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Regulation of Neuronal Plasticity and Fear by a Dynamic Change in PAR1 – G Protein Coupling in the Amygdala

Fear memories are acquired through neuronal plasticity, an orchestrated sequence of events regulated at circuit and cellular levels. The conventional model of fear acquisition assumes unimodal (e.g. excitatory or inhibitory) roles of modulatory receptors in controlling neuronal activity and learning...

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Autores principales: Bourgognon, Julie-Myrtille, Schiavon, Emanuele, Salah-Uddin, Hasib, Skrzypiec, Anna E., Attwood, Benjamin K., Shah, Rahul S., Patel, Satyam G., Mucha, Mariusz, Challiss, R. A. John, Forsythe, Ian D., Pawlak, Robert
Formato: Online Artículo Texto
Lenguaje:English
Publicado: 2012
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3690134/
https://www.ncbi.nlm.nih.gov/pubmed/23032873
http://dx.doi.org/10.1038/mp.2012.133
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author Bourgognon, Julie-Myrtille
Schiavon, Emanuele
Salah-Uddin, Hasib
Skrzypiec, Anna E.
Attwood, Benjamin K.
Shah, Rahul S.
Patel, Satyam G.
Mucha, Mariusz
Challiss, R. A. John
Forsythe, Ian D.
Pawlak, Robert
author_facet Bourgognon, Julie-Myrtille
Schiavon, Emanuele
Salah-Uddin, Hasib
Skrzypiec, Anna E.
Attwood, Benjamin K.
Shah, Rahul S.
Patel, Satyam G.
Mucha, Mariusz
Challiss, R. A. John
Forsythe, Ian D.
Pawlak, Robert
author_sort Bourgognon, Julie-Myrtille
collection PubMed
description Fear memories are acquired through neuronal plasticity, an orchestrated sequence of events regulated at circuit and cellular levels. The conventional model of fear acquisition assumes unimodal (e.g. excitatory or inhibitory) roles of modulatory receptors in controlling neuronal activity and learning. Contrary to this view, we show that protease-activated receptor-1 (PAR1) promotes contrasting neuronal responses depending on the emotional status of an animal by a dynamic shift between distinct G protein coupling partners. In the basolateral amygdala of fear-naïve mice PAR1 couples to Gα(q/11) and Gα(o) proteins, while after fear conditioning coupling to Gα(o) increases. Concurrently, stimulation of PAR1 before conditioning enhanced, but afterwards it inhibited firing of basal amygdala neurons. An initial impairment of the long-term potentiation (LTP) in PAR1-deficient mice was transformed into an increase in LTP and enhancement of fear after conditioning. These effects correlated with more frequent AMPA receptor-mediated miniature post synaptic events and increased neuronal excitability. Our findings point to experience-specific shifts in PAR1-G protein-coupling in the amygdala as a novel mechanism regulating neuronal excitability and fear.
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spelling pubmed-36901342014-04-01 Regulation of Neuronal Plasticity and Fear by a Dynamic Change in PAR1 – G Protein Coupling in the Amygdala Bourgognon, Julie-Myrtille Schiavon, Emanuele Salah-Uddin, Hasib Skrzypiec, Anna E. Attwood, Benjamin K. Shah, Rahul S. Patel, Satyam G. Mucha, Mariusz Challiss, R. A. John Forsythe, Ian D. Pawlak, Robert Mol Psychiatry Article Fear memories are acquired through neuronal plasticity, an orchestrated sequence of events regulated at circuit and cellular levels. The conventional model of fear acquisition assumes unimodal (e.g. excitatory or inhibitory) roles of modulatory receptors in controlling neuronal activity and learning. Contrary to this view, we show that protease-activated receptor-1 (PAR1) promotes contrasting neuronal responses depending on the emotional status of an animal by a dynamic shift between distinct G protein coupling partners. In the basolateral amygdala of fear-naïve mice PAR1 couples to Gα(q/11) and Gα(o) proteins, while after fear conditioning coupling to Gα(o) increases. Concurrently, stimulation of PAR1 before conditioning enhanced, but afterwards it inhibited firing of basal amygdala neurons. An initial impairment of the long-term potentiation (LTP) in PAR1-deficient mice was transformed into an increase in LTP and enhancement of fear after conditioning. These effects correlated with more frequent AMPA receptor-mediated miniature post synaptic events and increased neuronal excitability. Our findings point to experience-specific shifts in PAR1-G protein-coupling in the amygdala as a novel mechanism regulating neuronal excitability and fear. 2012-10-02 2013-10 /pmc/articles/PMC3690134/ /pubmed/23032873 http://dx.doi.org/10.1038/mp.2012.133 Text en Users may view, print, copy, download and text and data- mine the content in such documents, for the purposes of academic research, subject always to the full Conditions of use: http://www.nature.com/authors/editorial_policies/license.html#terms
spellingShingle Article
Bourgognon, Julie-Myrtille
Schiavon, Emanuele
Salah-Uddin, Hasib
Skrzypiec, Anna E.
Attwood, Benjamin K.
Shah, Rahul S.
Patel, Satyam G.
Mucha, Mariusz
Challiss, R. A. John
Forsythe, Ian D.
Pawlak, Robert
Regulation of Neuronal Plasticity and Fear by a Dynamic Change in PAR1 – G Protein Coupling in the Amygdala
title Regulation of Neuronal Plasticity and Fear by a Dynamic Change in PAR1 – G Protein Coupling in the Amygdala
title_full Regulation of Neuronal Plasticity and Fear by a Dynamic Change in PAR1 – G Protein Coupling in the Amygdala
title_fullStr Regulation of Neuronal Plasticity and Fear by a Dynamic Change in PAR1 – G Protein Coupling in the Amygdala
title_full_unstemmed Regulation of Neuronal Plasticity and Fear by a Dynamic Change in PAR1 – G Protein Coupling in the Amygdala
title_short Regulation of Neuronal Plasticity and Fear by a Dynamic Change in PAR1 – G Protein Coupling in the Amygdala
title_sort regulation of neuronal plasticity and fear by a dynamic change in par1 – g protein coupling in the amygdala
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3690134/
https://www.ncbi.nlm.nih.gov/pubmed/23032873
http://dx.doi.org/10.1038/mp.2012.133
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