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Gαq-mediated calcium dynamics and membrane tension modulate neurite plasticity

The formation and disruption of synaptic connections during development are a fundamental step in neural circuit formation. Subneuronal structures such as neurites are known to be sensitive to the level of spontaneous neuronal activity, but the specifics of how neurotransmitter-induced calcium activ...

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Autores principales: Pearce, Katherine M., Bell, Miriam, Linthicum, Will H., Wen, Qi, Srinivasan, Jagan, Rangamani, Padmini, Scarlata, Suzanne
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The American Society for Cell Biology 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7202066/
https://www.ncbi.nlm.nih.gov/pubmed/31825720
http://dx.doi.org/10.1091/mbc.E19-09-0536
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author Pearce, Katherine M.
Bell, Miriam
Linthicum, Will H.
Wen, Qi
Srinivasan, Jagan
Rangamani, Padmini
Scarlata, Suzanne
author_facet Pearce, Katherine M.
Bell, Miriam
Linthicum, Will H.
Wen, Qi
Srinivasan, Jagan
Rangamani, Padmini
Scarlata, Suzanne
author_sort Pearce, Katherine M.
collection PubMed
description The formation and disruption of synaptic connections during development are a fundamental step in neural circuit formation. Subneuronal structures such as neurites are known to be sensitive to the level of spontaneous neuronal activity, but the specifics of how neurotransmitter-induced calcium activity regulates neurite homeostasis are not yet fully understood. In response to stimulation by neurotransmitters such as acetylcholine, calcium responses in cells are mediated by the Gαq/phospholipase Cβ (PLCβ)/phosphatidylinositol 4,5-bisphosphate (PI(4,5)P(2)) signaling pathway. Here, we show that prolonged Gαq stimulation results in the retraction of neurites in PC12 cells and the rupture of neuronal synapses by modulating membrane tension. To understand the underlying cause, we dissected the behavior of individual components of the Gαq/PLCβ/PI(4,5)P(2) pathway during retraction and correlated these with the retraction of the membrane and cytoskeletal elements impacted by calcium signaling. We developed a mathematical model that combines biochemical signaling with membrane tension and cytoskeletal mechanics to show how signaling events are coupled to retraction velocity, membrane tension, and actin dynamics. The coupling between calcium and neurite retraction is shown to be operative in the Caenorhabditis elegans nervous system. This study uncovers a novel mechanochemical connection between Gαq/PLCβ /PI(4,5)P(2) that couples calcium responses with neural plasticity.
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spelling pubmed-72020662020-06-06 Gαq-mediated calcium dynamics and membrane tension modulate neurite plasticity Pearce, Katherine M. Bell, Miriam Linthicum, Will H. Wen, Qi Srinivasan, Jagan Rangamani, Padmini Scarlata, Suzanne Mol Biol Cell Articles The formation and disruption of synaptic connections during development are a fundamental step in neural circuit formation. Subneuronal structures such as neurites are known to be sensitive to the level of spontaneous neuronal activity, but the specifics of how neurotransmitter-induced calcium activity regulates neurite homeostasis are not yet fully understood. In response to stimulation by neurotransmitters such as acetylcholine, calcium responses in cells are mediated by the Gαq/phospholipase Cβ (PLCβ)/phosphatidylinositol 4,5-bisphosphate (PI(4,5)P(2)) signaling pathway. Here, we show that prolonged Gαq stimulation results in the retraction of neurites in PC12 cells and the rupture of neuronal synapses by modulating membrane tension. To understand the underlying cause, we dissected the behavior of individual components of the Gαq/PLCβ/PI(4,5)P(2) pathway during retraction and correlated these with the retraction of the membrane and cytoskeletal elements impacted by calcium signaling. We developed a mathematical model that combines biochemical signaling with membrane tension and cytoskeletal mechanics to show how signaling events are coupled to retraction velocity, membrane tension, and actin dynamics. The coupling between calcium and neurite retraction is shown to be operative in the Caenorhabditis elegans nervous system. This study uncovers a novel mechanochemical connection between Gαq/PLCβ /PI(4,5)P(2) that couples calcium responses with neural plasticity. The American Society for Cell Biology 2020-03-19 /pmc/articles/PMC7202066/ /pubmed/31825720 http://dx.doi.org/10.1091/mbc.E19-09-0536 Text en © 2020 Pearce, Bell, et al. “ASCB®,” “The American Society for Cell Biology®,” and “Molecular Biology of the Cell®” are registered trademarks of The American Society for Cell Biology. http://creativecommons.org/licenses/by-nc-sa/3.0 This article is distributed by The American Society for Cell Biology under license from the author(s). Two months after publication it is available to the public under an Attribution–Noncommercial–Share Alike 3.0 Unported Creative Commons License.
spellingShingle Articles
Pearce, Katherine M.
Bell, Miriam
Linthicum, Will H.
Wen, Qi
Srinivasan, Jagan
Rangamani, Padmini
Scarlata, Suzanne
Gαq-mediated calcium dynamics and membrane tension modulate neurite plasticity
title Gαq-mediated calcium dynamics and membrane tension modulate neurite plasticity
title_full Gαq-mediated calcium dynamics and membrane tension modulate neurite plasticity
title_fullStr Gαq-mediated calcium dynamics and membrane tension modulate neurite plasticity
title_full_unstemmed Gαq-mediated calcium dynamics and membrane tension modulate neurite plasticity
title_short Gαq-mediated calcium dynamics and membrane tension modulate neurite plasticity
title_sort gαq-mediated calcium dynamics and membrane tension modulate neurite plasticity
topic Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7202066/
https://www.ncbi.nlm.nih.gov/pubmed/31825720
http://dx.doi.org/10.1091/mbc.E19-09-0536
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