Maternal diet and obesity shape offspring central and peripheral inflammatory outcomes in juvenile non-human primates
Geoffrey A Dunn1, A J Mitchell2, Matthew Selby1
1University of Oregon, Department of Human Physiology, USA.
Insights
Maternal obesity and diet impact offspring neurodevelopment. Maternal diet and adiposity directly influence offspring amygdala microglia, while adiposity affects peripheral inflammation via maternal chemokines.
Area of Science:
- Neuroscience
- Immunology
- Reproductive Health
Background:
- The obesity epidemic affects 40% of US adults, with 1/3 of pregnant women obese.
- Children of obese mothers face increased health risks, with mechanisms poorly understood.
- In-utero inflammation from maternal obesity is a proposed cause of offspring neurodevelopmental issues.
Purpose of the Study:
- To investigate how maternal obesogenic diet affects offspring peripheral and central inflammation.
- To examine the role of maternal adiposity and inflammation during the third trimester.
- To understand the link between maternal diet, inflammation, and offspring neuroinflammation.
Main Methods:
- Utilized a non-human primate model of maternal obesity.
- Employed structural equation modeling to analyze complex associations.
- Created latent variables for maternal and offspring cytokines and chemokines.
Main Results:
- Offspring amygdala microglia counts linked to maternal diet, adiposity, and gestation length.
- Maternal diet and adiposity directly predicted offspring microglia.
- Offspring peripheral cytokines/chemokines associated with maternal adiposity-induced decrease in maternal chemokines.
Conclusions:
- Maternal diet and adiposity directly predict offspring amygdala microglial counts.
- Maternal adiposity influences offspring peripheral inflammation via the maternal inflammatory state.
- Findings highlight the impact of maternal metabolic health on offspring neurodevelopment and inflammation.
Abstract:
The obesity epidemic affects 40% of adults in the US, with approximately one-third of pregnant women classified as obese. Previous research suggests that children born to obese mothers are at increased risk for a number of health conditions. The mechanisms behind this increased risk are poorly understood. Increased exposure to in-utero inflammation induced by maternal obesity is proposed as an underlying mechanism for neurodevelopmental alterations in offspring. Utilizing a non-human primate model of maternal obesity, we hypothesized that maternal consumption of an obesogenic diet will predict offspring peripheral (e.g., cytokines and chemokines) and central (microglia number) inflammatory outcomes via the diet's effects on maternal adiposity and maternal inflammatory state during the third trimester. We used structural equation modeling to simultaneously examine the complex associations among maternal diet, metabolic state, adiposity, inflammation, and offspring central and peripheral inflammation. Four latent variables were created to capture maternal chemokines and pro-inflammatory cytokines, and offspring cytokine and chemokines. Model results showed that offspring microglia counts in the basolateral amygdala were associated with maternal diet (β = -0.622, p < 0.01), adiposity (β = 0.593, p < 0.01), and length of gestation (β = 0.164, p < 0.05) but not with maternal chemokines (β = 0.135, p = 0.528) or maternal pro-inflammatory cytokines (β = 0.083, p = 0.683). Additionally, we found that juvenile offspring peripheral cytokines (β = -0.389, p < 0.01) and chemokines (β = -0.298, p < 0.05) were associated with a maternal adiposity-induced decrease in maternal circulating chemokines during the third trimester (β = -0.426, p < 0.01). In summary, these data suggest that maternal diet and adiposity appear to directly predict offspring amygdala microglial counts while maternal adiposity influences offspring peripheral inflammatory outcomes via maternal inflammatory state.
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