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TrkB signaling regulates the cold-shock protein RBM3-mediated neuroprotection

Increasing levels of the cold-shock protein, RNA-binding motif 3 (RBM3), either through cooling or by ectopic over-expression, prevents synapse and neuronal loss in mouse models of neurodegeneration. To exploit this process therapeutically requires an understanding of mechanisms controlling cold-ind...

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Autores principales: Peretti, Diego, Smith, Heather L, Verity, Nicholas, Humoud, Ibrahim, de Weerd, Lis, Swinden, Dean P, Hayes, Joseph, Mallucci, Giovanna R
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Life Science Alliance LLC 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7893816/
https://www.ncbi.nlm.nih.gov/pubmed/33563652
http://dx.doi.org/10.26508/lsa.202000884
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author Peretti, Diego
Smith, Heather L
Verity, Nicholas
Humoud, Ibrahim
de Weerd, Lis
Swinden, Dean P
Hayes, Joseph
Mallucci, Giovanna R
author_facet Peretti, Diego
Smith, Heather L
Verity, Nicholas
Humoud, Ibrahim
de Weerd, Lis
Swinden, Dean P
Hayes, Joseph
Mallucci, Giovanna R
author_sort Peretti, Diego
collection PubMed
description Increasing levels of the cold-shock protein, RNA-binding motif 3 (RBM3), either through cooling or by ectopic over-expression, prevents synapse and neuronal loss in mouse models of neurodegeneration. To exploit this process therapeutically requires an understanding of mechanisms controlling cold-induced RBM3 expression. Here, we show that cooling increases RBM3 through activation of TrkB via PLCγ1 and pCREB signaling. RBM3, in turn, has a hitherto unrecognized negative feedback on TrkB-induced ERK activation through induction of its specific phosphatase, DUSP6. Thus, RBM3 mediates structural plasticity through a distinct, non-canonical activation of TrkB signaling, which is abolished in RBM3-null neurons. Both genetic reduction and pharmacological antagonism of TrkB and its downstream mediators abrogate cooling-induced RBM3 induction and prevent structural plasticity, whereas TrkB inhibition similarly prevents RBM3 induction and the neuroprotective effects of cooling in prion-diseased mice. Conversely, TrkB agonism induces RBM3 without cooling, preventing synapse loss and neurodegeneration. TrkB signaling is, therefore, necessary for the induction of RBM3 and related neuroprotective effects and provides a target by which RBM3-mediated synapse-regenerative therapies in neurodegenerative disorders can be used therapeutically without the need for inducing hypothermia.
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spelling pubmed-78938162021-02-24 TrkB signaling regulates the cold-shock protein RBM3-mediated neuroprotection Peretti, Diego Smith, Heather L Verity, Nicholas Humoud, Ibrahim de Weerd, Lis Swinden, Dean P Hayes, Joseph Mallucci, Giovanna R Life Sci Alliance Research Articles Increasing levels of the cold-shock protein, RNA-binding motif 3 (RBM3), either through cooling or by ectopic over-expression, prevents synapse and neuronal loss in mouse models of neurodegeneration. To exploit this process therapeutically requires an understanding of mechanisms controlling cold-induced RBM3 expression. Here, we show that cooling increases RBM3 through activation of TrkB via PLCγ1 and pCREB signaling. RBM3, in turn, has a hitherto unrecognized negative feedback on TrkB-induced ERK activation through induction of its specific phosphatase, DUSP6. Thus, RBM3 mediates structural plasticity through a distinct, non-canonical activation of TrkB signaling, which is abolished in RBM3-null neurons. Both genetic reduction and pharmacological antagonism of TrkB and its downstream mediators abrogate cooling-induced RBM3 induction and prevent structural plasticity, whereas TrkB inhibition similarly prevents RBM3 induction and the neuroprotective effects of cooling in prion-diseased mice. Conversely, TrkB agonism induces RBM3 without cooling, preventing synapse loss and neurodegeneration. TrkB signaling is, therefore, necessary for the induction of RBM3 and related neuroprotective effects and provides a target by which RBM3-mediated synapse-regenerative therapies in neurodegenerative disorders can be used therapeutically without the need for inducing hypothermia. Life Science Alliance LLC 2021-02-09 /pmc/articles/PMC7893816/ /pubmed/33563652 http://dx.doi.org/10.26508/lsa.202000884 Text en © 2021 Peretti et al. https://creativecommons.org/licenses/by/4.0/This article is available under a Creative Commons License (Attribution 4.0 International, as described at https://creativecommons.org/licenses/by/4.0/).
spellingShingle Research Articles
Peretti, Diego
Smith, Heather L
Verity, Nicholas
Humoud, Ibrahim
de Weerd, Lis
Swinden, Dean P
Hayes, Joseph
Mallucci, Giovanna R
TrkB signaling regulates the cold-shock protein RBM3-mediated neuroprotection
title TrkB signaling regulates the cold-shock protein RBM3-mediated neuroprotection
title_full TrkB signaling regulates the cold-shock protein RBM3-mediated neuroprotection
title_fullStr TrkB signaling regulates the cold-shock protein RBM3-mediated neuroprotection
title_full_unstemmed TrkB signaling regulates the cold-shock protein RBM3-mediated neuroprotection
title_short TrkB signaling regulates the cold-shock protein RBM3-mediated neuroprotection
title_sort trkb signaling regulates the cold-shock protein rbm3-mediated neuroprotection
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7893816/
https://www.ncbi.nlm.nih.gov/pubmed/33563652
http://dx.doi.org/10.26508/lsa.202000884
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