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Characterization of Stress Granule Protein Turnover in Neuronal Progenitor Cells Using Correlative STED and NanoSIMS Imaging

Stress granules (SGs) are stress-induced biomolecular condensates which originate primarily from inactivated RNA translation machinery and translation initiation factors. SG formation is an important defensive mechanism for cell survival, while its dysfunction has been linked to neurodegenerative di...

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Autores principales: Rabasco, Stefania, Lork, Alicia A., Berlin, Emmanuel, Nguyen, Tho D. K., Ernst, Carl, Locker, Nicolas, Ewing, Andrew G., Phan, Nhu T. N.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9917160/
https://www.ncbi.nlm.nih.gov/pubmed/36768868
http://dx.doi.org/10.3390/ijms24032546
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author Rabasco, Stefania
Lork, Alicia A.
Berlin, Emmanuel
Nguyen, Tho D. K.
Ernst, Carl
Locker, Nicolas
Ewing, Andrew G.
Phan, Nhu T. N.
author_facet Rabasco, Stefania
Lork, Alicia A.
Berlin, Emmanuel
Nguyen, Tho D. K.
Ernst, Carl
Locker, Nicolas
Ewing, Andrew G.
Phan, Nhu T. N.
author_sort Rabasco, Stefania
collection PubMed
description Stress granules (SGs) are stress-induced biomolecular condensates which originate primarily from inactivated RNA translation machinery and translation initiation factors. SG formation is an important defensive mechanism for cell survival, while its dysfunction has been linked to neurodegenerative diseases. However, the molecular mechanisms of SG assembly and disassembly, as well as their impacts on cellular recovery, are not fully understood. More thorough investigations into the molecular dynamics of SG pathways are required to understand the pathophysiological roles of SGs in cellular systems. Here, we characterize the SG and cytoplasmic protein turnover in neuronal progenitor cells (NPCs) under stressed and non-stressed conditions using correlative STED and NanoSIMS imaging. We incubate NPCs with isotopically labelled ((15)N) leucine and stress them with the ER stressor thapsigargin (TG). A correlation of STED and NanoSIMS allows the localization of individual SGs (using STED), and their protein turnover can then be extracted based on the (15)N/(14)N ratio (using NanoSIMS). We found that TG-induced SGs, which are highly dynamic domains, recruit their constituents predominantly from the cytoplasm. Moreover, ER stress impairs the total cellular protein turnover regimen, and this impairment is not restored after the commonly proceeded stress recovery period.
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spelling pubmed-99171602023-02-11 Characterization of Stress Granule Protein Turnover in Neuronal Progenitor Cells Using Correlative STED and NanoSIMS Imaging Rabasco, Stefania Lork, Alicia A. Berlin, Emmanuel Nguyen, Tho D. K. Ernst, Carl Locker, Nicolas Ewing, Andrew G. Phan, Nhu T. N. Int J Mol Sci Article Stress granules (SGs) are stress-induced biomolecular condensates which originate primarily from inactivated RNA translation machinery and translation initiation factors. SG formation is an important defensive mechanism for cell survival, while its dysfunction has been linked to neurodegenerative diseases. However, the molecular mechanisms of SG assembly and disassembly, as well as their impacts on cellular recovery, are not fully understood. More thorough investigations into the molecular dynamics of SG pathways are required to understand the pathophysiological roles of SGs in cellular systems. Here, we characterize the SG and cytoplasmic protein turnover in neuronal progenitor cells (NPCs) under stressed and non-stressed conditions using correlative STED and NanoSIMS imaging. We incubate NPCs with isotopically labelled ((15)N) leucine and stress them with the ER stressor thapsigargin (TG). A correlation of STED and NanoSIMS allows the localization of individual SGs (using STED), and their protein turnover can then be extracted based on the (15)N/(14)N ratio (using NanoSIMS). We found that TG-induced SGs, which are highly dynamic domains, recruit their constituents predominantly from the cytoplasm. Moreover, ER stress impairs the total cellular protein turnover regimen, and this impairment is not restored after the commonly proceeded stress recovery period. MDPI 2023-01-29 /pmc/articles/PMC9917160/ /pubmed/36768868 http://dx.doi.org/10.3390/ijms24032546 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/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 (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Rabasco, Stefania
Lork, Alicia A.
Berlin, Emmanuel
Nguyen, Tho D. K.
Ernst, Carl
Locker, Nicolas
Ewing, Andrew G.
Phan, Nhu T. N.
Characterization of Stress Granule Protein Turnover in Neuronal Progenitor Cells Using Correlative STED and NanoSIMS Imaging
title Characterization of Stress Granule Protein Turnover in Neuronal Progenitor Cells Using Correlative STED and NanoSIMS Imaging
title_full Characterization of Stress Granule Protein Turnover in Neuronal Progenitor Cells Using Correlative STED and NanoSIMS Imaging
title_fullStr Characterization of Stress Granule Protein Turnover in Neuronal Progenitor Cells Using Correlative STED and NanoSIMS Imaging
title_full_unstemmed Characterization of Stress Granule Protein Turnover in Neuronal Progenitor Cells Using Correlative STED and NanoSIMS Imaging
title_short Characterization of Stress Granule Protein Turnover in Neuronal Progenitor Cells Using Correlative STED and NanoSIMS Imaging
title_sort characterization of stress granule protein turnover in neuronal progenitor cells using correlative sted and nanosims imaging
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9917160/
https://www.ncbi.nlm.nih.gov/pubmed/36768868
http://dx.doi.org/10.3390/ijms24032546
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