Cargando…

Lysosomal proteomics reveals mechanisms of neuronal apoE4associated lysosomal dysfunction

ApoE4 is the primary risk factor for Alzheimer’s Disease. While apoE is primarily expressed by astrocytes, AD pathology including endosomal abnormalities and mitochondrial dysfunction first occurs in neurons. Lysosomes are poised at the convergence point between these features. We find that apoE4-ex...

Descripción completa

Detalles Bibliográficos
Autores principales: Krogsaeter, Einar K., McKetney, Justin, Marquez, Angelica, Cakir, Zeynep, Stevenson, Erica, Jang, Gwendolyn M., Rao, Antara, Zhou, Anton, Huang, Yadong, Krogan, Nevan J., Swaney, Danielle L.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Cold Spring Harbor Laboratory 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10592882/
https://www.ncbi.nlm.nih.gov/pubmed/37873080
http://dx.doi.org/10.1101/2023.10.02.560519
_version_ 1785124358732120064
author Krogsaeter, Einar K.
McKetney, Justin
Marquez, Angelica
Cakir, Zeynep
Stevenson, Erica
Jang, Gwendolyn M.
Rao, Antara
Zhou, Anton
Huang, Yadong
Krogan, Nevan J.
Swaney, Danielle L.
author_facet Krogsaeter, Einar K.
McKetney, Justin
Marquez, Angelica
Cakir, Zeynep
Stevenson, Erica
Jang, Gwendolyn M.
Rao, Antara
Zhou, Anton
Huang, Yadong
Krogan, Nevan J.
Swaney, Danielle L.
author_sort Krogsaeter, Einar K.
collection PubMed
description ApoE4 is the primary risk factor for Alzheimer’s Disease. While apoE is primarily expressed by astrocytes, AD pathology including endosomal abnormalities and mitochondrial dysfunction first occurs in neurons. Lysosomes are poised at the convergence point between these features. We find that apoE4-expressing cells exhibit lysosomal alkalinization, reduced lysosomal proteolysis, and impaired mitophagy. To identify driving factors for this lysosomal dysfunction, we performed quantitative lysosomal proteome profiling. This revealed that apoE4 expression results in lysosomal depletion of Lgals3bp and accumulation of Tmed5 in both Neuro-2a cells and postmitotic human neurons. Modulating the expression of both proteins affected lysosomal function, with Tmed5 knockdown rescuing lysosomal alkalinization in apoE4 cells, and Lgals3bp knockdown causing lysosomal alkalinization and reduced lysosomal density in apoE3 cells. Taken together, our work reveals that apoE4 exerts gain-of-toxicity by alkalinizing the lysosomal lumen, pinpointing lysosomal Tmed5 accumulation and Lgals3bp depletion as apoE4-associated drivers for this phenotype.
format Online
Article
Text
id pubmed-10592882
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher Cold Spring Harbor Laboratory
record_format MEDLINE/PubMed
spelling pubmed-105928822023-10-24 Lysosomal proteomics reveals mechanisms of neuronal apoE4associated lysosomal dysfunction Krogsaeter, Einar K. McKetney, Justin Marquez, Angelica Cakir, Zeynep Stevenson, Erica Jang, Gwendolyn M. Rao, Antara Zhou, Anton Huang, Yadong Krogan, Nevan J. Swaney, Danielle L. bioRxiv Article ApoE4 is the primary risk factor for Alzheimer’s Disease. While apoE is primarily expressed by astrocytes, AD pathology including endosomal abnormalities and mitochondrial dysfunction first occurs in neurons. Lysosomes are poised at the convergence point between these features. We find that apoE4-expressing cells exhibit lysosomal alkalinization, reduced lysosomal proteolysis, and impaired mitophagy. To identify driving factors for this lysosomal dysfunction, we performed quantitative lysosomal proteome profiling. This revealed that apoE4 expression results in lysosomal depletion of Lgals3bp and accumulation of Tmed5 in both Neuro-2a cells and postmitotic human neurons. Modulating the expression of both proteins affected lysosomal function, with Tmed5 knockdown rescuing lysosomal alkalinization in apoE4 cells, and Lgals3bp knockdown causing lysosomal alkalinization and reduced lysosomal density in apoE3 cells. Taken together, our work reveals that apoE4 exerts gain-of-toxicity by alkalinizing the lysosomal lumen, pinpointing lysosomal Tmed5 accumulation and Lgals3bp depletion as apoE4-associated drivers for this phenotype. Cold Spring Harbor Laboratory 2023-10-02 /pmc/articles/PMC10592882/ /pubmed/37873080 http://dx.doi.org/10.1101/2023.10.02.560519 Text en https://creativecommons.org/licenses/by-nc-nd/4.0/This work is licensed under a Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 International License (https://creativecommons.org/licenses/by-nc-nd/4.0/) , which allows reusers to copy and distribute the material in any medium or format in unadapted form only, for noncommercial purposes only, and only so long as attribution is given to the creator.
spellingShingle Article
Krogsaeter, Einar K.
McKetney, Justin
Marquez, Angelica
Cakir, Zeynep
Stevenson, Erica
Jang, Gwendolyn M.
Rao, Antara
Zhou, Anton
Huang, Yadong
Krogan, Nevan J.
Swaney, Danielle L.
Lysosomal proteomics reveals mechanisms of neuronal apoE4associated lysosomal dysfunction
title Lysosomal proteomics reveals mechanisms of neuronal apoE4associated lysosomal dysfunction
title_full Lysosomal proteomics reveals mechanisms of neuronal apoE4associated lysosomal dysfunction
title_fullStr Lysosomal proteomics reveals mechanisms of neuronal apoE4associated lysosomal dysfunction
title_full_unstemmed Lysosomal proteomics reveals mechanisms of neuronal apoE4associated lysosomal dysfunction
title_short Lysosomal proteomics reveals mechanisms of neuronal apoE4associated lysosomal dysfunction
title_sort lysosomal proteomics reveals mechanisms of neuronal apoe4associated lysosomal dysfunction
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10592882/
https://www.ncbi.nlm.nih.gov/pubmed/37873080
http://dx.doi.org/10.1101/2023.10.02.560519
work_keys_str_mv AT krogsaetereinark lysosomalproteomicsrevealsmechanismsofneuronalapoe4associatedlysosomaldysfunction
AT mcketneyjustin lysosomalproteomicsrevealsmechanismsofneuronalapoe4associatedlysosomaldysfunction
AT marquezangelica lysosomalproteomicsrevealsmechanismsofneuronalapoe4associatedlysosomaldysfunction
AT cakirzeynep lysosomalproteomicsrevealsmechanismsofneuronalapoe4associatedlysosomaldysfunction
AT stevensonerica lysosomalproteomicsrevealsmechanismsofneuronalapoe4associatedlysosomaldysfunction
AT janggwendolynm lysosomalproteomicsrevealsmechanismsofneuronalapoe4associatedlysosomaldysfunction
AT raoantara lysosomalproteomicsrevealsmechanismsofneuronalapoe4associatedlysosomaldysfunction
AT zhouanton lysosomalproteomicsrevealsmechanismsofneuronalapoe4associatedlysosomaldysfunction
AT huangyadong lysosomalproteomicsrevealsmechanismsofneuronalapoe4associatedlysosomaldysfunction
AT krogannevanj lysosomalproteomicsrevealsmechanismsofneuronalapoe4associatedlysosomaldysfunction
AT swaneydaniellel lysosomalproteomicsrevealsmechanismsofneuronalapoe4associatedlysosomaldysfunction