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Adolescent binge alcohol exposure induces long-lasting partial activation of microglia
Justin A McClain1, Stephanie A Morris, M Ayumi Deeny
1Department of Pharmaceutical Sciences, The University of Kentucky, Lexington, KY 40536, USA.
Abstract:
Accumulating evidence indicates that the adolescent hippocampus is highly susceptible to alcohol-induced structural damage and behavioral deficits. Microglia are vitally important brain constituents needed to support and maintain proper neural function; however, alcohol's effects on microglia have only recently gained attention. The microglial response to alcohol during adolescence has yet to be studied; therefore, we examined hippocampal microglial activation in an adolescence binge alcohol exposure model. Adolescent male Sprague-Dawley rats were administered ethanol 3 times/day for 4 days and were sacrificed 2, 7, and 30 days later. Bromo-deoxy-Uridine was injected 2 days after ethanol exposure to label dividing cells. Microglia morphology was scored using the microglia marker Iba-1, while the extent of microglial activation was examined with ED-1, major histocompatibility complex-II (MHC-II), and tumor necrosis factor (TNF)-α expression. Ethanol induced significant morphological change in hippocampal microglia, consistent with activation. In addition, ethanol increased the number of BrdU+ cells throughout all regions of the hippocampus 2 days after the last dose. Confocal microscopy showed that the proliferating BrdU+ cells in each region were Iba-1+ microglia. Importantly, newly born microglia survived and retained their morphological characteristics 30 days after ethanol exposure. Ethanol did not alter hippocampal ED-1, MHC-II, or TNF-α expression, suggesting that a single period of binge ethanol exposure does not induce a full microglial-driven neuroinflammatory response. These results establish that ethanol triggers partial microglial activation in the adolescent hippocampus that persists through early adulthood, suggesting that alcohol exposure during this unique developmental time period has long-lasting consequences.
Insights
Adolescent binge alcohol exposure causes lasting changes in hippocampal microglia, leading to partial activation that persists into adulthood. This study reveals long-term consequences of early alcohol use on brain immune cells.
Area of Science:
- Neuroscience
- Neuroimmunology
- Developmental Neuroscience
Background:
- The adolescent brain, particularly the hippocampus, is vulnerable to alcohol-induced damage.
- Microglia, the brain's immune cells, play crucial roles in neural function, but their response to adolescent alcohol exposure is understudied.
Purpose of the Study:
- To investigate the effects of binge alcohol exposure on hippocampal microglia during adolescence.
- To determine if alcohol exposure triggers microglial activation and affects cell proliferation in the adolescent rat hippocampus.
Main Methods:
- Adolescent male rats received ethanol for 4 days, with sacrifice at 2, 7, and 30 days post-exposure.
- Cell proliferation was assessed using Bromo-deoxy-Uridine (BrdU) labeling.
- Microglial activation was evaluated by morphology (Iba-1 staining) and expression of ED-1, MHC-II, and TNF-α.
Main Results:
- Ethanol exposure induced morphological changes in hippocampal microglia, indicating activation.
- A significant increase in BrdU-labeled cells (identified as microglia) was observed in the hippocampus post-ethanol.
- Newly generated microglia survived and maintained their activated morphology for at least 30 days.
- No significant changes in ED-1, MHC-II, or TNF-α expression were detected, suggesting a partial inflammatory response.
Conclusions:
- Binge alcohol exposure during adolescence triggers a persistent, partial microglial activation in the hippocampus.
- These findings highlight the long-lasting neurobiological consequences of alcohol consumption during critical developmental periods.

