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Published on: March 25, 2016
Impact of maternal exercise on neurodevelopment and gut microbiota in offspring from advanced-age mice
Sang-Seo Park1, Tae-Woon Kim2, Bo-Kyun Kim3
1Department of Physiology, College of Medicine, Kyung Hee University, Seoul, Korea.
Insights
Maternal exercise in older mothers improved offspring brain development, boosting neurogenesis and synaptic proteins. However, it reduced gut microbial diversity in the offspring.
Area of Science:
- Neuroscience
- Developmental Biology
- Microbiome Research
Background:
- Advanced maternal age is linked to impaired offspring neurodevelopment.
- Maternal factors significantly influence offspring brain structure and function.
- The interplay between maternal age, exercise, and offspring gut microbiome is not fully understood.
Purpose of the Study:
- To investigate the impact of maternal exercise on hippocampal neurogenesis, synaptic protein expression, and gut microbiome in offspring of older female mice.
- To determine if maternal exercise can mitigate age-related neurodevelopmental deficits in offspring.
- To explore the effects of maternal exercise on the gut microbial composition of offspring.
Main Methods:
- Utilized a mouse model with four groups: offspring of young (CON), exercised young, aged (AMA), and exercised aged (AMA+EX) mothers.
- Assessed hippocampal neurogenesis using 5-bromo-2'-deoxyuridine/neuronal double immunofluorescence staining.
- Analyzed synaptic plasticity proteins (BDNF, PSD-95) via Western blot and gut microbiome composition using 16S rRNA sequencing.
Main Results:
- Offspring of AMA mothers exhibited reduced hippocampal neurogenesis and lower synaptic protein (BDNF, PSD-95) levels.
- Maternal treadmill exercise in AMA+EX group significantly restored neurogenesis and synaptic protein expression.
- Maternal exercise led to reduced microbial richness and alpha diversity in offspring gut microbiota, particularly in the AMA+EX group.
Conclusions:
- Advanced maternal age negatively affects offspring hippocampal neurogenesis and synaptic protein expression.
- Maternal exercise can ameliorate age-related neurodevelopmental impairments in offspring.
- Maternal exercise may alter offspring gut microbiome diversity, warranting further investigation.
Abstract:
The effects of maternal exercise on hippocampal neurogenesis, synaptic protein expression, and gut microbiome composition in the offspring of older females were investigated. Male offspring from female C57BL/6 mice were divided into four groups: offspring of young female group (CON), offspring of exercised young female group, offspring of advanced-age female group (AMA), and offspring of exercised advanced-age female group (AMA+EX). The exercised group received 8 weeks of treadmill training before and during pregnancy. Male offspring were assessed at 4 weeks of age. Hippocampal neurogenesis was assessed by 5-bromo-2'-deoxyuridine/neuronal double immunofluorescence staining. Expression of synaptic plasticity-related proteins, including brain-derived neurotrophic factor (BDNF) and postsynaptic density protein 95 (PSD-95), was analyzed by Western blot. Gut microbiome composition and diversity were assessed using 16S rRNA sequencing of fecal samples. Offspring born to AMA females had significantly reduced hippocampal neurogenesis and lower expression levels of BDNF and PSD-95 compared to the CON group. In the AMA+EX group, maternal treadmill exercise significantly improved these deficits, restoring both neurogenesis and synaptic protein expression. In contrast, gut microbiota analysis showed that microbial richness and alpha diversity were reduced in the offspring of exercised females, despite the relatively high diversity in the CON and AMA groups, especially in the AMA+EX group. Older mothers impair hippocampal neurogenesis and synaptic protein expression in offspring, and alter gut microbial diversity. Maternal exercise may alleviate age-related neurodevelopmental disorders, but may also reduce microbial diversity in the offspring's gut.
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