Spatial separation of two different pathways accounting for the generation of calcium signals in astrocytes.
Astrocytes integrate and process synaptic information and exhibit calcium (Ca2+) signals in response to incoming information from neighboring synapses. The generation of Ca2+ signals is mostly attributed to Ca2+ release from internal Ca2+ stores evoked by an elevated metabotropic glutamate receptor...
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doaj-76b0b7755e044f4e846cb45215bbb1b62020-11-25T01:42:35ZengPublic Library of Science (PLoS)PLoS Computational Biology1553-734X1553-73582017-02-01132e100537710.1371/journal.pcbi.1005377Spatial separation of two different pathways accounting for the generation of calcium signals in astrocytes.Franziska OschmannKonstantin MergenthalerEvelyn JungnickelKlaus ObermayerAstrocytes integrate and process synaptic information and exhibit calcium (Ca2+) signals in response to incoming information from neighboring synapses. The generation of Ca2+ signals is mostly attributed to Ca2+ release from internal Ca2+ stores evoked by an elevated metabotropic glutamate receptor (mGluR) activity. Different experimental results associated the generation of Ca2+ signals to the activity of the glutamate transporter (GluT). The GluT itself does not influence the intracellular Ca2+ concentration, but it indirectly activates Ca2+ entry over the membrane. A closer look into Ca2+ signaling in different astrocytic compartments revealed a spatial separation of those two pathways. Ca2+ signals in the soma are mainly generated by Ca2+ release from internal Ca2+ stores (mGluR-dependent pathway). In astrocytic compartments close to the synapse most Ca2+ signals are evoked by Ca2+ entry over the plasma membrane (GluT-dependent pathway). This assumption is supported by the finding, that the volume ratio between the internal Ca2+ store and the intracellular space decreases from the soma towards the synapse. We extended a model for mGluR-dependent Ca2+ signals in astrocytes with the GluT-dependent pathway. Additionally, we included the volume ratio between the internal Ca2+ store and the intracellular compartment into the model in order to analyze Ca2+ signals either in the soma or close to the synapse. Our model results confirm the spatial separation of the mGluR- and GluT-dependent pathways along the astrocytic process. The model allows to study the binary Ca2+ response during a block of either of both pathways. Moreover, the model contributes to a better understanding of the impact of channel densities on the interaction of both pathways and on the Ca2+ signal.http://europepmc.org/articles/PMC5330534?pdf=render |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Franziska Oschmann Konstantin Mergenthaler Evelyn Jungnickel Klaus Obermayer |
spellingShingle |
Franziska Oschmann Konstantin Mergenthaler Evelyn Jungnickel Klaus Obermayer Spatial separation of two different pathways accounting for the generation of calcium signals in astrocytes. PLoS Computational Biology |
author_facet |
Franziska Oschmann Konstantin Mergenthaler Evelyn Jungnickel Klaus Obermayer |
author_sort |
Franziska Oschmann |
title |
Spatial separation of two different pathways accounting for the generation of calcium signals in astrocytes. |
title_short |
Spatial separation of two different pathways accounting for the generation of calcium signals in astrocytes. |
title_full |
Spatial separation of two different pathways accounting for the generation of calcium signals in astrocytes. |
title_fullStr |
Spatial separation of two different pathways accounting for the generation of calcium signals in astrocytes. |
title_full_unstemmed |
Spatial separation of two different pathways accounting for the generation of calcium signals in astrocytes. |
title_sort |
spatial separation of two different pathways accounting for the generation of calcium signals in astrocytes. |
publisher |
Public Library of Science (PLoS) |
series |
PLoS Computational Biology |
issn |
1553-734X 1553-7358 |
publishDate |
2017-02-01 |
description |
Astrocytes integrate and process synaptic information and exhibit calcium (Ca2+) signals in response to incoming information from neighboring synapses. The generation of Ca2+ signals is mostly attributed to Ca2+ release from internal Ca2+ stores evoked by an elevated metabotropic glutamate receptor (mGluR) activity. Different experimental results associated the generation of Ca2+ signals to the activity of the glutamate transporter (GluT). The GluT itself does not influence the intracellular Ca2+ concentration, but it indirectly activates Ca2+ entry over the membrane. A closer look into Ca2+ signaling in different astrocytic compartments revealed a spatial separation of those two pathways. Ca2+ signals in the soma are mainly generated by Ca2+ release from internal Ca2+ stores (mGluR-dependent pathway). In astrocytic compartments close to the synapse most Ca2+ signals are evoked by Ca2+ entry over the plasma membrane (GluT-dependent pathway). This assumption is supported by the finding, that the volume ratio between the internal Ca2+ store and the intracellular space decreases from the soma towards the synapse. We extended a model for mGluR-dependent Ca2+ signals in astrocytes with the GluT-dependent pathway. Additionally, we included the volume ratio between the internal Ca2+ store and the intracellular compartment into the model in order to analyze Ca2+ signals either in the soma or close to the synapse. Our model results confirm the spatial separation of the mGluR- and GluT-dependent pathways along the astrocytic process. The model allows to study the binary Ca2+ response during a block of either of both pathways. Moreover, the model contributes to a better understanding of the impact of channel densities on the interaction of both pathways and on the Ca2+ signal. |
url |
http://europepmc.org/articles/PMC5330534?pdf=render |
work_keys_str_mv |
AT franziskaoschmann spatialseparationoftwodifferentpathwaysaccountingforthegenerationofcalciumsignalsinastrocytes AT konstantinmergenthaler spatialseparationoftwodifferentpathwaysaccountingforthegenerationofcalciumsignalsinastrocytes AT evelynjungnickel spatialseparationoftwodifferentpathwaysaccountingforthegenerationofcalciumsignalsinastrocytes AT klausobermayer spatialseparationoftwodifferentpathwaysaccountingforthegenerationofcalciumsignalsinastrocytes |
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1725035320833998848 |