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Reducing INS-IGF1 signaling protects against non-cell autonomous vesicle rupture caused by SNCA spreading

Aging is associated with a gradual decline of cellular proteostasis, giving rise to devastating protein misfolding diseases, such as Alzheimer disease (AD) or Parkinson disease (PD). These diseases often exhibit a complex pathology involving non-cell autonomous proteotoxic effects, which are still p...

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Autores principales: Sandhof, Carl Alexander, Hoppe, Simon Oliver, Druffel-Augustin, Silke, Gallrein, Christian, Kirstein, Janine, Voisine, Cindy, Nussbaum-Krammer, Carmen
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Taylor & Francis 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7144869/
https://www.ncbi.nlm.nih.gov/pubmed/31354022
http://dx.doi.org/10.1080/15548627.2019.1643657
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author Sandhof, Carl Alexander
Hoppe, Simon Oliver
Druffel-Augustin, Silke
Gallrein, Christian
Kirstein, Janine
Voisine, Cindy
Nussbaum-Krammer, Carmen
author_facet Sandhof, Carl Alexander
Hoppe, Simon Oliver
Druffel-Augustin, Silke
Gallrein, Christian
Kirstein, Janine
Voisine, Cindy
Nussbaum-Krammer, Carmen
author_sort Sandhof, Carl Alexander
collection PubMed
description Aging is associated with a gradual decline of cellular proteostasis, giving rise to devastating protein misfolding diseases, such as Alzheimer disease (AD) or Parkinson disease (PD). These diseases often exhibit a complex pathology involving non-cell autonomous proteotoxic effects, which are still poorly understood. Using Caenorhabditis elegans we investigated how local protein misfolding is affecting neighboring cells and tissues showing that misfolded PD-associated SNCA/α-synuclein is accumulating in highly dynamic endo-lysosomal vesicles. Irrespective of whether being expressed in muscle cells or dopaminergic neurons, accumulated proteins were transmitted into the hypodermis with increasing age, indicating that epithelial cells might play a role in remote degradation when the local endo-lysosomal degradation capacity is overloaded. Cell biological and genetic approaches revealed that inter-tissue dissemination of SNCA was regulated by endo- and exocytosis (neuron/muscle to hypodermis) and basement membrane remodeling (muscle to hypodermis). Transferred SNCA conformers were, however, inefficiently cleared and induced endo-lysosomal membrane permeabilization. Remarkably, reducing INS (insulin)-IGF1 (insulin-like growth factor 1) signaling provided protection by maintaining endo-lysosomal integrity. This study suggests that the degradation of lysosomal substrates is coordinated across different tissues in metazoan organisms. Because the chronic dissemination of poorly degradable disease proteins into neighboring tissues exerts a non-cell autonomous toxicity, this implies that restoring endo-lysosomal function not only in cells with pathological inclusions, but also in apparently unaffected cell types might help to halt disease progression. Abbreviations: AD: Alzheimer disease; BM: basement membrane; BWM: body wall muscle; CEP: cephalic sensilla; CLEM: correlative light and electron microscopy; CTNS-1: cystinosin (lysosomal protein) homolog; DA: dopaminergic; DAF-2: abnormal dauer formation; ECM: extracellular matrix; FLIM: fluorescence lifetime imaging microscopy; fps: frames per second; GFP: green fluorescent protein; HPF: high pressure freezing; IGF1: insulin-like growth factor 1; INS: insulin; KD: knockdown; LMP: lysosomal membrane permeabilization; MVB: multivesicular body; NOC: nocodazole; PD: Parkinson disease; RFP: red fluorescent protein; RNAi: RNA interference; sfGFP: superfolder GFP; SNCA: synuclein alpha; TEM: transmission electron microscopy; TNTs: tunneling nanotubes; TCSPC: time correlated single photon counting; YFP: yellow fluorescent protein.
