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Characterization of HNRNPA1 mutations defines diversity in pathogenic mechanisms and clinical presentation

Mutations in HNRNPA1 encoding heterogeneous nuclear ribonucleoprotein (hnRNP) A1 are a rare cause of amyotrophic lateral sclerosis (ALS) and multisystem proteinopathy (MSP). hnRNPA1 is part of the group of RNA-binding proteins (RBPs) that assemble with RNA to form RNPs. hnRNPs are concentrated in th...

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Autores principales: Beijer, Danique, Kim, Hong Joo, Guo, Lin, O’Donovan, Kevin, Mademan, Inès, Deconinck, Tine, Van Schil, Kristof, Fare, Charlotte M., Drake, Lauren E., Ford, Alice F., Kochański, Andrzej, Kabzińska, Dagmara, Dubuisson, Nicolas, Van den Bergh, Peter, Voermans, Nicol C., Lemmers, Richard J.L.F., van der Maarel, Silvère M., Bonner, Devon, Sampson, Jacinda B., Wheeler, Matthew T., Mehrabyan, Anahit, Palmer, Steven, De Jonghe, Peter, Shorter, James, Taylor, J. Paul, Baets, Jonathan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Clinical Investigation 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8410042/
https://www.ncbi.nlm.nih.gov/pubmed/34291734
http://dx.doi.org/10.1172/jci.insight.148363
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author Beijer, Danique
Kim, Hong Joo
Guo, Lin
O’Donovan, Kevin
Mademan, Inès
Deconinck, Tine
Van Schil, Kristof
Fare, Charlotte M.
Drake, Lauren E.
Ford, Alice F.
Kochański, Andrzej
Kabzińska, Dagmara
Dubuisson, Nicolas
Van den Bergh, Peter
Voermans, Nicol C.
Lemmers, Richard J.L.F.
van der Maarel, Silvère M.
Bonner, Devon
Sampson, Jacinda B.
Wheeler, Matthew T.
Mehrabyan, Anahit
Palmer, Steven
De Jonghe, Peter
Shorter, James
Taylor, J. Paul
Baets, Jonathan
author_facet Beijer, Danique
Kim, Hong Joo
Guo, Lin
O’Donovan, Kevin
Mademan, Inès
Deconinck, Tine
Van Schil, Kristof
Fare, Charlotte M.
Drake, Lauren E.
Ford, Alice F.
Kochański, Andrzej
Kabzińska, Dagmara
Dubuisson, Nicolas
Van den Bergh, Peter
Voermans, Nicol C.
Lemmers, Richard J.L.F.
van der Maarel, Silvère M.
Bonner, Devon
Sampson, Jacinda B.
Wheeler, Matthew T.
Mehrabyan, Anahit
Palmer, Steven
De Jonghe, Peter
Shorter, James
Taylor, J. Paul
Baets, Jonathan
author_sort Beijer, Danique
collection PubMed
description Mutations in HNRNPA1 encoding heterogeneous nuclear ribonucleoprotein (hnRNP) A1 are a rare cause of amyotrophic lateral sclerosis (ALS) and multisystem proteinopathy (MSP). hnRNPA1 is part of the group of RNA-binding proteins (RBPs) that assemble with RNA to form RNPs. hnRNPs are concentrated in the nucleus and function in pre-mRNA splicing, mRNA stability, and the regulation of transcription and translation. During stress, hnRNPs, mRNA, and other RBPs condense in the cytoplasm to form stress granules (SGs). SGs are implicated in the pathogenesis of (neuro-)degenerative diseases, including ALS and inclusion body myopathy (IBM). Mutations in RBPs that affect SG biology, including FUS, TDP-43, hnRNPA1, hnRNPA2B1, and TIA1, underlie ALS, IBM, and other neurodegenerative diseases. Here, we characterize 4 potentially novel HNRNPA1 mutations (yielding 3 protein variants: *321Eext*6, *321Qext*6, and G304Nfs*3) and 2 known HNRNPA1 mutations (P288A and D262V), previously connected to ALS and MSP, in a broad spectrum of patients with hereditary motor neuropathy, ALS, and myopathy. We establish that the mutations can have different effects on hnRNPA1 fibrillization, liquid-liquid phase separation, and SG dynamics. P288A accelerated fibrillization and decelerated SG disassembly, whereas *321Eext*6 had no effect on fibrillization but decelerated SG disassembly. By contrast, G304Nfs*3 decelerated fibrillization and impaired liquid phase separation. Our findings suggest different underlying pathomechanisms for HNRNPA1 mutations with a possible link to clinical phenotypes.
