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Spastin depletion increases tubulin polyglutamylation and impairs kinesin-mediated neuronal transport, leading to working and associative memory deficits

Mutations in the gene encoding the microtubule-severing protein spastin (spastic paraplegia 4 [SPG4]) cause hereditary spastic paraplegia (HSP), associated with neurodegeneration, spasticity, and motor impairment. Complicated forms (complicated HSP [cHSP]) further include cognitive deficits and deme...

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Autores principales: Lopes, André T., Hausrat, Torben J., Heisler, Frank F., Gromova, Kira V., Lombino, Franco L., Fischer, Timo, Ruschkies, Laura, Breiden, Petra, Thies, Edda, Hermans-Borgmeyer, Irm, Schweizer, Michaela, Schwarz, Jürgen R., Lohr, Christian, Kneussel, Matthias
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7485986/
https://www.ncbi.nlm.nih.gov/pubmed/32866173
http://dx.doi.org/10.1371/journal.pbio.3000820
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author Lopes, André T.
Hausrat, Torben J.
Heisler, Frank F.
Gromova, Kira V.
Lombino, Franco L.
Fischer, Timo
Ruschkies, Laura
Breiden, Petra
Thies, Edda
Hermans-Borgmeyer, Irm
Schweizer, Michaela
Schwarz, Jürgen R.
Lohr, Christian
Kneussel, Matthias
author_facet Lopes, André T.
Hausrat, Torben J.
Heisler, Frank F.
Gromova, Kira V.
Lombino, Franco L.
Fischer, Timo
Ruschkies, Laura
Breiden, Petra
Thies, Edda
Hermans-Borgmeyer, Irm
Schweizer, Michaela
Schwarz, Jürgen R.
Lohr, Christian
Kneussel, Matthias
author_sort Lopes, André T.
collection PubMed
description Mutations in the gene encoding the microtubule-severing protein spastin (spastic paraplegia 4 [SPG4]) cause hereditary spastic paraplegia (HSP), associated with neurodegeneration, spasticity, and motor impairment. Complicated forms (complicated HSP [cHSP]) further include cognitive deficits and dementia; however, the etiology and dysfunctional mechanisms of cHSP have remained unknown. Here, we report specific working and associative memory deficits upon spastin depletion in mice. Loss of spastin-mediated severing leads to reduced synapse numbers, accompanied by lower miniature excitatory postsynaptic current (mEPSC) frequencies. At the subcellular level, mutant neurons are characterized by longer microtubules with increased tubulin polyglutamylation levels. Notably, these conditions reduce kinesin-microtubule binding, impair the processivity of kinesin family protein (KIF) 5, and reduce the delivery of presynaptic vesicles and postsynaptic α-amino-3-hydroxy-5-methyl-4-isoxazolepropionic acid (AMPA) receptors. Rescue experiments confirm the specificity of these results by showing that wild-type spastin, but not the severing-deficient and disease-associated K388R mutant, normalizes the effects at the synaptic, microtubule, and transport levels. In addition, short hairpin RNA (shRNA)-mediated reduction of tubulin polyglutamylation on spastin knockout background normalizes KIF5 transport deficits and attenuates the loss of excitatory synapses. Our data provide a mechanism that connects spastin dysfunction with the regulation of kinesin-mediated cargo transport, synapse integrity, and cognition.
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spelling pubmed-74859862020-09-21 Spastin depletion increases tubulin polyglutamylation and impairs kinesin-mediated neuronal transport, leading to working and associative memory deficits Lopes, André T. Hausrat, Torben J. Heisler, Frank F. Gromova, Kira V. Lombino, Franco L. Fischer, Timo Ruschkies, Laura Breiden, Petra Thies, Edda Hermans-Borgmeyer, Irm Schweizer, Michaela Schwarz, Jürgen R. Lohr, Christian Kneussel, Matthias PLoS Biol Research Article Mutations in the gene encoding the microtubule-severing protein spastin (spastic paraplegia 4 [SPG4]) cause hereditary spastic paraplegia (HSP), associated with neurodegeneration, spasticity, and motor impairment. Complicated forms (complicated HSP [cHSP]) further include cognitive deficits and dementia; however, the etiology and dysfunctional mechanisms of cHSP have remained unknown. Here, we report specific working and associative memory deficits upon spastin depletion in mice. Loss of spastin-mediated severing leads to reduced synapse numbers, accompanied by lower miniature excitatory postsynaptic current (mEPSC) frequencies. At the subcellular level, mutant neurons are characterized by longer microtubules with increased tubulin polyglutamylation levels. Notably, these conditions reduce kinesin-microtubule binding, impair the processivity of kinesin family protein (KIF) 5, and reduce the delivery of presynaptic vesicles and postsynaptic α-amino-3-hydroxy-5-methyl-4-isoxazolepropionic acid (AMPA) receptors. Rescue experiments confirm the specificity of these results by showing that wild-type spastin, but not the severing-deficient and disease-associated K388R mutant, normalizes the effects at the synaptic, microtubule, and transport levels. In addition, short hairpin RNA (shRNA)-mediated reduction of tubulin polyglutamylation on spastin knockout background normalizes KIF5 transport deficits and attenuates the loss of excitatory synapses. Our data provide a mechanism that connects spastin dysfunction with the regulation of kinesin-mediated cargo transport, synapse integrity, and cognition. Public Library of Science 2020-08-31 /pmc/articles/PMC7485986/ /pubmed/32866173 http://dx.doi.org/10.1371/journal.pbio.3000820 Text en © 2020 Lopes et al http://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Lopes, André T.
Hausrat, Torben J.
Heisler, Frank F.
Gromova, Kira V.
Lombino, Franco L.
Fischer, Timo
Ruschkies, Laura
Breiden, Petra
Thies, Edda
Hermans-Borgmeyer, Irm
Schweizer, Michaela
Schwarz, Jürgen R.
Lohr, Christian
Kneussel, Matthias
Spastin depletion increases tubulin polyglutamylation and impairs kinesin-mediated neuronal transport, leading to working and associative memory deficits
title Spastin depletion increases tubulin polyglutamylation and impairs kinesin-mediated neuronal transport, leading to working and associative memory deficits
title_full Spastin depletion increases tubulin polyglutamylation and impairs kinesin-mediated neuronal transport, leading to working and associative memory deficits
title_fullStr Spastin depletion increases tubulin polyglutamylation and impairs kinesin-mediated neuronal transport, leading to working and associative memory deficits
title_full_unstemmed Spastin depletion increases tubulin polyglutamylation and impairs kinesin-mediated neuronal transport, leading to working and associative memory deficits
title_short Spastin depletion increases tubulin polyglutamylation and impairs kinesin-mediated neuronal transport, leading to working and associative memory deficits
title_sort spastin depletion increases tubulin polyglutamylation and impairs kinesin-mediated neuronal transport, leading to working and associative memory deficits
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7485986/
https://www.ncbi.nlm.nih.gov/pubmed/32866173
http://dx.doi.org/10.1371/journal.pbio.3000820
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