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Genetic disruption of WASHC4 drives endo-lysosomal dysfunction and cognitive-movement impairments in mice and humans

Mutation of the Wiskott–Aldrich syndrome protein and SCAR homology (WASH) complex subunit, SWIP, is implicated in human intellectual disability, but the cellular etiology of this association is unknown. We identify the neuronal WASH complex proteome, revealing a network of endosomal proteins. To unc...

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Autores principales: Courtland, Jamie L, Bradshaw, Tyler WA, Waitt, Greg, Soderblom, Erik J, Ho, Tricia, Rajab, Anna, Vancini, Ricardo, Kim, Il Hwan, Soderling, Scott H
Formato: Online Artículo Texto
Lenguaje:English
Publicado: eLife Sciences Publications, Ltd 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7984842/
https://www.ncbi.nlm.nih.gov/pubmed/33749590
http://dx.doi.org/10.7554/eLife.61590
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author Courtland, Jamie L
Bradshaw, Tyler WA
Waitt, Greg
Soderblom, Erik J
Ho, Tricia
Rajab, Anna
Vancini, Ricardo
Kim, Il Hwan
Soderling, Scott H
author_facet Courtland, Jamie L
Bradshaw, Tyler WA
Waitt, Greg
Soderblom, Erik J
Ho, Tricia
Rajab, Anna
Vancini, Ricardo
Kim, Il Hwan
Soderling, Scott H
author_sort Courtland, Jamie L
collection PubMed
description Mutation of the Wiskott–Aldrich syndrome protein and SCAR homology (WASH) complex subunit, SWIP, is implicated in human intellectual disability, but the cellular etiology of this association is unknown. We identify the neuronal WASH complex proteome, revealing a network of endosomal proteins. To uncover how dysfunction of endosomal SWIP leads to disease, we generate a mouse model of the human WASHC4(c.3056C>G) mutation. Quantitative spatial proteomics analysis of SWIP(P1019R) mouse brain reveals that this mutation destabilizes the WASH complex and uncovers significant perturbations in both endosomal and lysosomal pathways. Cellular and histological analyses confirm that SWIP(P1019R) results in endo-lysosomal disruption and uncover indicators of neurodegeneration. We find that SWIP(P1019R) not only impacts cognition, but also causes significant progressive motor deficits in mice. A retrospective analysis of SWIP(P1019R) patients reveals similar movement deficits in humans. Combined, these findings support the model that WASH complex destabilization, resulting from SWIP(P1019R), drives cognitive and motor impairments via endo-lysosomal dysfunction in the brain.
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spelling pubmed-79848422021-03-24 Genetic disruption of WASHC4 drives endo-lysosomal dysfunction and cognitive-movement impairments in mice and humans Courtland, Jamie L Bradshaw, Tyler WA Waitt, Greg Soderblom, Erik J Ho, Tricia Rajab, Anna Vancini, Ricardo Kim, Il Hwan Soderling, Scott H eLife Cell Biology Mutation of the Wiskott–Aldrich syndrome protein and SCAR homology (WASH) complex subunit, SWIP, is implicated in human intellectual disability, but the cellular etiology of this association is unknown. We identify the neuronal WASH complex proteome, revealing a network of endosomal proteins. To uncover how dysfunction of endosomal SWIP leads to disease, we generate a mouse model of the human WASHC4(c.3056C>G) mutation. Quantitative spatial proteomics analysis of SWIP(P1019R) mouse brain reveals that this mutation destabilizes the WASH complex and uncovers significant perturbations in both endosomal and lysosomal pathways. Cellular and histological analyses confirm that SWIP(P1019R) results in endo-lysosomal disruption and uncover indicators of neurodegeneration. We find that SWIP(P1019R) not only impacts cognition, but also causes significant progressive motor deficits in mice. A retrospective analysis of SWIP(P1019R) patients reveals similar movement deficits in humans. Combined, these findings support the model that WASH complex destabilization, resulting from SWIP(P1019R), drives cognitive and motor impairments via endo-lysosomal dysfunction in the brain. eLife Sciences Publications, Ltd 2021-03-22 /pmc/articles/PMC7984842/ /pubmed/33749590 http://dx.doi.org/10.7554/eLife.61590 Text en © 2021, Courtland et al http://creativecommons.org/licenses/by/4.0/ http://creativecommons.org/licenses/by/4.0/This article is distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use and redistribution provided that the original author and source are credited.
spellingShingle Cell Biology
Courtland, Jamie L
Bradshaw, Tyler WA
Waitt, Greg
Soderblom, Erik J
Ho, Tricia
Rajab, Anna
Vancini, Ricardo
Kim, Il Hwan
Soderling, Scott H
Genetic disruption of WASHC4 drives endo-lysosomal dysfunction and cognitive-movement impairments in mice and humans
title Genetic disruption of WASHC4 drives endo-lysosomal dysfunction and cognitive-movement impairments in mice and humans
title_full Genetic disruption of WASHC4 drives endo-lysosomal dysfunction and cognitive-movement impairments in mice and humans
title_fullStr Genetic disruption of WASHC4 drives endo-lysosomal dysfunction and cognitive-movement impairments in mice and humans
title_full_unstemmed Genetic disruption of WASHC4 drives endo-lysosomal dysfunction and cognitive-movement impairments in mice and humans
title_short Genetic disruption of WASHC4 drives endo-lysosomal dysfunction and cognitive-movement impairments in mice and humans
title_sort genetic disruption of washc4 drives endo-lysosomal dysfunction and cognitive-movement impairments in mice and humans
topic Cell Biology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7984842/
https://www.ncbi.nlm.nih.gov/pubmed/33749590
http://dx.doi.org/10.7554/eLife.61590
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