Cargando…

Genetic Deficiency of p53 Leads to Structural, Functional, and Synaptic Deficits in Primary Somatosensory Cortical Neurons of Adult Mice

The tumor suppressor p53 plays a crucial role in embryonic neuron development and neurite growth, and its involvement in neuronal homeostasis has been proposed. To better understand how the lack of the p53 gene function affects neuronal activity, spine development, and plasticity, we examined the el...

Descripción completa

Detalles Bibliográficos
Autores principales: Kuang, Haixia, Liu, Tao, Jiao, Cui, Wang, Jianmei, Wu, Shinan, Wu, Jing, Peng, Sicong, Davidson, Andrew M., Zeng, Shelya X., Lu, Hua, Mostany, Ricardo
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9021533/
https://www.ncbi.nlm.nih.gov/pubmed/35465090
http://dx.doi.org/10.3389/fnmol.2022.871974
_version_ 1784689852706455552
author Kuang, Haixia
Liu, Tao
Jiao, Cui
Wang, Jianmei
Wu, Shinan
Wu, Jing
Peng, Sicong
Davidson, Andrew M.
Zeng, Shelya X.
Lu, Hua
Mostany, Ricardo
author_facet Kuang, Haixia
Liu, Tao
Jiao, Cui
Wang, Jianmei
Wu, Shinan
Wu, Jing
Peng, Sicong
Davidson, Andrew M.
Zeng, Shelya X.
Lu, Hua
Mostany, Ricardo
author_sort Kuang, Haixia
collection PubMed
description The tumor suppressor p53 plays a crucial role in embryonic neuron development and neurite growth, and its involvement in neuronal homeostasis has been proposed. To better understand how the lack of the p53 gene function affects neuronal activity, spine development, and plasticity, we examined the electrophysiological and morphological properties of layer 5 (L5) pyramidal neurons in the primary somatosensory cortex barrel field (S1BF) by using in vitro whole-cell patch clamp and in vivo two-photon imaging techniques in p53 knockout (KO) mice. We found that the spiking frequency, excitatory inputs, and sag ratio were decreased in L5 pyramidal neurons of p53KO mice. In addition, both in vitro and in vivo morphological analyses demonstrated that dendritic spine density in the apical tuft is decreased in L5 pyramidal neurons of p53KO mice. Furthermore, chronic imaging showed that p53 deletion decreased dendritic spine turnover in steady-state conditions, and prevented the increase in spine turnover associated with whisker stimulation seen in wildtype mice. In addition, the sensitivity of whisker-dependent texture discrimination was impaired in p53KO mice compared with wildtype controls. Together, these results suggest that p53 plays an important role in regulating synaptic plasticity by reducing neuronal excitability and the number of excitatory synapses in S1BF.
format Online
Article
Text
id pubmed-9021533
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher Frontiers Media S.A.
record_format MEDLINE/PubMed
spelling pubmed-90215332022-04-22 Genetic Deficiency of p53 Leads to Structural, Functional, and Synaptic Deficits in Primary Somatosensory Cortical Neurons of Adult Mice Kuang, Haixia Liu, Tao Jiao, Cui Wang, Jianmei Wu, Shinan Wu, Jing Peng, Sicong Davidson, Andrew M. Zeng, Shelya X. Lu, Hua Mostany, Ricardo Front Mol Neurosci Molecular Neuroscience The tumor suppressor p53 plays a crucial role in embryonic neuron development and neurite growth, and its involvement in neuronal homeostasis has been proposed. To better understand how the lack of the p53 gene function affects neuronal activity, spine development, and plasticity, we examined the electrophysiological and morphological properties of layer 5 (L5) pyramidal neurons in the primary somatosensory cortex barrel field (S1BF) by using in vitro whole-cell patch clamp and in vivo two-photon imaging techniques in p53 knockout (KO) mice. We found that the spiking frequency, excitatory inputs, and sag ratio were decreased in L5 pyramidal neurons of p53KO mice. In addition, both in