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Adaptation of Microelectrode Array Technology for the Study of Anesthesia-induced Neurotoxicity in the Intact Piglet Brain
Published on: May 12, 2018
Mechanism of miR-140-3p reducing anesthesia induced neurotoxicity by downregulating BACE1 expression
Guangping Yang1, Li Liu2, Zhenbin Zhan3
1Department of Anesthesiology, The Second Affiliated Hospital of Xingtai Medical College, Xingtai, 054000, China.
Abstract:
Propofol is a widely employed intravenous general anesthetic that can induce neurotoxic effects on neurons. Previous research has indicated dysregulation of miR-140-3p in the hippocampal tissues of propofol-treated mice. This research was designed to investigate the function and underlying mechanism of miR-140-3p in propofol-induced neurotoxicity. To simulate propofol-induced neurotoxicity, human SH-SY5Y cells and mice were treated with propofol. Commercial kits were used to measure LDH, MDA, SOD, GSH-Px, and BDNF levels. Cells were transfected with miR-140-3p mimics, inhibitor, or BACE1 overexpression plasmids. Gene expression was assessed by RT-qPCR, cell viability by CCK-8, and apoptosis by flow cytometry. Dual-luciferase and RIP assays confirmed that miR-140-3p targets BACE1. The results confirmed that as the concentration of propofol increased, miR-140-3p levels were progressively downregulated, while BACE1 was correspondingly upregulated. Upregulation of miR-140-3p rescued propofol-treated SH-SY5Y cells from cytotoxicity, as evidenced by enhanced viability, suppressed apoptosis, and ameliorated oxidative stress. Consistently, miR-140-3p overexpression also attenuated propofol-induced neurotoxicity in vivo. Furthermore, BACE1 was confirmed to be a direct target of miR-140-3p through experimental validation, and this post-transcriptional repression was shown to mediate the observed neuroprotection. miR-140-3p attenuates propofol-induced neurotoxicity via BACE1 in vitro and in vivo, providing new insights and a potential biomarker for managing propofol-associated neurotoxicity.
Insights
MicroRNA-140-3p protects against propofol neurotoxicity by targeting BACE1. Upregulating this microRNA (miRNA) in cells and mice reduced propofol-induced damage, offering a potential therapeutic strategy.
Area of Science:
- Neuroscience
- Molecular Biology
- Pharmacology
Background:
- Propofol, a common anesthetic, can cause neurotoxicity.
- Dysregulation of microRNA-140-3p (miR-140-3p) has been observed in propofol-exposed brain tissue.
- The precise role and mechanism of miR-140-3p in propofol neurotoxicity remain unclear.
Purpose of the Study:
- To investigate the function of miR-140-3p in propofol-induced neurotoxicity.
- To elucidate the underlying molecular mechanism of miR-140-3p's action.
- To explore miR-140-3p as a potential therapeutic target or biomarker.
Main Methods:
- Propofol treatment in human SH-SY5Y cells and mice.
- Measurement of cytotoxicity markers (LDH, MDA, SOD, GSH-Px, BDNF).
- Transfection with miR-140-3p mimics/inhibitors and BACE1 plasmids; gene expression analysis (RT-qPCR); cell viability (CCK-8); apoptosis assays; dual-luciferase and RIP assays.
Main Results:
- Propofol exposure downregulated miR-140-3p and upregulated BACE1 in a dose-dependent manner.
- Overexpression of miR-140-3p protected SH-SY5Y cells against propofol-induced cytotoxicity, apoptosis, and oxidative stress.
- miR-140-3p directly targets BACE1, mediating neuroprotection both in vitro and in vivo.
- miR-140-3p overexpression attenuated propofol neurotoxicity in mice.
Conclusions:
- miR-140-3p exerts neuroprotective effects against propofol-induced toxicity.
- The mechanism involves the direct targeting and repression of BACE1 by miR-140-3p.
- miR-140-3p represents a promising therapeutic target for managing propofol-associated neurotoxicity.
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