evaluating potential surface receptor(s) and local signaling mechanisms responsible for Aβo binding and synapse dysfunction.
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spelling pubmed-86874842021-12-21 Precision Mapping of Amyloid-β Binding Reveals Perisynaptic Localization and Spatially Restricted Plasticity Deficits Actor-Engel, Hannah S. Schwartz, Samantha L. Crosby, Kevin C. Sinnen, Brooke L. Prikhodko, Olga Ramsay, Harrison J. Bourne, Jennifer N. Winborn, Christina S. Lucas, Alexandra Smith, Katharine R. Dell’Acqua, Mark L. Kennedy, Matthew J. eNeuro Research Article: New Research Secreted amyloid-β (Aβ) peptide forms neurotoxic oligomeric assemblies thought to cause synaptic deficits associated with Alzheimer’s disease (AD). Soluble Aβ oligomers (Aβo) directly bind to neurons with high affinity and block plasticity mechanisms related to learning and memory, trigger loss of excitatory synapses and eventually cause cell death. While Aβo toxicity has been intensely investigated, it remains unclear precisely where Aβo initially binds to the surface of neurons and whether sites of binding relate to synaptic deficits. Here, we used a combination of live cell, super-resolution and ultrastructural imaging techniques to investigate the kinetics, reversibility and nanoscale location of Aβo binding. Surprisingly, Aβo does not bind directly at the synaptic cleft as previously thought but, instead, forms distinct nanoscale clusters encircling the postsynaptic membrane with a significant fraction also binding presynaptic axon terminals. Synaptic plasticity deficits were observed at Aβo-bound synapses but not closely neighboring Aβo-free synapses. Thus, perisynaptic Aβo binding triggers spatially restricted signaling mechanisms to disrupt synaptic function. These data provide new insight into the earliest steps of Aβo pathology and lay the groundwork for future studies evaluating potential surface receptor(s) and local signaling mechanisms responsible for Aβo binding and synapse dysfunction. Society for Neuroscience 2021-12-10 /pmc/articles/PMC8687484/ /pubmed/34789478 http://dx.doi.org/10.1523/ENEURO.0416-21.2021 Text en Copyright © 2021 Actor-Engel et al. https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution 4.0 International license (https://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution and reproduction in any medium provided that the original work is properly attributed.
spellingShingle Research Article: New Research
Actor-Engel, Hannah S.
Schwartz, Samantha L.
Crosby, Kevin C.
Sinnen, Brooke L.
Prikhodko, Olga
Ramsay, Harrison J.
Bourne, Jennifer N.
Winborn, Christina S.
Lucas, Alexandra
Smith, Katharine R.
Dell’Acqua, Mark L.
Kennedy, Matthew J.
Precision Mapping of Amyloid-β Binding Reveals Perisynaptic Localization and Spatially Restricted Plasticity Deficits
title Precision Mapping of Amyloid-β Binding Reveals Perisynaptic Localization and Spatially Restricted Plasticity Deficits
title_full Precision Mapping of Amyloid-β Binding Reveals Perisynaptic Localization and Spatially Restricted Plasticity Deficits
title_fullStr Precision Mapping of Amyloid-β Binding Reveals Perisynaptic Localization and Spatially Restricted Plasticity Deficits
title_full_unstemmed Precision Mapping of Amyloid-β Binding Reveals Perisynaptic Localization and Spatially Restricted Plasticity Deficits
title_short Precision Mapping of Amyloid-β Binding Reveals Perisynaptic Localization and Spatially Restricted Plasticity Deficits
title_sort precision mapping of amyloid-β binding reveals perisynaptic localization and spatially restricted plasticity deficits
topic Research Article: New Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8687484/
https://www.ncbi.nlm.nih.gov/pubmed/34789478
http://dx.doi.org/10.1523/ENEURO.0416-21.2021
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