Cargando…

Genetic regulatory subnetworks and key regulating genes in rat hippocampus perturbed by prenatal malnutrition: implications for major brain disorders

Objective: Many population studies have shown that maternal prenatal nutrition deficiency may increase the risk of neurodevelopmental disorders in their offspring, but its potential transcriptomic effects on brain development are not clear. We aimed to investigate the transcriptional regulatory inte...

Descripción completa

Detalles Bibliográficos
Autores principales: Chen, Jiaying, Zhao, Xinzhi, Cui, Li, He, Guang, Wang, Xinhui, Wang, Fudi, Duan, Shiwei, He, Lin, Li, Qiang, Yu, Xiaodan, Zhang, Fuquan, Xu, Mingqing
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Impact Journals 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7244046/
https://www.ncbi.nlm.nih.gov/pubmed/32392183
http://dx.doi.org/10.18632/aging.103150
_version_ 1783537503847841792
author Chen, Jiaying
Zhao, Xinzhi
Cui, Li
He, Guang
Wang, Xinhui
Wang, Fudi
Duan, Shiwei
He, Lin
Li, Qiang
Yu, Xiaodan
Zhang, Fuquan
Xu, Mingqing
author_facet Chen, Jiaying
Zhao, Xinzhi
Cui, Li
He, Guang
Wang, Xinhui
Wang, Fudi
Duan, Shiwei
He, Lin
Li, Qiang
Yu, Xiaodan
Zhang, Fuquan
Xu, Mingqing
author_sort Chen, Jiaying
collection PubMed
description Objective: Many population studies have shown that maternal prenatal nutrition deficiency may increase the risk of neurodevelopmental disorders in their offspring, but its potential transcriptomic effects on brain development are not clear. We aimed to investigate the transcriptional regulatory interactions between genes in particular pathways responding to the prenatal nutritional deficiency and to explore their effects on neurodevelopment and related disorders. Results: We identified three modules in rat hippocampus responding to maternal prenatal nutritional deficiency and found 15 key genes (Hmgn1, Ssbp1, LOC684988, Rpl23, Gga1, Rhobtb2, Dhcr24, Atg9a, Dlgap3, Grm5, Scn2b, Furin, Sh3kbp1, Ubqln1, and Unc13a) related to the rat hippocampus developmental dysregulation, of which Hmgn1, Rhobtb2 and Unc13a related to autism, and Dlgap3, Grm5, Furin and Ubqln1 are related to Alzheimer’s disease, and schizophrenia. Transcriptional alterations of the hub genes were confirmed except for Atg9a. Additionally, through modeling miRNA–mRNA-transcription factor interactions for the hub genes, we confirmed a transcription factor, Cebpa, is essential to regulate the expression of Rhobtb2. We did not find singificent singals in the prefrontal cortex responding to maternal prenatal nutritional deficiency. Conclusion: These findings demonstrated that these genes with the three modules in rat hippocampus involved in synaptic development, neuronal projection, cognitive function, and learning function are significantly enriched hippocampal CA1 pyramidal neurons and suggest that three genetic regulatory subnetworks and thirteen key regulating genes in rat hippocampus perturbed by a prenatal nutrition deficiency. These genes and related subnetworks may be prenatally involved in the etiologies of major brain disorders, including Alzheimer’s disease, autism, and schizophrenia. Methods: We compared the transcriptomic differences in the hippocampus and prefrontal cortex between 10 rats with prenatal nutritional deficiency and 10 rats with prenatal normal chow feeding by differential analysis and co-expression network analysis. A network-driven integrative analysis with microRNAs and transcription factors was performed to define significant modules and hub genes responding to prenatal nutritional deficiency. Meanwhile, the module preservation test was conducted between the hippocampus and prefrontal cortex. Expression levels of the hub genes were further validated with a quantitative real-time polymerase chain reaction based on additional 40 pairs of rats.
format Online
Article
Text
id pubmed-7244046
institution National Center for Biotechnology Information
language English
publishDate 2020
publisher Impact Journals
record_format MEDLINE/PubMed
spelling pubmed-72440462020-06-03 Genetic regulatory subnetworks and key regulating genes in rat hippocampus perturbed by prenatal malnutrition: implications for major brain disorders Chen, Jiaying Zhao, Xinzhi Cui, Li He, Guang Wang, Xinhui Wang, Fudi Duan, Shiwei He, Lin Li, Qiang Yu, Xiaodan Zhang, Fuquan Xu, Mingqing Aging (Albany NY) Research Paper Objective: Many population studies have shown that maternal prenatal nutrition deficiency may increase the risk of neurodevelopmental disorders in their offspring, but its potential transcriptomic effects on brain development are not clear. We aimed to investigate the transcriptional regulatory interactions between genes in particular pathways responding to the prenatal nutritional deficiency and to explore their effects on neurodevelopment and related disorders. Results: We identified three modules in rat hippocampus responding to maternal prenatal nutritional deficiency and found 15 key genes (Hmgn1, Ssbp1, LOC684988, Rpl23, Gga1, Rhobtb2, Dhcr24, Atg9a, Dlgap3, Grm5, Scn2b, Furin, Sh3kbp1, Ubqln1, and Unc13a) related to the rat hippocampus developmental dysregulation, of which Hmgn1, Rhobtb2 and Unc13a