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Structural basis of astrocytic Ca2+ signals at tripartite synapses
by
Pfeiffer, Thomas
, Angibaud, Julie
, Bellocchio, Luigi
, Marsicano, Giovanni
, Arizono, Misa
, Inavalli, V. V. G. Krishna
, Mikoshiba, Katsuhiko
, Levet, Florian
, Stobart, Jillian
, Nägerl, U. Valentin
, Weber, Bruno
, Panatier, Aude
, Oliet, Stéphane H. R.
, Ter Veer, Mirelle J. T.
in
13
/ 14/63
/ 14/69
/ 631/1647/328/2238
/ 631/378/2596/1308
/ 631/378/87
/ 9/10
/ Astrocytes
/ Brain slice preparation
/ Calcium imaging
/ Calcium ions
/ Calcium sequestration
/ Calcium signalling
/ Cortex (barrel)
/ Dendritic spines
/ Domains
/ Excavation
/ Hippocampus
/ Humanities and Social Sciences
/ Life Sciences
/ Mapping
/ Microscopy
/ Morphology
/ multidisciplinary
/ Neurobiology
/ Neuroimaging
/ Neurons and Cognition
/ Nodes
/ Science
/ Science (multidisciplinary)
/ Somatosensory cortex
/ Synapses
2020
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Structural basis of astrocytic Ca2+ signals at tripartite synapses
by
Pfeiffer, Thomas
, Angibaud, Julie
, Bellocchio, Luigi
, Marsicano, Giovanni
, Arizono, Misa
, Inavalli, V. V. G. Krishna
, Mikoshiba, Katsuhiko
, Levet, Florian
, Stobart, Jillian
, Nägerl, U. Valentin
, Weber, Bruno
, Panatier, Aude
, Oliet, Stéphane H. R.
, Ter Veer, Mirelle J. T.
in
13
/ 14/63
/ 14/69
/ 631/1647/328/2238
/ 631/378/2596/1308
/ 631/378/87
/ 9/10
/ Astrocytes
/ Brain slice preparation
/ Calcium imaging
/ Calcium ions
/ Calcium sequestration
/ Calcium signalling
/ Cortex (barrel)
/ Dendritic spines
/ Domains
/ Excavation
/ Hippocampus
/ Humanities and Social Sciences
/ Life Sciences
/ Mapping
/ Microscopy
/ Morphology
/ multidisciplinary
/ Neurobiology
/ Neuroimaging
/ Neurons and Cognition
/ Nodes
/ Science
/ Science (multidisciplinary)
/ Somatosensory cortex
/ Synapses
2020
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Structural basis of astrocytic Ca2+ signals at tripartite synapses
by
Pfeiffer, Thomas
, Angibaud, Julie
, Bellocchio, Luigi
, Marsicano, Giovanni
, Arizono, Misa
, Inavalli, V. V. G. Krishna
, Mikoshiba, Katsuhiko
, Levet, Florian
, Stobart, Jillian
, Nägerl, U. Valentin
, Weber, Bruno
, Panatier, Aude
, Oliet, Stéphane H. R.
, Ter Veer, Mirelle J. T.
in
13
/ 14/63
/ 14/69
/ 631/1647/328/2238
/ 631/378/2596/1308
/ 631/378/87
/ 9/10
/ Astrocytes
/ Brain slice preparation
/ Calcium imaging
/ Calcium ions
/ Calcium sequestration
/ Calcium signalling
/ Cortex (barrel)
/ Dendritic spines
/ Domains
/ Excavation
/ Hippocampus
/ Humanities and Social Sciences
/ Life Sciences
/ Mapping
/ Microscopy
/ Morphology
/ multidisciplinary
/ Neurobiology
/ Neuroimaging
/ Neurons and Cognition
/ Nodes
/ Science
/ Science (multidisciplinary)
/ Somatosensory cortex
/ Synapses
2020
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Structural basis of astrocytic Ca2+ signals at tripartite synapses
Journal Article
Structural basis of astrocytic Ca2+ signals at tripartite synapses
2020
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Overview
Astrocytic Ca
2+
signals can be fast and local, supporting the idea that astrocytes have the ability to regulate single synapses. However, the anatomical basis of such specific signaling remains unclear, owing to difficulties in resolving the spongiform domain of astrocytes where most tripartite synapses are located. Using 3D-STED microscopy in living organotypic brain slices, we imaged the spongiform domain of astrocytes and observed a reticular meshwork of nodes and shafts that often formed loop-like structures. These anatomical features were also observed in acute hippocampal slices and in barrel cortex in vivo. The majority of dendritic spines were contacted by nodes and their sizes were correlated. FRAP experiments and Ca
2+
imaging showed that nodes were biochemical compartments and Ca
2+
microdomains. Mapping astrocytic Ca
2+
signals onto STED images of nodes and dendritic spines showed they were associated with individual synapses. Here, we report on the nanoscale organization of astrocytes, identifying nodes as a functional astrocytic component of tripartite synapses that may enable synapse-specific communication between neurons and astrocytes.
Astrocytic Ca
2+
signals can be fast and local, supporting the idea that astrocytes have the ability to regulate single synapses. Here, the authors report the organization of astrocytes at nanoscale level and identify nodes as a functional astrocytic component of tripartite synapses.
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