Myosin IIb activity and phosphorylation status determines dendritic spine and post-synaptic density morphology.
Dendritic spines in hippocampal neurons mature from a filopodia-like precursor into a mushroom-shape with an enlarged post-synaptic density (PSD) and serve as the primary post-synaptic location of the excitatory neurotransmission that underlies learning and memory. Using myosin II regulatory mutants...
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2011-01-01
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doaj-dcab1a67924a4572a1dab2330ad308512020-11-25T02:06:34ZengPublic Library of Science (PLoS)PLoS ONE1932-62032011-01-0168e2414910.1371/journal.pone.0024149Myosin IIb activity and phosphorylation status determines dendritic spine and post-synaptic density morphology.Jennifer L HodgesKaren Newell-LitwaHannelore AsmussenMiguel Vicente-ManzanaresAlan Rick HorwitzDendritic spines in hippocampal neurons mature from a filopodia-like precursor into a mushroom-shape with an enlarged post-synaptic density (PSD) and serve as the primary post-synaptic location of the excitatory neurotransmission that underlies learning and memory. Using myosin II regulatory mutants, inhibitors, and knockdowns, we show that non-muscle myosin IIB (MIIB) activity determines where spines form and whether they persist as filopodia-like spine precursors or mature into a mushroom-shape. MIIB also determines PSD size, morphology, and placement in the spine. Local inactivation of MIIB leads to the formation of filopodia-like spine protrusions from the dendritic shaft. However, di-phosphorylation of the regulatory light chain on residues Thr18 and Ser19 by Rho kinase is required for spine maturation. Inhibition of MIIB activity or a mono-phosphomimetic mutant of RLC similarly prevented maturation even in the presence of NMDA receptor activation. Expression of an actin cross-linking, non-contractile mutant, MIIB R709C, showed that maturation into a mushroom-shape requires contractile activity. Loss of MIIB also leads to an elongated PSD morphology that is no longer restricted to the spine tip; whereas increased MIIB activity, specifically through RLC-T18, S19 di-phosphorylation, increases PSD area. These observations support a model whereby myosin II inactivation forms filopodia-like protrusions that only mature once NMDA receptor activation increases RLC di-phosphorylation to stimulate MIIB contractility, resulting in mushroom-shaped spines with an enlarged PSD.http://europepmc.org/articles/PMC3162601?pdf=render |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Jennifer L Hodges Karen Newell-Litwa Hannelore Asmussen Miguel Vicente-Manzanares Alan Rick Horwitz |
spellingShingle |
Jennifer L Hodges Karen Newell-Litwa Hannelore Asmussen Miguel Vicente-Manzanares Alan Rick Horwitz Myosin IIb activity and phosphorylation status determines dendritic spine and post-synaptic density morphology. PLoS ONE |
author_facet |
Jennifer L Hodges Karen Newell-Litwa Hannelore Asmussen Miguel Vicente-Manzanares Alan Rick Horwitz |
author_sort |
Jennifer L Hodges |
title |
Myosin IIb activity and phosphorylation status determines dendritic spine and post-synaptic density morphology. |
title_short |
Myosin IIb activity and phosphorylation status determines dendritic spine and post-synaptic density morphology. |
title_full |
Myosin IIb activity and phosphorylation status determines dendritic spine and post-synaptic density morphology. |
title_fullStr |
Myosin IIb activity and phosphorylation status determines dendritic spine and post-synaptic density morphology. |
title_full_unstemmed |
Myosin IIb activity and phosphorylation status determines dendritic spine and post-synaptic density morphology. |
title_sort |
myosin iib activity and phosphorylation status determines dendritic spine and post-synaptic density morphology. |
publisher |
Public Library of Science (PLoS) |
series |
PLoS ONE |
issn |
1932-6203 |
publishDate |
2011-01-01 |
description |
Dendritic spines in hippocampal neurons mature from a filopodia-like precursor into a mushroom-shape with an enlarged post-synaptic density (PSD) and serve as the primary post-synaptic location of the excitatory neurotransmission that underlies learning and memory. Using myosin II regulatory mutants, inhibitors, and knockdowns, we show that non-muscle myosin IIB (MIIB) activity determines where spines form and whether they persist as filopodia-like spine precursors or mature into a mushroom-shape. MIIB also determines PSD size, morphology, and placement in the spine. Local inactivation of MIIB leads to the formation of filopodia-like spine protrusions from the dendritic shaft. However, di-phosphorylation of the regulatory light chain on residues Thr18 and Ser19 by Rho kinase is required for spine maturation. Inhibition of MIIB activity or a mono-phosphomimetic mutant of RLC similarly prevented maturation even in the presence of NMDA receptor activation. Expression of an actin cross-linking, non-contractile mutant, MIIB R709C, showed that maturation into a mushroom-shape requires contractile activity. Loss of MIIB also leads to an elongated PSD morphology that is no longer restricted to the spine tip; whereas increased MIIB activity, specifically through RLC-T18, S19 di-phosphorylation, increases PSD area. These observations support a model whereby myosin II inactivation forms filopodia-like protrusions that only mature once NMDA receptor activation increases RLC di-phosphorylation to stimulate MIIB contractility, resulting in mushroom-shaped spines with an enlarged PSD. |
url |
http://europepmc.org/articles/PMC3162601?pdf=render |
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