Cargando…

An enriched environment improves maternal sleep deprivation‐induced cognitive deficits and synaptic plasticity via hippocampal histone acetylation

INTRODUCTION: Growing evidence clearly demonstrates that maternal rodents exposure to sleep deprivation (SD) during late pregnancy impairs learning and memory in their offspring. Epigenetic mechanisms, particularly histone acetylation, are known to be involved in synaptic plasticity, learning, and m...

Descripción completa

Detalles Bibliográficos
Autores principales: Zhang, Yue‐Ming, Wei, Ru‐Meng, Ni, Ming‐Zhu, Wu, Qi‐Tao, Li, Yun, Ge, Yi‐Jun, Kong, Xiao‐Yi, Li, Xue‐Yan, Chen, Gui‐Hai
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10275536/
https://www.ncbi.nlm.nih.gov/pubmed/37073496
http://dx.doi.org/10.1002/brb3.3018
_version_ 1785059892165345280
author Zhang, Yue‐Ming
Wei, Ru‐Meng
Ni, Ming‐Zhu
Wu, Qi‐Tao
Li, Yun
Ge, Yi‐Jun
Kong, Xiao‐Yi
Li, Xue‐Yan
Chen, Gui‐Hai
author_facet Zhang, Yue‐Ming
Wei, Ru‐Meng
Ni, Ming‐Zhu
Wu, Qi‐Tao
Li, Yun
Ge, Yi‐Jun
Kong, Xiao‐Yi
Li, Xue‐Yan
Chen, Gui‐Hai
author_sort Zhang, Yue‐Ming
collection PubMed
description INTRODUCTION: Growing evidence clearly demonstrates that maternal rodents exposure to sleep deprivation (SD) during late pregnancy impairs learning and memory in their offspring. Epigenetic mechanisms, particularly histone acetylation, are known to be involved in synaptic plasticity, learning, and memory. We hypothesize that the cognitive decline induced by SD during late pregnancy is associated with histone acetylation dysfunction, and this effect could be reversed by an enriched environment (EE). METHODS: In the present study, pregnant CD‐1 mice were exposed to SD during the third trimester of pregnancy. After weaning, all offspring were randomly assigned to two subgroups in either a standard environment or an EE. When offspring were 3 months old, the Morris water maze was used to evaluate hippocampal‐dependent learning and memory ability. Molecular biological techniques, including western blot and real‐time fluorescence quantitative polymerase chain reaction, were used to examine the histone acetylation pathway and synaptic plasticity markers in the hippocampus of offspring. RESULTS: The results showed that the following were all reversed by EE treatment: maternal SD (MSD)‐induced cognitive deficits including spatial learning and memory; histone acetylation dysfunction including increased histone deacetylase 2 (HDAC2) and decreased histone acetyltransferase (CBP), and the acetylation levels of H3K9 and H4K12; synaptic plasticity dysfunction including decreased brain‐derived neurotrophic factor; and postsynaptic density protein‐95. CONCLUSIONS: Our findings suggested that MSD could damage learning ability and memory in offspring via the histone acetylation pathway. This effect could be reversed by EE treatment.
format Online
Article
Text
id pubmed-10275536
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher John Wiley and Sons Inc.
record_format MEDLINE/PubMed
spelling pubmed-102755362023-06-17 An enriched environment improves maternal sleep deprivation‐induced cognitive deficits and synaptic plasticity via hippocampal histone acetylation Zhang, Yue‐Ming Wei, Ru‐Meng Ni, Ming‐Zhu Wu, Qi‐Tao Li, Yun Ge, Yi‐Jun Kong, Xiao‐Yi Li, Xue‐Yan Chen, Gui‐Hai Brain Behav Original Articles INTRODUCTION: Growing evidence clearly demonstrates that maternal rodents exposure to sleep deprivation (SD) during late pregnancy impairs learning and memory in their offspring. Epigenetic mechanisms, particularly histone acetylation, are known to be involved in synaptic plasticity, learning, and memory. We hypothesize that the cognitive decline induced by SD during late pregnancy is associated with histone acetylation dysfunction, and this effect could be reversed by an enriched environment (EE). METHODS: In the present study, pregnant CD‐1 mice were exposed to SD during the third trimester of pregnancy. After weaning, all offspring were randomly assigned to two subgroups in either a standard environment or an EE. When offspring were 3 months old, the Morris water maze was used to evaluate hippocampal‐dependent learning and memory ability. Molecular biological techniques, including western blot and real‐time fluorescence quantitative polymerase chain reaction, were used to examine the histone acetylation pathway and synaptic plasticity markers in the hippocampus of offspring. RESULTS: The results showed that the following were all reversed by EE treatment: maternal SD (MSD)‐induced cognitive deficits including spatial learning and memory; histone acetylation dysfunction including increased histone deacetylase 