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spelling pubmed-84100422021-09-07 Characterization of HNRNPA1 mutations defines diversity in pathogenic mechanisms and clinical presentation Beijer, Danique Kim, Hong Joo Guo, Lin O’Donovan, Kevin Mademan, Inès Deconinck, Tine Van Schil, Kristof Fare, Charlotte M. Drake, Lauren E. Ford, Alice F. Kochański, Andrzej Kabzińska, Dagmara Dubuisson, Nicolas Van den Bergh, Peter Voermans, Nicol C. Lemmers, Richard J.L.F. van der Maarel, Silvère M. Bonner, Devon Sampson, Jacinda B. Wheeler, Matthew T. Mehrabyan, Anahit Palmer, Steven De Jonghe, Peter Shorter, James Taylor, J. Paul Baets, Jonathan JCI Insight Research Article Mutations in HNRNPA1 encoding heterogeneous nuclear ribonucleoprotein (hnRNP) A1 are a rare cause of amyotrophic lateral sclerosis (ALS) and multisystem proteinopathy (MSP). hnRNPA1 is part of the group of RNA-binding proteins (RBPs) that assemble with RNA to form RNPs. hnRNPs are concentrated in the nucleus and function in pre-mRNA splicing, mRNA stability, and the regulation of transcription and translation. During stress, hnRNPs, mRNA, and other RBPs condense in the cytoplasm to form stress granules (SGs). SGs are implicated in the pathogenesis of (neuro-)degenerative diseases, including ALS and inclusion body myopathy (IBM). Mutations in RBPs that affect SG biology, including FUS, TDP-43, hnRNPA1, hnRNPA2B1, and TIA1, underlie ALS, IBM, and other neurodegenerative diseases. Here, we characterize 4 potentially novel HNRNPA1 mutations (yielding 3 protein variants: *321Eext*6, *321Qext*6, and G304Nfs*3) and 2 known HNRNPA1 mutations (P288A and D262V), previously connected to ALS and MSP, in a broad spectrum of patients with hereditary motor neuropathy, ALS, and myopathy. We establish that the mutations can have different effects on hnRNPA1 fibrillization, liquid-liquid phase separation, and SG dynamics. P288A accelerated fibrillization and decelerated SG disassembly, whereas *321Eext*6 had no effect on fibrillization but decelerated SG disassembly. By contrast, G304Nfs*3 decelerated fibrillization and impaired liquid phase separation. Our findings suggest different underlying pathomechanisms for HNRNPA1 mutations with a possible link to clinical phenotypes. American Society for Clinical Investigation 2021-07-22 /pmc/articles/PMC8410042/ /pubmed/34291734 http://dx.doi.org/10.1172/jci.insight.148363 Text en © 2021 Beijer et al. https://creativecommons.org/licenses/by/4.0/This work is licensed under the Creative Commons Attribution 4.0 International License. To view a copy of this license, visit http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) .
spellingShingle Research Article
Beijer, Danique
Kim, Hong Joo
Guo, Lin
O’Donovan, Kevin
Mademan, Inès
Deconinck, Tine
Van Schil, Kristof
Fare, Charlotte M.
Drake, Lauren E.
Ford, Alice F.
Kochański, Andrzej
Kabzińska, Dagmara
Dubuisson, Nicolas
Van den Bergh, Peter
Voermans, Nicol C.
Lemmers, Richard J.L.F.
van der Maarel, Silvère M.
Bonner, Devon
Sampson, Jacinda B.
Wheeler, Matthew T.
Mehrabyan, Anahit
Palmer, Steven
De Jonghe, Peter
Shorter, James
Taylor, J. Paul
Baets, Jonathan
Characterization of HNRNPA1 mutations defines diversity in pathogenic mechanisms and clinical presentation
title Characterization of HNRNPA1 mutations defines diversity in pathogenic mechanisms and clinical presentation
title_full Characterization of HNRNPA1 mutations defines diversity in pathogenic mechanisms and clinical presentation
title_fullStr Characterization of HNRNPA1 mutations defines diversity in pathogenic mechanisms and clinical presentation
title_full_unstemmed Characterization of HNRNPA1 mutations defines diversity in pathogenic mechanisms and clinical presentation
title_short Characterization of HNRNPA1 mutations defines diversity in pathogenic mechanisms and clinical presentation
title_sort characterization of hnrnpa1 mutations defines diversity in pathogenic mechanisms and clinical presentation
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8410042/
https://www.ncbi.nlm.nih.gov/pubmed/34291734
http://dx.doi.org/10.1172/jci.insight.148363
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