vitro and in vivo morphological analyses demonstrated that dendritic spine density in the apical tuft is decreased in L5 pyramidal neurons of p53KO mice. Furthermore, chronic imaging showed that p53 deletion decreased dendritic spine turnover in steady-state conditions, and prevented the increase in spine turnover associated with whisker stimulation seen in wildtype mice. In addition, the sensitivity of whisker-dependent texture discrimination was impaired in p53KO mice compared with wildtype controls. Together, these results suggest that p53 plays an important role in regulating synaptic plasticity by reducing neuronal excitability and the number of excitatory synapses in S1BF. Frontiers Media S.A. 2022-04-07 /pmc/articles/PMC9021533/ /pubmed/35465090 http://dx.doi.org/10.3389/fnmol.2022.871974 Text en Copyright © 2022 Kuang, Liu, Jiao, Wang, Wu, Wu, Peng, Davidson, Zeng, Lu and Mostany. https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Molecular Neuroscience
Kuang, Haixia
Liu, Tao
Jiao, Cui
Wang, Jianmei
Wu, Shinan
Wu, Jing
Peng, Sicong
Davidson, Andrew M.
Zeng, Shelya X.
Lu, Hua
Mostany, Ricardo
Genetic Deficiency of p53 Leads to Structural, Functional, and Synaptic Deficits in Primary Somatosensory Cortical Neurons of Adult Mice
title Genetic Deficiency of p53 Leads to Structural, Functional, and Synaptic Deficits in Primary Somatosensory Cortical Neurons of Adult Mice
title_full Genetic Deficiency of p53 Leads to Structural, Functional, and Synaptic Deficits in Primary Somatosensory Cortical Neurons of Adult Mice
title_fullStr Genetic Deficiency of p53 Leads to Structural, Functional, and Synaptic Deficits in Primary Somatosensory Cortical Neurons of Adult Mice
title_full_unstemmed Genetic Deficiency of p53 Leads to Structural, Functional, and Synaptic Deficits in Primary Somatosensory Cortical Neurons of Adult Mice
title_short Genetic Deficiency of p53 Leads to Structural, Functional, and Synaptic Deficits in Primary Somatosensory Cortical Neurons of Adult Mice
title_sort genetic deficiency of p53 leads to structural, functional, and synaptic deficits in primary somatosensory cortical neurons of adult mice
topic Molecular Neuroscience
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9021533/
https://www.ncbi.nlm.nih.gov/pubmed/35465090
http://dx.doi.org/10.3389/fnmol.2022.871974
work_keys_str_mv AT kuanghaixia geneticdeficiencyofp53leadstostructuralfunctionalandsynapticdeficitsinprimarysomatosensorycorticalneuronsofadultmice
AT liutao geneticdeficiencyofp53leadstostructuralfunctionalandsynapticdeficitsinprimarysomatosensorycorticalneuronsofadultmice
AT jiaocui geneticdeficiencyofp53leadstostructuralfunctionalandsynapticdeficitsinprimarysomatosensorycorticalneuronsofadultmice
AT wangjianmei geneticdeficiencyofp53leadstostructuralfunctionalandsynapticdeficitsinprimarysomatosensorycorticalneuronsofadultmice
AT wushinan geneticdeficiencyofp53leadstostructuralfunctionalandsynapticdeficitsinprimarysomatosensorycorticalneuronsofadultmice
AT wujing geneticdeficiencyofp53leadstostructuralfunctionalandsynapticdeficitsinprimarysomatosensorycorticalneuronsofadultmice
AT pengsicong geneticdeficiencyofp53leadstostructuralfunctionalandsynapticdeficitsinprimarysomatosensorycorticalneuronsofadultmice
AT davidsonandrewm geneticdeficiencyofp53leadstostructuralfunctionalandsynapticdeficitsinprimarysomatosensorycorticalneuronsofadultmice
AT zengshelyax geneticdeficiencyofp53leadstostructuralfunctionalandsynapticdeficitsinprimarysomatosensorycorticalneuronsofadultmice
AT luhua geneticdeficiencyofp53leadstostructuralfunctionalandsynapticdeficitsinprimarysomatosensorycorticalneuronsofadultmice
AT mostanyricardo geneticdeficiencyofp53leadstostructuralfunctionalandsynapticdeficitsinprimarysomatosensorycorticalneuronsofadultmice