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SynGAP isoforms exert opposing effects on synaptic strength

Alternative promoter usage and alternative splicing enable diversification of the transcriptome. Here we demonstrate that the function of Synaptic GTPase-Activating Protein (SynGAP), a key synaptic protein, is determined by the combination of its amino-terminal sequence with its carboxy-terminal seq...

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Autores principales: McMahon, A.C., Barnett, M.W., O'Leary, T.S., Stoney, P.N., Collins, M.O., Papadia, S., Choudhary, J.S., Komiyama, N.H., Grant, S.G.N., Hardingham, G.E., Wyllie, D.J.A., Kind, P.C.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Nature Pub. Group 2012
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3621422/
https://www.ncbi.nlm.nih.gov/pubmed/22692543
http://dx.doi.org/10.1038/ncomms1900
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author McMahon, A.C.
Barnett, M.W.
O'Leary, T.S.
Stoney, P.N.
Collins, M.O.
Papadia, S.
Choudhary, J.S.
Komiyama, N.H.
Grant, S.G.N.
Hardingham, G.E.
Wyllie, D.J.A.
Kind, P.C.
author_facet McMahon, A.C.
Barnett, M.W.
O'Leary, T.S.
Stoney, P.N.
Collins, M.O.
Papadia, S.
Choudhary, J.S.
Komiyama, N.H.
Grant, S.G.N.
Hardingham, G.E.
Wyllie, D.J.A.
Kind, P.C.
author_sort McMahon, A.C.
collection PubMed
description Alternative promoter usage and alternative splicing enable diversification of the transcriptome. Here we demonstrate that the function of Synaptic GTPase-Activating Protein (SynGAP), a key synaptic protein, is determined by the combination of its amino-terminal sequence with its carboxy-terminal sequence. 5′ rapid amplification of cDNA ends and primer extension show that different N-terminal protein sequences arise through alternative promoter usage that are regulated by synaptic activity and postnatal age. Heterogeneity in C-terminal protein sequence arises through alternative splicing. Overexpression of SynGAP α1 versus α2 C-termini-containing proteins in hippocampal neurons has opposing effects on synaptic strength, decreasing and increasing miniature excitatory synaptic currents amplitude/frequency, respectively. The magnitude of this C-terminal-dependent effect is modulated by the N-terminal peptide sequence. This is the first demonstration that activity-dependent alternative promoter usage can change the function of a synaptic protein at excitatory synapses. Furthermore, the direction and degree of synaptic modulation exerted by different protein isoforms from a single gene locus is dependent on the combination of differential promoter usage and alternative splicing.
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spelling pubmed-36214222013-04-10 SynGAP isoforms exert opposing effects on synaptic strength McMahon, A.C. Barnett, M.W. O'Leary, T.S. Stoney, P.N. Collins, M.O. Papadia, S. Choudhary, J.S. Komiyama, N.H. Grant, S.G.N. Hardingham, G.E. Wyllie, D.J.A. Kind, P.C. Nat Commun Article Alternative promoter usage and alternative splicing enable diversification of the transcriptome. Here we demonstrate that the function of Synaptic GTPase-Activating Protein (SynGAP), a key synaptic protein, is determined by the combination of its amino-terminal sequence with its carboxy-terminal sequence. 5′ rapid amplification of cDNA ends and primer extension show that different N-terminal protein sequences arise through alternative promoter usage that are regulated by synaptic activity and postnatal age. Heterogeneity in C-terminal protein sequence arises through alternative splicing. Overexpression of SynGAP α1 versus α2 C-termini-containing proteins in hippocampal neurons has opposing effects on synaptic strength, decreasing and increasing miniature excitatory synaptic currents amplitude/frequency, respectively. The magnitude of this C-terminal-dependent effect is modulated by the N-terminal peptide sequence. This is the first demonstration that activity-dependent alternative promoter usage can change the function of a synaptic protein at excitatory synapses. Furthermore, the direction and degree of synaptic modulation exerted by different protein isoforms from a single gene locus is dependent on the combination of differential promoter usage and alternative splicing. Nature Pub. Group 2012-06-12 /pmc/articles/PMC3621422/ /pubmed/22692543 http://dx.doi.org/10.1038/ncomms1900 Text en Copyright © 2012, Nature Publishing Group, a division of Macmillan Publishers Limited. All Rights Reserved. http://creativecommons.org/licenses/by-nc-sa/3.0/ This work is licensed under a Creative Commons Attribution-NonCommercial-Share Alike 3.0 Unported License. To view a copy of this license, visit http://creativecommons.org/licenses/by-nc-sa/3.0/
spellingShingle Article
McMahon, A.C.
Barnett, M.W.
O'Leary, T.S.
Stoney, P.N.
Collins, M.O.
Papadia, S.
Choudhary, J.S.
Komiyama, N.H.
Grant, S.G.N.
Hardingham, G.E.
Wyllie, D.J.A.
Kind, P.C.
SynGAP isoforms exert opposing effects on synaptic strength
title SynGAP isoforms exert opposing effects on synaptic strength
title_full SynGAP isoforms exert opposing effects on synaptic strength
title_fullStr SynGAP isoforms exert opposing effects on synaptic strength
title_full_unstemmed SynGAP isoforms exert opposing effects on synaptic strength
title_short SynGAP isoforms exert opposing effects on synaptic strength
title_sort syngap isoforms exert opposing effects on synaptic strength
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3621422/
https://www.ncbi.nlm.nih.gov/pubmed/22692543
http://dx.doi.org/10.1038/ncomms1900
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