Periodic F-actin structures shape the neck of dendritic spines

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Periodic F-actin structures shape the neck of dendritic spines. / Bär, Julia; Kobler, Oliver; van Bommel, Bas; Mikhaylova, Marina.

In: SCI REP-UK, Vol. 6, No. 37136, 14.11.2016, p. 1-9.

Research output: SCORING: Contribution to journalSCORING: Journal articleResearchpeer-review

Harvard

Bär, J, Kobler, O, van Bommel, B & Mikhaylova, M 2016, 'Periodic F-actin structures shape the neck of dendritic spines', SCI REP-UK, vol. 6, no. 37136, pp. 1-9. https://doi.org/DOI: 10.1038/srep37136

APA

Bär, J., Kobler, O., van Bommel, B., & Mikhaylova, M. (2016). Periodic F-actin structures shape the neck of dendritic spines. SCI REP-UK, 6(37136), 1-9. https://doi.org/DOI: 10.1038/srep37136

Vancouver

Bär J, Kobler O, van Bommel B, Mikhaylova M. Periodic F-actin structures shape the neck of dendritic spines. SCI REP-UK. 2016 Nov 14;6(37136):1-9. https://doi.org/DOI: 10.1038/srep37136

Bibtex

@article{15da46d9c1af4eeab3366ba38bd9bfef,
title = "Periodic F-actin structures shape the neck of dendritic spines",
abstract = "Most of the excitatory synapses on principal neurons of the forebrain are located on specialized structures called dendritic spines. Their morphology, comprising a spine head connected to the dendritic branch via a thin neck, provides biochemical and electrical compartmentalization during signal transmission. Spine shape is defined and tightly controlled by the organization of the actin cytoskeleton. Alterations in synaptic strength correlate with changes in the morphological appearance of the spine head and neck. Therefore, it is important to get a better understanding of the nanoscale organization of the actin cytoskeleton in dendritic spines. A periodic organization of the actin/spectrin lattice was recently discovered in axons and a small fraction of dendrites using super-resolution microscopy. Here we use a small probe phalloidin-Atto647N, to label F-actin in mature hippocampal primary neurons and in living hippocampal slices. STED nanoscopy reveals that in contrast to β-II spectrin antibody labelling, phalloidin-Atto647N stains periodic actin structures in all dendrites and the neck of nearly all dendritic spines, including filopodia-like spines. These findings extend the current view on F-actin organization in dendritic spines and may provide new avenues for understanding the structural changes in the spine neck during induction of synaptic plasticity, active organelle transport or tethering.",
author = "Julia B{\"a}r and Oliver Kobler and {van Bommel}, Bas and Marina Mikhaylova",
year = "2016",
month = nov,
day = "14",
doi = "DOI: 10.1038/srep37136",
language = "English",
volume = "6",
pages = "1--9",
journal = "SCI REP-UK",
issn = "2045-2322",
publisher = "NATURE PUBLISHING GROUP",
number = "37136",

}

RIS

TY - JOUR

T1 - Periodic F-actin structures shape the neck of dendritic spines

AU - Bär, Julia

AU - Kobler, Oliver

AU - van Bommel, Bas

AU - Mikhaylova, Marina

PY - 2016/11/14

Y1 - 2016/11/14

N2 - Most of the excitatory synapses on principal neurons of the forebrain are located on specialized structures called dendritic spines. Their morphology, comprising a spine head connected to the dendritic branch via a thin neck, provides biochemical and electrical compartmentalization during signal transmission. Spine shape is defined and tightly controlled by the organization of the actin cytoskeleton. Alterations in synaptic strength correlate with changes in the morphological appearance of the spine head and neck. Therefore, it is important to get a better understanding of the nanoscale organization of the actin cytoskeleton in dendritic spines. A periodic organization of the actin/spectrin lattice was recently discovered in axons and a small fraction of dendrites using super-resolution microscopy. Here we use a small probe phalloidin-Atto647N, to label F-actin in mature hippocampal primary neurons and in living hippocampal slices. STED nanoscopy reveals that in contrast to β-II spectrin antibody labelling, phalloidin-Atto647N stains periodic actin structures in all dendrites and the neck of nearly all dendritic spines, including filopodia-like spines. These findings extend the current view on F-actin organization in dendritic spines and may provide new avenues for understanding the structural changes in the spine neck during induction of synaptic plasticity, active organelle transport or tethering.

AB - Most of the excitatory synapses on principal neurons of the forebrain are located on specialized structures called dendritic spines. Their morphology, comprising a spine head connected to the dendritic branch via a thin neck, provides biochemical and electrical compartmentalization during signal transmission. Spine shape is defined and tightly controlled by the organization of the actin cytoskeleton. Alterations in synaptic strength correlate with changes in the morphological appearance of the spine head and neck. Therefore, it is important to get a better understanding of the nanoscale organization of the actin cytoskeleton in dendritic spines. A periodic organization of the actin/spectrin lattice was recently discovered in axons and a small fraction of dendrites using super-resolution microscopy. Here we use a small probe phalloidin-Atto647N, to label F-actin in mature hippocampal primary neurons and in living hippocampal slices. STED nanoscopy reveals that in contrast to β-II spectrin antibody labelling, phalloidin-Atto647N stains periodic actin structures in all dendrites and the neck of nearly all dendritic spines, including filopodia-like spines. These findings extend the current view on F-actin organization in dendritic spines and may provide new avenues for understanding the structural changes in the spine neck during induction of synaptic plasticity, active organelle transport or tethering.

U2 - DOI: 10.1038/srep37136

DO - DOI: 10.1038/srep37136

M3 - SCORING: Journal article

VL - 6

SP - 1

EP - 9

JO - SCI REP-UK

JF - SCI REP-UK

SN - 2045-2322

IS - 37136

ER -