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Functions of Gle1 are governed by two distinct modes of self-association

Gle1 is a conserved, essential regulator of DEAD-box RNA helicases, with critical roles defined in mRNA export, translation initiation, translation termination, and stress granule formation. Mechanisms that specify which, where, and when DDXs are targeted by Gle1 are critical to understand. In addit...

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Autores principales: Mason, Aaron C., Wente, Susan R.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Biochemistry and Molecular Biology 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7864074/
https://www.ncbi.nlm.nih.gov/pubmed/32981894
http://dx.doi.org/10.1074/jbc.RA120.015715
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author Mason, Aaron C.
Wente, Susan R.
author_facet Mason, Aaron C.
Wente, Susan R.
author_sort Mason, Aaron C.
collection PubMed
description Gle1 is a conserved, essential regulator of DEAD-box RNA helicases, with critical roles defined in mRNA export, translation initiation, translation termination, and stress granule formation. Mechanisms that specify which, where, and when DDXs are targeted by Gle1 are critical to understand. In addition to roles for stress-induced phosphorylation and inositol hexakisphosphate binding in specifying Gle1 function, Gle1 oligomerizes via its N-terminal domain in a phosphorylation-dependent manner. However, a thorough analysis of the role for Gle1 self-association is lacking. Here, we find that Gle1 self-association is driven by two distinct regions: a coiled-coil domain and a novel 10-amino acid aggregation-prone region, both of which are necessary for proper Gle1 oligomerization. By exogenous expression in HeLa cells, we tested the function of a series of mutations that impact the oligomerization domains of the Gle1A and Gle1B isoforms. Gle1 oligomerization is necessary for many, but not all aspects of Gle1A and Gle1B function, and the requirements for each interaction domain differ. Whereas the coiled-coil domain and aggregation-prone region additively contribute to competent mRNA export and stress granule formation, both self-association domains are independently required for regulation of translation under cellular stress. In contrast, Gle1 self-association is dispensable for phosphorylation and nonstressed translation initiation. Collectively, we reveal self-association functions as an additional mode of Gle1 regulation to ensure proper mRNA export and translation. This work also provides further insight into the mechanisms underlying human gle1 disease mutants found in prenatally lethal forms of arthrogryposis.
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spelling pubmed-78640742021-06-10 Functions of Gle1 are governed by two distinct modes of self-association Mason, Aaron C. Wente, Susan R. J Biol Chem Cell Biology Gle1 is a conserved, essential regulator of DEAD-box RNA helicases, with critical roles defined in mRNA export, translation initiation, translation termination, and stress granule formation. Mechanisms that specify which, where, and when DDXs are targeted by Gle1 are critical to understand. In addition to roles for stress-induced phosphorylation and inositol hexakisphosphate binding in specifying Gle1 function, Gle1 oligomerizes via its N-terminal domain in a phosphorylation-dependent manner. However, a thorough analysis of the role for Gle1 self-association is lacking. Here, we find that Gle1 self-association is driven by two distinct regions: a coiled-coil domain and a novel 10-amino acid aggregation-prone region, both of which are necessary for proper Gle1 oligomerization. By exogenous expression in HeLa cells, we tested the function of a series of mutations that impact the oligomerization domains of the Gle1A and Gle1B isoforms. Gle1 oligomerization is necessary for many, but not all aspects of Gle1A and Gle1B function, and the requirements for each interaction domain differ. Whereas the coiled-coil domain and aggregation-prone region additively contribute to competent mRNA export and stress granule formation, both self-association domains are independently required for regulation of translation under cellular stress. In contrast, Gle1 self-association is dispensable for phosphorylation and nonstressed translation initiation. Collectively, we reveal self-association functions as an additional mode of Gle1 regulation to ensure proper mRNA export and translation. This work also provides further insight into the mechanisms underlying human gle1 disease mutants found in prenatally lethal forms of arthrogryposis. American Society for Biochemistry and Molecular Biology 2021-01-13 /pmc/articles/PMC7864074/ /pubmed/32981894 http://dx.doi.org/10.1074/jbc.RA120.015715 Text en © 2020 © 2020 Mason and Wente. https://creativecommons.org/licenses/by/4.0/This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Cell Biology
Mason, Aaron C.
Wente, Susan R.
Functions of Gle1 are governed by two distinct modes of self-association
title Functions of Gle1 are governed by two distinct modes of self-association
title_full Functions of Gle1 are governed by two distinct modes of self-association
title_fullStr Functions of Gle1 are governed by two distinct modes of self-association
title_full_unstemmed Functions of Gle1 are governed by two distinct modes of self-association
title_short Functions of Gle1 are governed by two distinct modes of self-association
title_sort functions of gle1 are governed by two distinct modes of self-association
topic Cell Biology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7864074/
https://www.ncbi.nlm.nih.gov/pubmed/32981894
http://dx.doi.org/10.1074/jbc.RA120.015715
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