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Published on: November 15, 2024
Microglial-derived miRNA let-7 and HMGB1 contribute to ethanol-induced neurotoxicity via TLR7
Leon G Coleman1,2, Jian Zou3, Fulton T Crews3
1Bowles Center for Alcohol Studies, The University of North Carolina School of Medicine, 104 Manning Drive, 1007 Thurston-Bowles Building, CB# 7178 UNC-CH, Chapel Hill, NC, 27599, USA. leon_coleman@med.unc.edu.
Background:
Toll-like receptor (TLR) signaling is emerging as an important component of neurodegeneration. TLR7 senses viral RNA and certain endogenous miRNAs to initiate innate immune responses leading to neurodegeneration. Alcoholism is associated with hippocampal degeneration, with preclinical studies linking ethanol-induced neurodegeneration with central innate immune induction and TLR activation. The endogenous miRNA let-7b binds TLR7 to cause neurodegeneration.
Methods:
TLR7 and other immune markers were assessed in postmortem human hippocampal tissue that was obtained from the New South Wales Tissue Bank. Rat hippocampal-entorhinal cortex (HEC) slice culture was used to assess specific effects of ethanol on TLR7, let-7b, and microvesicles.
Results:
We report here that hippocampal tissue from postmortem human alcoholic brains shows increased expression of TLR7 and increased microglial activation. Using HEC slice culture, we found that ethanol induces TLR7 and let-7b expression. Ethanol caused TLR7-associated neuroimmune gene induction and initiated the release let-7b in microvesicles (MVs), enhancing TLR7-mediated neurotoxicity. Further, ethanol increased let-7b binding to the danger signaling molecule high mobility group box-1 (HMGB1) in MVs, while reducing let-7 binding to classical chaperone protein argonaute (Ago2). Flow cytometric analysis of MVs from HEC media and analysis of MVs from brain cell culture lines found that microglia were the primary source of let-7b and HMGB1-containing MVs.
Conclusions:
Our results identify that ethanol induces neuroimmune pathology involving the release of let-7b/HMGB1 complexes in microglia-derived microvesicles. This contributes to hippocampal neurodegeneration and may play a role in the pathology of alcoholism.
Insights
Ethanol exposure triggers neuroinflammation and hippocampal degeneration by inducing the release of let-7b and HMGB1 in microvesicles. This microglial-derived pathway contributes to alcoholism-associated neurodegeneration.
Area of Science:
- Neuroscience
- Immunology
- Genetics
Background:
- Toll-like receptor (TLR) signaling is implicated in neurodegeneration.
- TLR7 activation by viral RNA or endogenous microRNAs (miRNAs) can initiate neuroinflammatory responses.
- Alcoholism is linked to hippocampal degeneration, with evidence suggesting ethanol-induced neuroinflammation and TLR activation.
Purpose of the Study:
- To investigate the role of TLR7 and let-7b in ethanol-induced neurodegeneration.
- To examine the expression of TLR7 and let-7b in human alcoholic brain tissue and in a rat hippocampal-entorhinal cortex (HEC) slice culture model.
- To elucidate the mechanisms by which ethanol affects TLR7, let-7b, and microvesicle release.
Main Methods:
- Analysis of postmortem human hippocampal tissue for TLR7 and immune markers.
- Utilizing rat HEC slice culture to study the effects of ethanol on TLR7, let-7b, and microvesicles (MVs).
- Flow cytometry was used to analyze MV composition and cellular sources.
Main Results:
- Human alcoholic brains showed increased TLR7 expression and microglial activation.
- Ethanol exposure in HEC slice culture induced TLR7 and let-7b expression.
- Ethanol promoted the release of let-7b/HMGB1 complexes within MVs, enhancing TLR7-mediated neurotoxicity, with microglia identified as the primary source.
Conclusions:
- Ethanol induces neuroimmune pathology via microglia-derived MVs containing let-7b/HMGB1 complexes.
- This pathway contributes to hippocampal neurodegeneration in alcoholism.
- Targeting this mechanism may offer therapeutic strategies for alcohol-related brain damage.
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