2 (HDAC2) and decreased histone acetyltransferase (CBP), and the acetylation levels of H3K9 and H4K12; synaptic plasticity dysfunction including decreased brain‐derived neurotrophic factor; and postsynaptic density protein‐95. CONCLUSIONS: Our findings suggested that MSD could damage learning ability and memory in offspring via the histone acetylation pathway. This effect could be reversed by EE treatment. John Wiley and Sons Inc. 2023-04-18 /pmc/articles/PMC10275536/ /pubmed/37073496 http://dx.doi.org/10.1002/brb3.3018 Text en © 2023 The Authors. Brain and Behavior published by Wiley Periodicals LLC. https://creativecommons.org/licenses/by/4.0/This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Original Articles
Zhang, Yue‐Ming
Wei, Ru‐Meng
Ni, Ming‐Zhu
Wu, Qi‐Tao
Li, Yun
Ge, Yi‐Jun
Kong, Xiao‐Yi
Li, Xue‐Yan
Chen, Gui‐Hai
An enriched environment improves maternal sleep deprivation‐induced cognitive deficits and synaptic plasticity via hippocampal histone acetylation
title An enriched environment improves maternal sleep deprivation‐induced cognitive deficits and synaptic plasticity via hippocampal histone acetylation
title_full An enriched environment improves maternal sleep deprivation‐induced cognitive deficits and synaptic plasticity via hippocampal histone acetylation
title_fullStr An enriched environment improves maternal sleep deprivation‐induced cognitive deficits and synaptic plasticity via hippocampal histone acetylation
title_full_unstemmed An enriched environment improves maternal sleep deprivation‐induced cognitive deficits and synaptic plasticity via hippocampal histone acetylation
title_short An enriched environment improves maternal sleep deprivation‐induced cognitive deficits and synaptic plasticity via hippocampal histone acetylation
title_sort enriched environment improves maternal sleep deprivation‐induced cognitive deficits and synaptic plasticity via hippocampal histone acetylation
topic Original Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10275536/
https://www.ncbi.nlm.nih.gov/pubmed/37073496
http://dx.doi.org/10.1002/brb3.3018
work_keys_str_mv AT zhangyueming anenrichedenvironmentimprovesmaternalsleepdeprivationinducedcognitivedeficitsandsynapticplasticityviahippocampalhistoneacetylation
AT weirumeng anenrichedenvironmentimprovesmaternalsleepdeprivationinducedcognitivedeficitsandsynapticplasticityviahippocampalhistoneacetylation
AT nimingzhu anenrichedenvironmentimprovesmaternalsleepdeprivationinducedcognitivedeficitsandsynapticplasticityviahippocampalhistoneacetylation
AT wuqitao anenrichedenvironmentimprovesmaternalsleepdeprivationinducedcognitivedeficitsandsynapticplasticityviahippocampalhistoneacetylation
AT liyun anenrichedenvironmentimprovesmaternalsleepdeprivationinducedcognitivedeficitsandsynapticplasticityviahippocampalhistoneacetylation
AT geyijun anenrichedenvironmentimprovesmaternalsleepdeprivationinducedcognitivedeficitsandsynapticplasticityviahippocampalhistoneacetylation
AT kongxiaoyi anenrichedenvironmentimprovesmaternalsleepdeprivationinducedcognitivedeficitsandsynapticplasticityviahippocampalhistoneacetylation
AT lixueyan anenrichedenvironmentimprovesmaternalsleepdeprivationinducedcognitivedeficitsandsynapticplasticityviahippocampalhistoneacetylation
AT chenguihai anenrichedenvironmentimprovesmaternalsleepdeprivationinducedcognitivedeficitsandsynapticplasticityviahippocampalhistoneacetylation
AT zhangyueming enrichedenvironmentimprovesmaternalsleepdeprivationinducedcognitivedeficitsandsynapticplasticityviahippocampalhistoneacetylation
AT weirumeng enrichedenvironmentimprovesmaternalsleepdeprivationinducedcognitivedeficitsandsynapticplasticityviahippocampalhistoneacetylation
AT nimingzhu enrichedenvironmentimprovesmaternalsleepdeprivationinducedcognitivedeficitsandsynapticplasticityviahippocampalhistoneacetylation
AT wuqitao enrichedenvironmentimprovesmaternalsleepdeprivationinducedcognitivedeficitsandsynapticplasticityviahippocampalhistoneacetylation
AT liyun enrichedenvironmentimprovesmaternalsleepdeprivationinducedcognitivedeficitsandsynapticplasticityviahippocampalhistoneacetylation
AT geyijun enrichedenvironmentimprovesmaternalsleepdeprivationinducedcognitivedeficitsandsynapticplasticityviahippocampalhistoneacetylation
AT kongxiaoyi enrichedenvironmentimprovesmaternalsleepdeprivationinducedcognitivedeficitsandsynapticplasticityviahippocampalhistoneacetylation
AT lixueyan enrichedenvironmentimprovesmaternalsleepdeprivationinducedcognitivedeficitsandsynapticplasticityviahippocampalhistoneacetylation
AT chenguihai enrichedenvironmentimprovesmaternalsleepdeprivationinducedcognitivedeficitsandsynapticplasticityviahippocampalhistoneacetylation