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Monitoring phagocytic uptake of amyloid β into glial cell lysosomes in real time

Phagocytosis by glial cells is essential to regulate brain function during health and disease. Therapies for Alzheimer's disease (AD) have primarily focused on targeting antibodies to amyloid β (Aβ) or inhibitng enzymes that make it, and while removal of Aβ by phagocytosis is protective early i...

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Autores principales: Prakash, Priya, Jethava, Krupal P., Korte, Nils, Izquierdo, Pablo, Favuzzi, Emilia, Rose, Indigo V. L., Guttenplan, Kevin A., Manchanda, Palak, Dutta, Sayan, Rochet, Jean-Christophe, Fishell, Gord, Liddelow, Shane A., Attwell, David, Chopra, Gaurav
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8372545/
https://www.ncbi.nlm.nih.gov/pubmed/34476070
http://dx.doi.org/10.1039/d1sc03486c
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author Prakash, Priya
Jethava, Krupal P.
Korte, Nils
Izquierdo, Pablo
Favuzzi, Emilia
Rose, Indigo V. L.
Guttenplan, Kevin A.
Manchanda, Palak
Dutta, Sayan
Rochet, Jean-Christophe
Fishell, Gord
Liddelow, Shane A.
Attwell, David
Chopra, Gaurav
author_facet Prakash, Priya
Jethava, Krupal P.
Korte, Nils
Izquierdo, Pablo
Favuzzi, Emilia
Rose, Indigo V. L.
Guttenplan, Kevin A.
Manchanda, Palak
Dutta, Sayan
Rochet, Jean-Christophe
Fishell, Gord
Liddelow, Shane A.
Attwell, David
Chopra, Gaurav
author_sort Prakash, Priya
collection PubMed
description Phagocytosis by glial cells is essential to regulate brain function during health and disease. Therapies for Alzheimer's disease (AD) have primarily focused on targeting antibodies to amyloid β (Aβ) or inhibitng enzymes that make it, and while removal of Aβ by phagocytosis is protective early in AD it remains poorly understood. Impaired phagocytic function of glial cells during later stages of AD likely contributes to worsened disease outcome, but the underlying mechanisms of how this occurs remain unknown. We have developed a human Aβ(1–42) analogue (Aβ(pH)) that exhibits green fluorescence upon internalization into the acidic organelles of cells but is non-fluorescent at physiological pH. This allowed us to image, for the first time, glial uptake of Aβ(pH) in real time in live animals. We find that microglia phagocytose more Aβ(pH) than astrocytes in culture, in brain slices and in vivo. Aβ(pH) can be used to investigate the phagocytic mechanisms responsible for removing Aβ from the extracellular space, and thus could become a useful tool to study Aβ clearance at different stages of AD.
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spelling pubmed-83725452021-09-01 Monitoring phagocytic uptake of amyloid β into glial cell lysosomes in real time Prakash, Priya Jethava, Krupal P. Korte, Nils Izquierdo, Pablo Favuzzi, Emilia Rose, Indigo V. L. Guttenplan, Kevin A. Manchanda, Palak Dutta, Sayan Rochet, Jean-Christophe Fishell, Gord Liddelow, Shane A. Attwell, David Chopra, Gaurav Chem Sci Chemistry Phagocytosis by glial cells is essential to regulate brain function during health and disease. Therapies for Alzheimer's disease (AD) have primarily focused on targeting antibodies to amyloid β (Aβ) or inhibitng enzymes that make it, and while removal of Aβ by phagocytosis is protective early in AD it remains poorly understood. Impaired phagocytic function of glial cells during later stages of AD likely contributes to worsened disease outcome, but the underlying mechanisms of how this occurs remain unknown. We have developed a human Aβ(1–42) analogue (Aβ(pH)) that exhibits green fluorescence upon internalization into the acidic organelles of cells but is non-fluorescent at physiological pH. This allowed us to image, for the first time, glial uptake of Aβ(pH) in real time in live animals. We find that microglia phagocytose more Aβ(pH) than astrocytes in culture, in brain slices and in vivo. Aβ(pH) can be used to investigate the phagocytic mechanisms responsible for removing Aβ from the extracellular space, and thus could become a useful tool to study Aβ clearance at different stages of AD. The Royal Society of Chemistry 2021-07-21 /pmc/articles/PMC8372545/ /pubmed/34476070 http://dx.doi.org/10.1039/d1sc03486c Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Prakash, Priya
Jethava, Krupal P.
Korte, Nils
Izquierdo, Pablo
Favuzzi, Emilia
Rose, Indigo V. L.
Guttenplan, Kevin A.
Manchanda, Palak
Dutta, Sayan
Rochet, Jean-Christophe
Fishell, Gord
Liddelow, Shane A.
Attwell, David
Chopra, Gaurav
Monitoring phagocytic uptake of amyloid β into glial cell lysosomes in real time
title Monitoring phagocytic uptake of amyloid β into glial cell lysosomes in real time
title_full Monitoring phagocytic uptake of amyloid β into glial cell lysosomes in real time
title_fullStr Monitoring phagocytic uptake of amyloid β into glial cell lysosomes in real time
title_full_unstemmed Monitoring phagocytic uptake of amyloid β into glial cell lysosomes in real time
title_short Monitoring phagocytic uptake of amyloid β into glial cell lysosomes in real time
title_sort monitoring phagocytic uptake of amyloid β into glial cell lysosomes in real time
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8372545/
https://www.ncbi.nlm.nih.gov/pubmed/34476070
http://dx.doi.org/10.1039/d1sc03486c
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