related to autism, and Dlgap3, Grm5, Furin and Ubqln1 are related to Alzheimer’s disease, and schizophrenia. Transcriptional alterations of the hub genes were confirmed except for Atg9a. Additionally, through modeling miRNA–mRNA-transcription factor interactions for the hub genes, we confirmed a transcription factor, Cebpa, is essential to regulate the expression of Rhobtb2. We did not find singificent singals in the prefrontal cortex responding to maternal prenatal nutritional deficiency. Conclusion: These findings demonstrated that these genes with the three modules in rat hippocampus involved in synaptic development, neuronal projection, cognitive function, and learning function are significantly enriched hippocampal CA1 pyramidal neurons and suggest that three genetic regulatory subnetworks and thirteen key regulating genes in rat hippocampus perturbed by a prenatal nutrition deficiency. These genes and related subnetworks may be prenatally involved in the etiologies of major brain disorders, including Alzheimer’s disease, autism, and schizophrenia. Methods: We compared the transcriptomic differences in the hippocampus and prefrontal cortex between 10 rats with prenatal nutritional deficiency and 10 rats with prenatal normal chow feeding by differential analysis and co-expression network analysis. A network-driven integrative analysis with microRNAs and transcription factors was performed to define significant modules and hub genes responding to prenatal nutritional deficiency. Meanwhile, the module preservation test was conducted between the hippocampus and prefrontal cortex. Expression levels of the hub genes were further validated with a quantitative real-time polymerase chain reaction based on additional 40 pairs of rats. Impact Journals 2020-05-11 /pmc/articles/PMC7244046/ /pubmed/32392183 http://dx.doi.org/10.18632/aging.103150 Text en Copyright © 2020 Chen et al. http://creativecommons.org/licenses/by/3.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY 3.0), which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Paper
Chen, Jiaying
Zhao, Xinzhi
Cui, Li
He, Guang
Wang, Xinhui
Wang, Fudi
Duan, Shiwei
He, Lin
Li, Qiang
Yu, Xiaodan
Zhang, Fuquan
Xu, Mingqing
Genetic regulatory subnetworks and key regulating genes in rat hippocampus perturbed by prenatal malnutrition: implications for major brain disorders
title Genetic regulatory subnetworks and key regulating genes in rat hippocampus perturbed by prenatal malnutrition: implications for major brain disorders
title_full Genetic regulatory subnetworks and key regulating genes in rat hippocampus perturbed by prenatal malnutrition: implications for major brain disorders
title_fullStr Genetic regulatory subnetworks and key regulating genes in rat hippocampus perturbed by prenatal malnutrition: implications for major brain disorders
title_full_unstemmed Genetic regulatory subnetworks and key regulating genes in rat hippocampus perturbed by prenatal malnutrition: implications for major brain disorders
title_short Genetic regulatory subnetworks and key regulating genes in rat hippocampus perturbed by prenatal malnutrition: implications for major brain disorders
title_sort genetic regulatory subnetworks and key regulating genes in rat hippocampus perturbed by prenatal malnutrition: implications for major brain disorders
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7244046/
https://www.ncbi.nlm.nih.gov/pubmed/32392183
http://dx.doi.org/10.18632/aging.103150
work_keys_str_mv AT chenjiaying geneticregulatorysubnetworksandkeyregulatinggenesinrathippocampusperturbedbyprenatalmalnutritionimplicationsformajorbraindisorders
AT zhaoxinzhi geneticregulatorysubnetworksandkeyregulatinggenesinrathippocampusperturbedbyprenatalmalnutritionimplicationsformajorbraindisorders
AT cuili geneticregulatorysubnetworksandkeyregulatinggenesinrathippocampusperturbedbyprenatalmalnutritionimplicationsformajorbraindisorders
AT heguang geneticregulatorysubnetworksandkeyregulatinggenesinrathippocampusperturbedbyprenatalmalnutritionimplicationsformajorbraindisorders
AT wangxinhui geneticregulatorysubnetworksandkeyregulatinggenesinrathippocampusperturbedbyprenatalmalnutritionimplicationsformajorbraindisorders
AT wangfudi geneticregulatorysubnetworksandkeyregulatinggenesinrathippocampusperturbedbyprenatalmalnutritionimplicationsformajorbraindisorders
AT duanshiwei geneticregulatorysubnetworksandkeyregulatinggenesinrathippocampusperturbedbyprenatalmalnutritionimplicationsformajorbraindisorders
AT helin geneticregulatorysubnetworksandkeyregulatinggenesinrathippocampusperturbedbyprenatalmalnutritionimplicationsformajorbraindisorders
AT liqiang geneticregulatorysubnetworksandkeyregulatinggenesinrathippocampusperturbedbyprenatalmalnutritionimplicationsformajorbraindisorders
AT yuxiaodan geneticregulatorysubnetworksandkeyregulatinggenesinrathippocampusperturbedbyprenatalmalnutritionimplicationsformajorbraindisorders
AT zhangfuquan geneticregulatorysubnetworksandkeyregulatinggenesinrathippocampusperturbedbyprenatalmalnutritionimplicationsformajorbraindisorders
AT xumingqing geneticregulatorysubnetworksandkeyregulatinggenesinrathippocampusperturbedbyprenatalmalnutritionimplicationsformajorbraindisorders