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Time-delimited signaling of MET receptor tyrosine kinase regulates cortical circuit development and critical period plasticity

Normal development of cortical circuits, including experience-dependent cortical maturation and plasticity, requires precise temporal regulation of gene expression and molecular signaling. Such regulation, and the concomitant impact on plasticity and critical periods, is hypothesized to be disrupted...

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Autores principales: Chen, Ke, Ma, Xiaokuang, Nehme, Antoine, Wei, Jing, Cui, Yan, Cui, Yuehua, Yao, Dezhong, Wu, Jie, Anderson, Trent, Ferguson, Deveroux, Levitt, Pat, Qiu, Shenfeng
Formato: Online Artículo Texto
Lenguaje:English
Publicado: 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7332377/
https://www.ncbi.nlm.nih.gov/pubmed/31900430
http://dx.doi.org/10.1038/s41380-019-0635-6
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author Chen, Ke
Ma, Xiaokuang
Nehme, Antoine
Wei, Jing
Cui, Yan
Cui, Yuehua
Yao, Dezhong
Wu, Jie
Anderson, Trent
Ferguson, Deveroux
Levitt, Pat
Qiu, Shenfeng
author_facet Chen, Ke
Ma, Xiaokuang
Nehme, Antoine
Wei, Jing
Cui, Yan
Cui, Yuehua
Yao, Dezhong
Wu, Jie
Anderson, Trent
Ferguson, Deveroux
Levitt, Pat
Qiu, Shenfeng
author_sort Chen, Ke
collection PubMed
description Normal development of cortical circuits, including experience-dependent cortical maturation and plasticity, requires precise temporal regulation of gene expression and molecular signaling. Such regulation, and the concomitant impact on plasticity and critical periods, is hypothesized to be disrupted in neurodevelopmental disorders. A protein that may serve such a function is the MET receptor tyrosine kinase, which is tightly regulated developmentally in rodents and primates, and exhibits reduced cortical expression in autism spectrum disorder and Rett Syndrome. We found that the peak of MET expression in developing mouse cortex coincides with the heightened period of synaptogenesis, but is precipitously down-regulated prior to extensive synapse pruning and certain peak periods of cortical plasticity. These results reflect a potential on-off regulatory synaptic mechanism for specific glutamatergic cortical circuits in which MET is enriched. In order to address the functional significance of the ‘off’ component of the proposed mechanism, we created a controllable transgenic mouse line that sustains cortical MET signaling. Continued MET expression in cortical excitatory neurons disrupted synaptic protein profiles, altered neuronal morphology, and impaired visual cortex circuit maturation and connectivity. Remarkably, sustained MET signaling eliminates monocular deprivation-induced ocular dominance plasticity during the normal cortical critical period; while ablating MET signaling leads to early closure of critical period plasticity. The results demonstrate a novel mechanism in which temporal regulation of a pleiotropic signaling protein underlies cortical circuit maturation and timing of cortical critical period, features that may be disrupted in neurodevelopmental disorders.
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spelling pubmed-73323772021-07-03 Time-delimited signaling of MET receptor tyrosine kinase regulates cortical circuit development and critical period plasticity Chen, Ke Ma, Xiaokuang Nehme, Antoine Wei, Jing Cui, Yan Cui, Yuehua Yao, Dezhong Wu, Jie Anderson, Trent Ferguson, Deveroux Levitt, Pat Qiu, Shenfeng Mol Psychiatry Article Normal development of cortical circuits, including experience-dependent cortical maturation and plasticity, requires precise temporal regulation of gene expression and molecular signaling. Such regulation, and the concomitant impact on plasticity and critical periods, is hypothesized to be disrupted in neurodevelopmental disorders. A protein that may serve such a function is the MET receptor tyrosine kinase, which is tightly regulated developmentally in rodents and primates, and exhibits reduced cortical expression in autism spectrum disorder and Rett Syndrome. We found that the peak of MET expression in developing mouse cortex coincides with the heightened period of synaptogenesis, but is precipitously down-regulated prior to extensive synapse pruning and certain peak periods of cortical plasticity. These results reflect a potential on-off regulatory synaptic mechanism for specific glutamatergic cortical circuits in which MET is enriched. In order to address the functional significance of the ‘off’ component of the proposed mechanism, we created a controllable transgenic mouse line that sustains cortical MET signaling. Continued MET expression in cortical excitatory neurons disrupted synaptic protein profiles, altered neuronal morphology, and impaired visual cortex circuit maturation and connectivity. Remarkably, sustained MET signaling eliminates monocular deprivation-induced ocular dominance plasticity during the normal cortical critical period; while ablating MET signaling leads to early closure of critical period plasticity. The results demonstrate a novel mechanism in which temporal regulation of a pleiotropic signaling protein underlies cortical circuit maturation and timing of cortical critical period, features that may be disrupted in neurodevelopmental disorders. 2020-01-03 2021-08 /pmc/articles/PMC7332377/ /pubmed/31900430 http://dx.doi.org/10.1038/s41380-019-0635-6 Text en Users may view, print, copy, and download 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
Chen, Ke
Ma, Xiaokuang
Nehme, Antoine
Wei, Jing
Cui, Yan
Cui, Yuehua
Yao, Dezhong
Wu, Jie
Anderson, Trent
Ferguson, Deveroux
Levitt, Pat
Qiu, Shenfeng
Time-delimited signaling of MET receptor tyrosine kinase regulates cortical circuit development and critical period plasticity
title Time-delimited signaling of MET receptor tyrosine kinase regulates cortical circuit development and critical period plasticity
title_full Time-delimited signaling of MET receptor tyrosine kinase regulates cortical circuit development and critical period plasticity
title_fullStr Time-delimited signaling of MET receptor tyrosine kinase regulates cortical circuit development and critical period plasticity
title_full_unstemmed Time-delimited signaling of MET receptor tyrosine kinase regulates cortical circuit development and critical period plasticity
title_short Time-delimited signaling of MET receptor tyrosine kinase regulates cortical circuit development and critical period plasticity
title_sort time-delimited signaling of met receptor tyrosine kinase regulates cortical circuit development and critical period plasticity
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7332377/
https://www.ncbi.nlm.nih.gov/pubmed/31900430
http://dx.doi.org/10.1038/s41380-019-0635-6
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