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spelling pubmed-71448692020-04-13 Reducing INS-IGF1 signaling protects against non-cell autonomous vesicle rupture caused by SNCA spreading Sandhof, Carl Alexander Hoppe, Simon Oliver Druffel-Augustin, Silke Gallrein, Christian Kirstein, Janine Voisine, Cindy Nussbaum-Krammer, Carmen Autophagy Research Paper Aging is associated with a gradual decline of cellular proteostasis, giving rise to devastating protein misfolding diseases, such as Alzheimer disease (AD) or Parkinson disease (PD). These diseases often exhibit a complex pathology involving non-cell autonomous proteotoxic effects, which are still poorly understood. Using Caenorhabditis elegans we investigated how local protein misfolding is affecting neighboring cells and tissues showing that misfolded PD-associated SNCA/α-synuclein is accumulating in highly dynamic endo-lysosomal vesicles. Irrespective of whether being expressed in muscle cells or dopaminergic neurons, accumulated proteins were transmitted into the hypodermis with increasing age, indicating that epithelial cells might play a role in remote degradation when the local endo-lysosomal degradation capacity is overloaded. Cell biological and genetic approaches revealed that inter-tissue dissemination of SNCA was regulated by endo- and exocytosis (neuron/muscle to hypodermis) and basement membrane remodeling (muscle to hypodermis). Transferred SNCA conformers were, however, inefficiently cleared and induced endo-lysosomal membrane permeabilization. Remarkably, reducing INS (insulin)-IGF1 (insulin-like growth factor 1) signaling provided protection by maintaining endo-lysosomal integrity. This study suggests that the degradation of lysosomal substrates is coordinated across different tissues in metazoan organisms. Because the chronic dissemination of poorly degradable disease proteins into neighboring tissues exerts a non-cell autonomous toxicity, this implies that restoring endo-lysosomal function not only in cells with pathological inclusions, but also in apparently unaffected cell types might help to halt disease progression. Abbreviations: AD: Alzheimer disease; BM: basement membrane; BWM: body wall muscle; CEP: cephalic sensilla; CLEM: correlative light and electron microscopy; CTNS-1: cystinosin (lysosomal protein) homolog; DA: dopaminergic; DAF-2: abnormal dauer formation; ECM: extracellular matrix; FLIM: fluorescence lifetime imaging microscopy; fps: frames per second; GFP: green fluorescent protein; HPF: high pressure freezing; IGF1: insulin-like growth factor 1; INS: insulin; KD: knockdown; LMP: lysosomal membrane permeabilization; MVB: multivesicular body; NOC: nocodazole; PD: Parkinson disease; RFP: red fluorescent protein; RNAi: RNA interference; sfGFP: superfolder GFP; SNCA: synuclein alpha; TEM: transmission electron microscopy; TNTs: tunneling nanotubes; TCSPC: time correlated single photon counting; YFP: yellow fluorescent protein. Taylor & Francis 2019-07-29 /pmc/articles/PMC7144869/ /pubmed/31354022 http://dx.doi.org/10.1080/15548627.2019.1643657 Text en © 2019 The Author(s). Published by Informa UK Limited, trading as Taylor & Francis Group. https://creativecommons.org/licenses/by-nc-nd/4.0/This is an Open Access article distributed under the terms of the Creative Commons Attribution-NonCommercial-NoDerivatives License (http://creativecommons.org/licenses/by-nc-nd/4.0/ (https://creativecommons.org/licenses/by-nc-nd/4.0/) ), which permits non-commercial re-use, distribution, and reproduction in any medium, provided the original work is properly cited, and is not altered, transformed, or built upon in any way.
spellingShingle Research Paper
Sandhof, Carl Alexander
Hoppe, Simon Oliver
Druffel-Augustin, Silke
Gallrein, Christian
Kirstein, Janine
Voisine, Cindy
Nussbaum-Krammer, Carmen
Reducing INS-IGF1 signaling protects against non-cell autonomous vesicle rupture caused by SNCA spreading
title Reducing INS-IGF1 signaling protects against non-cell autonomous vesicle rupture caused by SNCA spreading
title_full Reducing INS-IGF1 signaling protects against non-cell autonomous vesicle rupture caused by SNCA spreading
title_fullStr Reducing INS-IGF1 signaling protects against non-cell autonomous vesicle rupture caused by SNCA spreading
title_full_unstemmed Reducing INS-IGF1 signaling protects against non-cell autonomous vesicle rupture caused by SNCA spreading
title_short Reducing INS-IGF1 signaling protects against non-cell autonomous vesicle rupture caused by SNCA spreading
title_sort reducing ins-igf1 signaling protects against non-cell autonomous vesicle rupture caused by snca spreading
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7144869/
https://www.ncbi.nlm.nih.gov/pubmed/31354022
http://dx.doi.org/10.1080/15548627.2019.1643657
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