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Acute Brain Trauma in Mice Followed By Longitudinal Two-photon Imaging
Published on: April 6, 2014
miR-124/VAMP3 is a novel therapeutic target for mitigation of surgical trauma-induced microglial activation
Yan Chen1,2,3, Jing-Xian Sun1,2,3, Wan-Kun Chen4,5
11Department of Integrative Medicine and Neurobiology, State Key Laboratory of Medical Neurobiology, School of Basic Medical Science, Fudan University, 200032 Shanghai, China.
Abstract:
Activation of microglia and the subsequently elevated inflammatory cytokine release in the brain during surgery predispose individuals to cognitive dysfunction, also known as postoperative cognitive dysfunction (POCD). miR-124 is one of the most abundant microRNAs in the brain that regulates microglial function. Elucidating the role of miR-124 in microglial activation in the context of surgery may therefore promote understanding of as well as therapeutic development for post-surgical disorders involving microglial activation. The downstream targets of miR-124 were investigated using bioinformatic screening and dual-luciferase reporter assay validation, and vesicle-associated membrane protein 3 (VAMP3) was identified as a potential target. The kinetics of miR-124/VAMP3 expression was first examined in vitro in microglial cells (primary microglia and BV2 microglial cells) following lipopolysaccharide (LPS) stimulation. LPS induced a time-dependent decrease of miR-124 and upregulated the expression of VAMP3. Manipulating miR-124/VAMP3 expression by using miR-124 mimics or VAMP3-specific siRNA in LPS-stimulated BV2 microglial cells inhibited BV2 microglial activation-associated inflammatory cytokine release. To further examine the role of miR-124/VAMP3 in a surgical setting, we employed a rat surgical trauma model. Significant microglial activation and altered miR-124/VAMP3 expression were observed following surgical trauma. We also altered miR-124/VAMP3 expression in the rat surgical trauma model by administration of exogenous miR-124 and by using electroacupuncture, which is a clinically applicable treatment that modulates microglial function and minimizes postoperative disorders. We determined that electroacupuncture treatment specifically increases the expression of miR-124 in the hypothalamus and hippocampus. Increased miR-124 expression with a concomitant decrease in VAMP3 expression resulted in decreased inflammatory cytokine release related to microglial activation post-surgery. Our study indicates that miR-124/VAMP3 is involved in surgery-induced microglial activation and that targeting miR-124/VAMP3 could be a potential therapeutic strategy for postoperative disorders involving microglial activation.
Insights
Targeting miR-124 and VAMP3 may prevent postoperative cognitive dysfunction. Electroacupuncture increases miR-124, reducing inflammation and cognitive impairment after surgery.
Area of Science:
- Neuroscience
- Molecular Biology
- Immunology
Background:
- Postoperative cognitive dysfunction (POCD) is linked to microglial activation and brain inflammation.
- MicroRNA-124 (miR-124) is crucial for regulating microglial function in the brain.
Purpose of the Study:
- To investigate the role of miR-124 and its target, vesicle-associated membrane protein 3 (VAMP3), in surgery-induced microglial activation.
- To explore the therapeutic potential of targeting the miR-124/VAMP3 pathway for POCD.
Main Methods:
- Bioinformatic screening and dual-luciferase reporter assays to identify miR-124 targets.
- In vitro studies using primary microglia and BV2 cells stimulated with lipopolysaccharide (LPS).
- In vivo studies using a rat surgical trauma model, including electroacupuncture treatment.
Main Results:
- LPS stimulation decreased miR-124 and increased VAMP3 expression in microglial cells.
- Modulating miR-124/VAMP3 levels inhibited LPS-induced inflammatory cytokine release.
- Surgical trauma in rats led to microglial activation and altered miR-124/VAMP3 expression.
- Electroacupuncture increased miR-124 and decreased VAMP3 in the hippocampus and hypothalamus, reducing inflammation post-surgery.
Conclusions:
- The miR-124/VAMP3 pathway is implicated in surgery-induced microglial activation.
- Targeting miR-124/VAMP3 represents a potential therapeutic strategy for preventing POCD and related disorders.

