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ATP13A2 Regulates Cellular α-Synuclein Multimerization, Membrane Association, and Externalization

ATP13A2, a late endo-/lysosomal polyamine transporter, is implicated in a variety of neurodegenerative diseases, including Parkinson’s disease and Kufor–Rakeb syndrome, an early-onset atypical form of parkinsonism. Loss-of-function mutations in ATP13A2 result in lysosomal deficiency as a consequence...

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Autores principales: Si, Jianmin, Van den Haute, Chris, Lobbestael, Evy, Martin, Shaun, van Veen, Sarah, Vangheluwe, Peter, Baekelandt, Veerle
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7962109/
https://www.ncbi.nlm.nih.gov/pubmed/33799982
http://dx.doi.org/10.3390/ijms22052689
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author Si, Jianmin
Van den Haute, Chris
Lobbestael, Evy
Martin, Shaun
van Veen, Sarah
Vangheluwe, Peter
Baekelandt, Veerle
author_facet Si, Jianmin
Van den Haute, Chris
Lobbestael, Evy
Martin, Shaun
van Veen, Sarah
Vangheluwe, Peter
Baekelandt, Veerle
author_sort Si, Jianmin
collection PubMed
description ATP13A2, a late endo-/lysosomal polyamine transporter, is implicated in a variety of neurodegenerative diseases, including Parkinson’s disease and Kufor–Rakeb syndrome, an early-onset atypical form of parkinsonism. Loss-of-function mutations in ATP13A2 result in lysosomal deficiency as a consequence of impaired lysosomal export of the polyamines spermine/spermidine. Furthermore, accumulating evidence suggests the involvement of ATP13A2 in regulating the fate of α-synuclein, such as cytoplasmic accumulation and external release. However, no consensus has yet been reached on the mechanisms underlying these effects. Here, we aimed to gain more insight into how ATP13A2 is linked to α-synuclein biology in cell models with modified ATP13A2 activity. We found that loss of ATP13A2 impairs lysosomal membrane integrity and induces α-synuclein multimerization at the membrane, which is enhanced in conditions of oxidative stress or exposure to spermine. In contrast, overexpression of ATP13A2 wildtype (WT) had a protective effect on α-synuclein multimerization, which corresponded with reduced αsyn membrane association and stimulation of the ubiquitin-proteasome system. We also found that ATP13A2 promoted the secretion of α-synuclein through nanovesicles. Interestingly, the catalytically inactive ATP13A2 D508N mutant also affected polyubiquitination and externalization of α-synuclein multimers, suggesting a regulatory function independent of the ATPase and transport activity. In conclusion, our study demonstrates the impact of ATP13A2 on α-synuclein multimerization via polyamine transport dependent and independent functions.
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spelling pubmed-79621092021-03-17 ATP13A2 Regulates Cellular α-Synuclein Multimerization, Membrane Association, and Externalization Si, Jianmin Van den Haute, Chris Lobbestael, Evy Martin, Shaun van Veen, Sarah Vangheluwe, Peter Baekelandt, Veerle Int J Mol Sci Article ATP13A2, a late endo-/lysosomal polyamine transporter, is implicated in a variety of neurodegenerative diseases, including Parkinson’s disease and Kufor–Rakeb syndrome, an early-onset atypical form of parkinsonism. Loss-of-function mutations in ATP13A2 result in lysosomal deficiency as a consequence of impaired lysosomal export of the polyamines spermine/spermidine. Furthermore, accumulating evidence suggests the involvement of ATP13A2 in regulating the fate of α-synuclein, such as cytoplasmic accumulation and external release. However, no consensus has yet been reached on the mechanisms underlying these effects. Here, we aimed to gain more insight into how ATP13A2 is linked to α-synuclein biology in cell models with modified ATP13A2 activity. We found that loss of ATP13A2 impairs lysosomal membrane integrity and induces α-synuclein multimerization at the membrane, which is enhanced in conditions of oxidative stress or exposure to spermine. In contrast, overexpression of ATP13A2 wildtype (WT) had a protective effect on α-synuclein multimerization, which corresponded with reduced αsyn membrane association and stimulation of the ubiquitin-proteasome system. We also found that ATP13A2 promoted the secretion of α-synuclein through nanovesicles. Interestingly, the catalytically inactive ATP13A2 D508N mutant also affected polyubiquitination and externalization of α-synuclein multimers, suggesting a regulatory function independent of the ATPase and transport activity. In conclusion, our study demonstrates the impact of ATP13A2 on α-synuclein multimerization via polyamine transport dependent and independent functions. MDPI 2021-03-07 /pmc/articles/PMC7962109/ /pubmed/33799982 http://dx.doi.org/10.3390/ijms22052689 Text en © 2021 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Si, Jianmin
Van den Haute, Chris
Lobbestael, Evy
Martin, Shaun
van Veen, Sarah
Vangheluwe, Peter
Baekelandt, Veerle
ATP13A2 Regulates Cellular α-Synuclein Multimerization, Membrane Association, and Externalization
title ATP13A2 Regulates Cellular α-Synuclein Multimerization, Membrane Association, and Externalization
title_full ATP13A2 Regulates Cellular α-Synuclein Multimerization, Membrane Association, and Externalization
title_fullStr ATP13A2 Regulates Cellular α-Synuclein Multimerization, Membrane Association, and Externalization
title_full_unstemmed ATP13A2 Regulates Cellular α-Synuclein Multimerization, Membrane Association, and Externalization
title_short ATP13A2 Regulates Cellular α-Synuclein Multimerization, Membrane Association, and Externalization
title_sort atp13a2 regulates cellular α-synuclein multimerization, membrane association, and externalization
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7962109/
https://www.ncbi.nlm.nih.gov/pubmed/33799982
http://dx.doi.org/10.3390/ijms22052689
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