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Published on: September 13, 2017
High-fat diet worsens the impact of aging on microglial function and morphology in a region-specific manner
Sarah J Spencer1, Bashirah Basri1, Luba Sominsky1
1School of Health and Biomedical Sciences, RMIT University, Melbourne, VIC, Australia.
Abstract:
Hippocampal microglia are vulnerable to the effects of aging, displaying a primed phenotype and hyper-responsiveness to various stimuli. We have previously shown that short-term high-fat diet (HFD) significantly impairs hippocampal- and amygdala-based cognitive function in the aged without affecting it in the young. Here, we assessed if morphological and functional changes in microglia might be responsible for this. We analyzed hippocampus and amygdala from young and aging rats that had been given three days HFD, a treatment sufficient to cause both hippocampal- and amygdala-dependent cognitive and neuroinflammatory differences in the aged. Aging led to the expected priming of hippocampal microglia in that it increased microglial numbers and reduced branching in this region. Aging also increased microglial phagocytosis of microbeads in the hippocampus, but the only effect of HFD in this region was to increase the presence of enlarged synaptophysin boutons in the aged, indicative of neurodegeneration. In the amygdala, HFD exacerbated the effects of aging on microglial priming (morphology) and markedly suppressed phagocytosis without notably affecting synaptophysin. These data reveal that, like the hippocampus, the amygdala displays aging-related microglial priming. However, the microglia in this region are also uniquely vulnerable to the detrimental effects of short-term HFD in aging.
Insights
Aging primes microglia in the brain, making them vulnerable to high-fat diets (HFD). Short-term HFD particularly harms aged amygdala microglia, impacting cognitive function.
Area of Science:
- Neuroscience
- Immunology
- Aging Research
Background:
- Microglia, the brain's immune cells, undergo aging-related changes, exhibiting a primed state and heightened reactivity.
- Previous studies show short-term high-fat diet (HFD) impairs cognitive function in aged rats but not young ones.
Purpose of the Study:
- To investigate if microglial morphological and functional alterations underlie HFD-induced cognitive deficits in aging.
- To compare the effects of HFD on microglia in the hippocampus and amygdala of young and aged rats.
Main Methods:
- Analysis of hippocampal and amygdala tissues from young and aged rats subjected to a 3-day HFD.
- Assessment of microglial morphology, number, branching, phagocytosis, and neurodegenerative markers (synaptophysin).
Main Results:
- Aging increased microglial numbers and reduced branching in the hippocampus, alongside enhanced phagocytosis.
- HFD in aged rats increased synaptophysin boutons in the hippocampus, indicating neurodegeneration.
- In the amygdala, HFD worsened aging-related microglial priming and significantly reduced phagocytosis, with minimal impact on synaptophysin.
Conclusions:
- The amygdala, similar to the hippocampus, shows aging-related microglial priming.
- Amygdala microglia are uniquely susceptible to the negative impacts of short-term HFD in aged individuals, potentially contributing to cognitive decline.
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